WO2014147525A2 - Perylenemonoimide and naphthalenemonoimide derivatives and their use in dye-sensitized solar cells - Google Patents

Perylenemonoimide and naphthalenemonoimide derivatives and their use in dye-sensitized solar cells Download PDF

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WO2014147525A2
WO2014147525A2 PCT/IB2014/059678 IB2014059678W WO2014147525A2 WO 2014147525 A2 WO2014147525 A2 WO 2014147525A2 IB 2014059678 W IB2014059678 W IB 2014059678W WO 2014147525 A2 WO2014147525 A2 WO 2014147525A2
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Prior art keywords
alkyl
hydrogen
aryl
compounds
general formula
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PCT/IB2014/059678
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French (fr)
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WO2014147525A3 (en
Inventor
Henrike WONNEBERGER
Neil Gregory Pschirer
Flavio Luiz Benedito
Ingmar Bruder
Robert SEND
Yulian ZAGRANYARSKI
Chen Li
Klaus MÜLLEN
Long Chen
Artem Nikolaevich SKABEEV
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Basf Se
Basf (China) Company Limited
MAX-PLANCK-Gesellschaft zur Förderung der Wissenschaften e.V.
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Priority to AU2014233849A priority Critical patent/AU2014233849A1/en
Priority to EP14769193.5A priority patent/EP2976316A4/en
Priority to US14/772,488 priority patent/US9428518B2/en
Priority to JP2016503747A priority patent/JP2016520997A/en
Priority to KR1020157029981A priority patent/KR20150133785A/en
Priority to CN201480012352.7A priority patent/CN105143153A/en
Publication of WO2014147525A2 publication Critical patent/WO2014147525A2/en
Publication of WO2014147525A3 publication Critical patent/WO2014147525A3/en

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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D491/00Heterocyclic compounds containing in the condensed ring system both one or more rings having oxygen atoms as the only ring hetero atoms and one or more rings having nitrogen atoms as the only ring hetero atoms, not provided for by groups C07D451/00 - C07D459/00, C07D463/00, C07D477/00 or C07D489/00
    • C07D491/02Heterocyclic compounds containing in the condensed ring system both one or more rings having oxygen atoms as the only ring hetero atoms and one or more rings having nitrogen atoms as the only ring hetero atoms, not provided for by groups C07D451/00 - C07D459/00, C07D463/00, C07D477/00 or C07D489/00 in which the condensed system contains two hetero rings
    • C07D491/06Peri-condensed systems
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    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D221/00Heterocyclic compounds containing six-membered rings having one nitrogen atom as the only ring hetero atom, not provided for by groups C07D211/00 - C07D219/00
    • C07D221/02Heterocyclic compounds containing six-membered rings having one nitrogen atom as the only ring hetero atom, not provided for by groups C07D211/00 - C07D219/00 condensed with carbocyclic rings or ring systems
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    • C07DHETEROCYCLIC COMPOUNDS
    • C07D471/00Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, at least one ring being a six-membered ring with one nitrogen atom, not provided for by groups C07D451/00 - C07D463/00
    • C07D471/02Heterocyclic compounds containing nitrogen atoms as the only ring hetero atoms in the condensed system, at least one ring being a six-membered ring with one nitrogen atom, not provided for by groups C07D451/00 - C07D463/00 in which the condensed system contains two hetero rings
    • C07D471/06Peri-condensed systems
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    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D493/00Heterocyclic compounds containing oxygen atoms as the only ring hetero atoms in the condensed system
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    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D495/00Heterocyclic compounds containing in the condensed system at least one hetero ring having sulfur atoms as the only ring hetero atoms
    • C07D495/02Heterocyclic compounds containing in the condensed system at least one hetero ring having sulfur atoms as the only ring hetero atoms in which the condensed system contains two hetero rings
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    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09BORGANIC DYES OR CLOSELY-RELATED COMPOUNDS FOR PRODUCING DYES, e.g. PIGMENTS; MORDANTS; LAKES
    • C09B5/00Dyes with an anthracene nucleus condensed with one or more heterocyclic rings with or without carbocyclic rings
    • C09B5/62Cyclic imides or amidines of peri-dicarboxylic acids of the anthracene, benzanthrene, or perylene series
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    • C09BORGANIC DYES OR CLOSELY-RELATED COMPOUNDS FOR PRODUCING DYES, e.g. PIGMENTS; MORDANTS; LAKES
    • C09B57/00Other synthetic dyes of known constitution
    • C09B57/08Naphthalimide dyes; Phthalimide dyes
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES OR LIGHT-SENSITIVE DEVICES, OF THE ELECTROLYTIC TYPE
    • H01G9/00Electrolytic capacitors, rectifiers, detectors, switching devices, light-sensitive or temperature-sensitive devices; Processes of their manufacture
    • H01G9/20Light-sensitive devices
    • H01G9/2059Light-sensitive devices comprising an organic dye as the active light absorbing material, e.g. adsorbed on an electrode or dissolved in solution
    • HELECTRICITY
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    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
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    • H10K85/60Organic compounds having low molecular weight
    • H10K85/615Polycyclic condensed aromatic hydrocarbons, e.g. anthracene
    • H10K85/621Aromatic anhydride or imide compounds, e.g. perylene tetra-carboxylic dianhydride or perylene tetracarboxylic di-imide
    • HELECTRICITY
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    • H10K85/00Organic materials used in the body or electrodes of devices covered by this subclass
    • H10K85/60Organic compounds having low molecular weight
    • H10K85/631Amine compounds having at least two aryl rest on at least one amine-nitrogen atom, e.g. triphenylamine
    • H10K85/633Amine compounds having at least two aryl rest on at least one amine-nitrogen atom, e.g. triphenylamine comprising polycyclic condensed aromatic hydrocarbons as substituents on the nitrogen atom
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    • H10K85/60Organic compounds having low molecular weight
    • H10K85/631Amine compounds having at least two aryl rest on at least one amine-nitrogen atom, e.g. triphenylamine
    • H10K85/636Amine compounds having at least two aryl rest on at least one amine-nitrogen atom, e.g. triphenylamine comprising heteroaromatic hydrocarbons as substituents on the nitrogen atom
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01GCAPACITORS; CAPACITORS, RECTIFIERS, DETECTORS, SWITCHING DEVICES OR LIGHT-SENSITIVE DEVICES, OF THE ELECTROLYTIC TYPE
    • H01G9/00Electrolytic capacitors, rectifiers, detectors, switching devices, light-sensitive or temperature-sensitive devices; Processes of their manufacture
    • H01G9/20Light-sensitive devices
    • H01G9/2027Light-sensitive devices comprising an oxide semiconductor electrode
    • H01G9/2031Light-sensitive devices comprising an oxide semiconductor electrode comprising titanium oxide, e.g. TiO2
    • HELECTRICITY
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    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K30/00Organic devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation
    • H10K30/10Organic devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation comprising heterojunctions between organic semiconductors and inorganic semiconductors
    • H10K30/15Sensitised wide-bandgap semiconductor devices, e.g. dye-sensitised TiO2
    • H10K30/151Sensitised wide-bandgap semiconductor devices, e.g. dye-sensitised TiO2 the wide bandgap semiconductor comprising titanium oxide, e.g. TiO2
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    • H10K30/00Organic devices sensitive to infrared radiation, light, electromagnetic radiation of shorter wavelength or corpuscular radiation
    • H10K30/50Photovoltaic [PV] devices
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy
    • Y02E10/542Dye sensitized solar cells
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy
    • Y02E10/549Organic PV cells
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P70/00Climate change mitigation technologies in the production process for final industrial or consumer products
    • Y02P70/50Manufacturing or production processes characterised by the final manufactured product

Definitions

  • the present invention relates to the use of compounds of general formula I
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, Y 1 oxygen or N-Z-A, is -COOM , -SO3M or -PO3M ,
  • R ' alkali metal cation or [NR ' ] R ' hydrogen or alkyl, where the radicals R ' may be identical or different,
  • Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl
  • A is -COOM , -SO3M or -PO3M ,
  • R ' alkali metal cation or [N R ' ] hydrogen or alkyl, where the radicals R ' may be identical or different, Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen; to compounds of general formula I"
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
  • A is -COOM , -SO3M or -PO3M ,
  • R ' hydrogen or alkyl, where the radicals R ' may be identical or different, Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
  • variables have the following meaning R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, q 0 or 1 .
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl
  • R 4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, in the case of q equal to 0 or 1 :
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, X sulfur, oxygen or N R 3 ,
  • R 3 hydrogen, alkyl, cycloalkyl, aryl or hetaryl
  • R 4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl; to the use of compounds of general formulae I, ⁇ or I" as sensitizers in dye-sensitized solar cells; and to such dye-sensitized solar cells per se.
  • the direct conversion of solar energy to electrical energy in solar cells is based on the internal photoeffect of a semiconductor material, i.e. the generation of electron-hole pairs by absorption of photons and the separation of the negative and positive charge carriers at a p-n junction or a Schottky contact.
  • the photovoltage thus generated can bring about a photocurrent in an external circuit, through which the solar cell delivers its power.
  • Thin layers or films of metal oxides are known to constitute inexpensive solid semiconductor materials (n-semiconductors), but their absorption, owing to large band gaps, is typically not within the visible region of the electromagnetic spectrum.
  • the metal oxides therefore have to be combined with a photosensitizer which absorbs in the wavelength range of sunlight, i.e.
  • DSCs Dye-sensitized solar cells which are based on titanium dioxide as the semiconductor material are described, for example, in US-A-4 927 721 , Nature 353, p. 737-740 (1991 ) and US-A-5 350 644, and also Nature 395, p. 583-585 (1998) and EP- A-1 176 646.
  • These solar cells comprise monomolecular films of transition metal complexes, especially ruthenium complexes, which are bonded to the titanium dioxide layer via acid groups, as sensitizers and iodine/iodide redox systems present in dissolved form or amorphous organic p-conductors based on spirobifluorenes.
  • metal-free organic dyes have attracted increasing attention as they do not contain any toxic or costly metal and their properties are easily tuned by facile structural modification.
  • they generally have much higher extinction coefficients when compared to Ru(ll) polypyridyls, making them excellent for use in solid state DSCs in combination with hole transporting materials such as P3HT as shown, for example, by G. K. Mor, S. Kim, M. Paulose, O. K. Varghese, K. Shankar, J. Basham and C. A. Grimes, Nano Lett., 2009, 9, 4250, or spiro-MeOTAD as shown, for example, by H. J. Snaith, A. J. Moule, C. Klein, K. Meerholz, R. H. Friend, M. Gratzel, Nano Lett., 2007, 7, 3372.
  • perylene-3,4:9,10-tetracarboxylic acid derivatives as sensitizers are examined in Japanese documents JP-A-10-189065, 2000-243463, 2001 -093589, 2000-100484 and 10-334954, and in New J. Chem. 26, p. 1 155-1 160 (2002).
  • rylene derivatives useful as sensitizers in DSCs are prepared and evaluated in WO 2007/054470 A1 .
  • versatile substitution patterns are desirable.
  • (I) have been found for use in dye-sensitized colar cells, wherein the variables have the following meaning R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, 0 or 1 , sulfur, oxygen or N R 3 , hydrogen, alkyl, cycloalkyl, aryl or hetaryl, oxygen or N-Z-A, is -COOM , -SO3M or -PO3M , hydrogen, alkali metal cation or [N R ' ] 4+ , hydrogen or alkyl, where the radicals R ' may be identical or different, and
  • Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
  • R 1 , R 2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
  • R 3 alkyl or aryl
  • M hydrogen, alkali metal cation or [N R ' ] hydrogen or alkyl, where the radicals R ' may be identical or different, and Z Ci-C6-alkylene or 1 ,4-phenylene.
  • a further objective of the instant invention are compounds of general formula ⁇
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
  • X sulfur, oxygen or N R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
  • A is -COOM , -SO3M or -PO3M ,
  • R ' hydrogen or alkyl, where the radicals R ' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
  • R 1 , R 2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
  • R 3 alkyl or aryl, Y 1 oxygen or N-Z-A,
  • R ' hydrogen or alkyl, where the radicals R ' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene.
  • variables have the following meaning R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl
  • A is -COOM , -SO3M or -P0 3 M,
  • R ' hydrogen or alkyl, where the radicals R ' may be identical or different and
  • Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
  • R 1 , R 2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
  • R 3 alkyl or aryl, Y 1 oxygen or N-Z-A,
  • R ' hydrogen or alkyl, where the radicals R ' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene.
  • a further objective of the instant invention is the use of compounds of general formula II
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
  • R 4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, in the case of q equal to 0 or 1 :
  • compounds of general formula II can be submitted to treatment with an hydroxide alkaline reagent in a fairly or non-nucleophilic solvent or suspending agent to yield compounds of general formula i
  • Another route for the preparation of the compound of formula ii is the reaction of the compound of formula i with the aforementioned amine in an polar aprotic solvent in the presence of Lewis-acidic salts of organic or inorganic acids with metals such as zinc, iron, copper and magnesium and also the oxides of these metals, for example zinc acetate, zinc propionate, zinc oxide, iron(lll) acetate, iron(ll) chloride, iron(ll) sulfate, copper(ll) acetate, copper(ll) oxide and magnesium acetate, particular preference being given to zinc acetate.
  • the salts are preferably used in anhydrous form.
  • Suitable polar aprotic solvents for both aforementioned routes are in particular aprotic nitrogen heterocycles such as pyridine, pyrimidine, imidazole, quinoline, isoquinoline, N-methylpiperidine, N-methylpiperidone and N-methylpyrrolidone, or carboxamides such as dimethylformamide and dimethylacetamide. Further information on this route can be retrieved e.g. from US 2008/0269482 A1 from the passage starting on page 21 and titled "A.3. Preparation of Rylene Derivatives of the Formula Ia3".
  • variables have the following meaning independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, q 0 or 1 , X sulfur, oxygen or N R 3 ,
  • R 3 alkyl or aryl
  • R 4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl, in the case of q equal to 0 or 1 :
  • R 1 , R 2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, X sulfur, oxygen or N R 3 ,
  • R 3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl
  • R 4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl.
  • R 1 , R 2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
  • R 3 alkyl or aryl
  • R 4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl.
  • the variables have the following meaning
  • R 1 , R 2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
  • R 4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl.
  • a further objective of the instant invention is the use of compounds of general formula I and preferred compounds of general formula I as sensitizers in dye-sensitized solar cells.
  • a further objective of the instant invention is the use of compounds of general formula ⁇ and preferred compounds of general formula ⁇ as sensitizers in dye-sensitized solar cells.
  • a further objective of the instant invention is the use of compounds of general formula I" and preferred compounds of general formula ⁇ " as sensitizers in dye-sensitized solar cells.
  • a further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula I and preferred compounds of general formula I.
  • a further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula ⁇ and preferred compounds of general formula ⁇ .
  • a further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula I" and preferred compounds of general formula ⁇ ".
  • alkyl, aryl or heteroaryl represents unsubstituted or substituted alkyl, unsubstituted or substituted aryl or unsubstituted or substituted heteroaryl.
  • Alkyl comprises straight-chain or branched alkyl.
  • Alkyl is preferably Ci-C3o-alkyl, especially Ci-C2o-alkyl and most preferably Ci-Ci2-alkyl.
  • alkyl groups are especially methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, n-hexyl, n-heptyl, n-octyl, n-nonyl, n-decyl, n-undecyl, n-dodecyl, n-tridecyl, n- tetradecyl, n-hexadecyl, n-octadecyl and n-eicosyl.
  • R a is selected from Ci- to C28-alkyl, where the sum of the carbon atoms of the
  • R9 radicals is an integer from 2 to 29.
  • the R a radicals are preferably selected from Ci- to Ci2-alkyl, especially Ci- to Cs-alkyl.
  • Preferred branched alkyl radicals of the above formula are, for example:
  • 1-nonyltetracosanyl 1-octyltetracosanyl, 1-heptyltetracosanyl, 1-hexyltetracosanyl, 1-pentyltetracosanyl, 1-butyltetracosanyl, 1-propyltetracosanyl, 1-ethyltetracosanyl, 1 -methyltetracosanyl, 1 -heptacosanyloctacosanyl, 1 -hexacosanyloctacosanyl,
  • 1-dodecyloctacosanyl 1-undecyloctacosanyl, 1-decyloctacosanyl, 1-nonyloctacosanyl, 1-octyloctacosanyl, 1-heptyloctacosanyl, 1-hexyloctacosanyl, 1-pentyloctacosanyl, 1-butyloctacosanyl, 1-propyloctacosanyl, 1-ethyloctacosanyl, 1-methyloctacosanyl.
  • AlkyI also comprises alkyl radicals whose carbon chains may be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -CO-, -NR b -, -SO- and/or - SO2- where R b is preferably hydrogen, unsubstituted straight-chain or branched alkyl as described before or unsubstituted aryl as described below.
  • Substituted alkyl groups may, depending on the length of the alkyl chain, have one or more (e.g.1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from cycloalkyi, heterocycloalkyi, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro.
  • Aryl-substituted alkyl radicals have at least one unsubstituted or substituted aryl group, as defined below.
  • the alkyl group of the aralkyl radical may bear at least one further substituent and/or be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -CO-, -NR b -, -SO- and/or -SO2- where R b is preferably hydrogen, unsubstituted straight-chain or branched alkyl as described before or unsubstituted aryl as described below.
  • Arylalkyl is preferably phenyl-Ci-Cio-alkyl, more preferably phenyl-Ci-C4-alkyl, for example benzyl, 1 -phenethyl, 2-phenethyl,
  • Halogen-substituted alkyl groups comprise a straight-chain or branched alkyl group in which at least one hydrogen atom or all hydrogen atoms are replaced by halogen.
  • the halogen atoms are preferably selected from fluorine, chlorine and bromine, especially fluorine and chlorine.
  • Examples of haloalkyi groups are especially chloromethyl, bromomethyl, dichloromethyl, trichloromethyl, fluoromethyl,
  • 6-fluoro-1 -hexyl 6-chloro-1 -hexyl, 6-bromo-1 -hexyl, 6-iodo-1 -hexyl, 6,6,6-trichloro- 1 -hexyl or dodecafluorohexyl.
  • unsubstituted and substituted alkyl radicals which may be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -NR b -, -CO-, -SO- and/or -S0 2 - are: methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, n-hexyl, n-heptyl, n-octyl, n-nonyl, n-decyl, n-undecyl, n-dodecyl, n-tridecyl, n-tetradecyl, n-hexadecyl, n-octadecyl and n-eicosyl, 2-methoxyethyl, 2-ethoxyethyl,
  • N,N-bis(4-chlorophenyl)aminosulfonyl methoxycarbonyl, ethoxycarbonyl, propoxycarbonyl hexoxycarbonyl
  • cycloalkyl denotes a cycloaliphatic radical having preferably 3 to 10, more preferably 5 to 8, carbon atoms.
  • cycloalkyl groups are especially cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl or cyclooctyl.
  • Substituted cycloalkyi groups may, depending on the ring size, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents.
  • cycloalkyi groups preferably bear one or more, for example one, two, three, four or five, Ci-C6-alkyl groups.
  • substituted cycloalkyi groups are especially 2- and
  • substituted and unsubstituted cycloalkyi groups are cyclopropyl, cyclobutyl, cyclopentyl, 2- and 3-methylcyclopentyl, 2- and 3-ethylcyclo-pentyl, cyclohexyl, 2-, 3- and 4-methylcyclohexyl, 2-, 3- and 4-ethylcyclohexyl, 3- and 4- propylcyclohexyl, 3- and 4-isopropylcyclohexyl, 3- and 4-butylcyclohexyl, 3- and 4-sec- butylcyclohexyl, 3- and 4-tert-butylcyclohexyl, cycloheptyl, 2-, 3- and
  • aryl comprises mono- or polycyclic aromatic hydrocarbon radicals and monocyclic aromatic hydrocarbon radicals which may be fused to one or more unfused or fused saturated or unsaturated carbocyclic or heterocyclic five or six membered rings.
  • Aryl has preferably 6 to 14, more preferably 6 to 10, carbon atoms. Examples of aryl are especially phenyl, naphthyl, indenyl, fluorenyl, anthracenyl, phenanthrenyl, naphthacenyl, chrysenyl and pyrenyl, especially phenyl, naphthyl and fluorenyl.
  • Substituted aryls may, depending on the number and size of their ring systems, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from alkyl, alkoxy, alkylamino, alkylthio, cycloalkyi,
  • heterocycloalkyl aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro.
  • the alkyl, alkoxy, alkylamino, alkylthio, cycloalkyi, heterocycloalkyl, aryl and hetaryl substituents on the aryl may in turn be unsubstituted or substituted. Reference is made to the substituents mentioned above for these groups.
  • the substituents on the aryl are preferably selected from alkyl, alkoxy, haloalkyl, haloalkoxy, aryl, fluorine, chlorine, bromine, cyano and nitro.
  • Substituted aryl is more preferably substituted phenyl which generally bears 1 , 2, 3, 4 or 5, preferably 1 , 2 or 3, substituents.
  • Substituted aryl is preferably aryl substituted by at least one alkyl group ("alkaryl").
  • Alkaryl groups may, depending on the size of the aromatic ring system, have one or more (e.g. 1 , 2, 3, 4, 5, 6, 7, 8, 9 or more than 9) alkyl substituents.
  • the alkyl substituents may be unsubstituted or substituted. In this regard, reference is made to the above statements regarding unsubstituted and substituted alkyl.
  • the alkaryl groups have exclusively unsubstituted alkyl substituents.
  • Alkaryl is preferably phenyl which bears 1 , 2, 3, 4 or 5, preferably 1 , 2 or 3, more preferably 1 or 2, alkyl substituents.
  • Aryl which bears one or more radicals is, for example, 2-, 3- and 4-methylphenyl, 2,4-, 2,5-, 3,5- and 2,6-dimethylphenyl, 2,4,6-trimethylphenyl, 2-, 3- and 4-ethylphenyl, 2,4-, 2,5-, 3,5- and 2,6-diethylphenyl, 2,4,6-triethylphenyl, 2-, 3- and 4-propylphenyl, 2,4-,
  • unsubstituted or substituted aryl also apply to unsubstituted or substituted aryloxy and unsubstituted or substituted arylthio.
  • aryloxy are phenoxy and naphthyloxy.
  • hetaryl comprises heteroaromatic, mono- or polycyclic groups and monocyclic groups which may be fused to one or more unfused or fused saturated or unsaturated carbocyclic or heterocyclic five or six membered rings.
  • ring carbon atoms these have 1 , 2, 3, 4 or more than 4 of the ring heteroatoms.
  • the heteroatoms are preferably selected from oxygen, nitrogen, selenium and sulfur.
  • the hetaryl groups have preferably 5 to 18, e.g. 5, 6, 8, 9, 10, 1 1 , 12, 13 or 14, ring atoms.
  • Monocyclic hetaryl groups are preferably 5- or 6-membered hetaryl groups, such as 2-furyl (furan-2-yl), 3-furyl (furan-3-yl), 2-thienyl (thiophen-2-yl), 3-thienyl (thiophen-3- yl), selenophen-2-yl, selenophen-3-yl, 1 H-pyrrol-2-yl, 1 H-pyrrol-3-yl, pyrrol-1 -yl, imidazol-2-yl, imidazol-1 -yl, imidazol-4-yl, pyrazol-1 -yl, pyrazol-3-yl, pyrazol-4-yl, pyrazol-5-yl, 3-isoxazolyl, 4-isoxazolyl, 5-isoxazolyl, 3-isothiazolyl, 4-isothiazolyl, 5-isothiazolyl, 2-oxazolyl, 4-oxazoly
  • Polycyclic hetaryl has 2, 3, 4 or more than 4 fused rings.
  • the fused-on rings may be aromatic, saturated or partly unsaturated.
  • Examples of polycyclic hetaryl groups are quinolinyl, isoquinolinyl, indolyl, isoindolyl, indolizinyl, benzofuranyl, isobenzofuranyl, benzothiophenyl, benzoxazolyl, benzisoxazolyl, benzthiazolyl, benzoxadiazolyl;
  • benzothiadiazolyl benzoxazinyl, benzopyrazolyl, benzimidazolyl, benzotriazolyl, benzotriazinyl, benzoselenophenyl, thienothiophenyl, thienopyrimidyl, thiazolothiazolyl, dibenzopyrrolyl (carbazolyl), dibenzofuranyl, dibenzothiophenyl, naphtho[2,3-b]- thiophenyl, naphtha[2,3-b]furyl, dihydroindolyl, dihydroindolizinyl, dihydroisoindolyl, dihydroquinolinyl, dihydroisoquinolinyl.
  • Substituted heteroaryls may, depending on the number and size of their ring systems, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from alkyl, alkoxy, alkylamino, alkylthio, cycloalkyl, heterocycloalkyl, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro.
  • Halogen substituents are preferably fluorine, chlorine or bromine.
  • the substituents are preferably selected from Ci-C6-alkyl, Ci-C6-alkoxy, hydroxyl, carboxyl, halogen and cyano.
  • Halogen represents fluorine, chlorine, bromine or iodine, preferably chlorine and bromine.
  • Alkali cation represents sodium, potassium, rubidium and cesium, preferably sodium and potassium.
  • R ' in the tetraalkyl ammonium cation [NR ' ] 4+ typically refers to methyl or tert.-butyl. Further details on the preparation of the compounds according to the instant invention can be taken from the experimental section.
  • DSCs generally comprise the following elements: an electrically conductive layer (being part of or forming the working electrode or anode), a photosensitive layer generally comprising a semi-conductive metal oxide and a photosensitive dye, a charge transfer layer and another electrically conductive layer (being part of or forming the counter electrode or cathode).
  • reaction mixture was cooled down to room temperature and 590 mg (2,15mmol) 2-bromo-9,9-dimethylfluorene, 270 mg (2,8mmol) NaOtBu, 275 mg (0,3mmol) Pd2(dba)3 and 0.9 mg (1 ,9 mmol) tri-(t-butyl)phosphine (10% in toluene) were added and stirred at 80°C for 2 more days.
  • the reaction mixture was cooled down to room temperature and filtered over celite and washed and extracted with DCM .
  • the crude product was purified via column chromatography on silica with DCM . Yield: 1 ,3g (56%)
  • UV-Vis (CH2CI2): Amax 509 nm (43626 N cnrr 1 ).
  • UV-Vis (CH2CI2): Amax 659 nm (54533 IV crrr 1 ).
  • the electrodes were then dyed in 0.5 mM dye solution in toluene or CH 2 CI 2 (DCM) (solvent listed in table 1 ).
  • Spiro-MeOTAD was applied by spin-coating from a solution in DCM (200 mg/mL) also containing 20 mM Li(CF3SC>2)2N . Fabrication of the device was completed by evaporation of 200 nm of silver as the counter electrode.
  • the active area of the sDSC was defined by the size of these contacts (0.13 cm 2 ), and the cells were masked by an aperture of the same area for measurements.
  • the current-voltage characteristics for all cells were measured with a Keithley 2400 under 1000 W/m 2 , AM 1 .5G conditions (LOT ORIEL 450 W).
  • the incident photon to current conversion efficiency's (IPCE) were obtained with an Acton Research Monochromator using additional white background light illumination.
  • the power of the incident light beam was (2- 5) ⁇ 10 8 W.
  • the negative voltage of -300 V was supplied to the sample substrate.
  • the counter-electrode with the 4.5x15 mm 2 slit for illumination was placed at 8 mm distance from the sample surface.
  • the counter-electrode was connected to the input of the BK2- 16 type electrometer, working in the open input regime, for the photocurrent
  • Isc short circuit current
  • Voc open circuit voltage
  • FF fill factor
  • ETA efficiency
  • Figure 1 Absorbance of compound 8 on T1O2 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 2 EQE of the OPV cell in the case of use of compound 8 (applied as toluene solution) with ADD1 and ADD2 before coating with the hole conductor
  • Figure 3 Current-voltage characteristic of the OPV cell in the case of use of compound 8 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 4 Absorbance of compound 12 on T1O2 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 5 EQE of the OPV cell in the case of use of compound 12 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
  • Figure 6 Current-voltage characteristic of the OPV cell in the case of use of compound 12 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 7 Absorbance of compound 2 on ⁇ 2 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 8 EQE of the OPV cell in the case of use of compound 2 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
  • Figure 9 Current-voltage characteristic of the OPV cell in the case of use of compound 2 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 10 Absorbance of compound 5 on ⁇ 2 with additives ADD1 and ADD2 before coating with the hole conductor
  • Figure 1 1 EQE of the OPV cell in the case of use of compound 5 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
  • Figure 12 Current-voltage characteristic of the OPV cell in the case of use of compound 5 with additives ADD1 and ADD2 before coating with the hole conductor

Abstract

The present invention relates to the use of compounds of general formula (I) wherein the variables have the meaning given in the description in dye-sensitized solar cells; to compounds of general formula (I') wherein the variables have the meaning given in the description; to compounds of general formula (I") wherein the variables have the meaning given in the description; to the use of compounds of general formula (II) in the case of q equal to 0 or 1 : as precursor compounds for the manufacture of compounds of general formula (I) and in the case of q equal to 1 : as precursor compounds for the manufacture of compounds of general formula (I') wherein the remaining variables have the meaning given in the description; to compounds of general formula (III) wherein the variables have the meaning given in the description; to the use of compounds of general formulae (I), (I') or (I") as sensitizers in dye-sensitized solar cells; and to such dye-sensitized solar cells per se.

Description

Perylenemonoimide and naphthalenemonoimide derivatives and their use in dye- sensitized solar cells
Description
The present invention relates to the use of compounds of general formula I
Figure imgf000003_0001
(I) wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
0 or 1 .
X sulfur, oxygen or N R3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, Y1 oxygen or N-Z-A, is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [NR'] R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
substituted by one or more substituents alkyl, nitro, cyano and/or halogen, in dye-sensitized solar cells; to compounds of general formula Γ
Figure imgf000004_0001
(0 wherein the variables have the following meaning
R1 , R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
X sulfur, oxygen or N R3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y1 oxygen or N-Z-A, A is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [N R'] hydrogen or alkyl, where the radicals R' may be identical or different, Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen; to compounds of general formula I"
Figure imgf000005_0001
(I") wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y1 oxygen or N-Z-A,
A is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different, Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
substituted by one or more substituents alkyl, nitro, cyano and/or halogen; to the use of compounds of general formula II
Figure imgf000006_0001
(II) wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, q 0 or 1 .
X sulfur, oxygen or N R3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y2 NR4,
R4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, in the case of q equal to 0 or 1 :
as precursor compounds for the manufacture of compounds of general formula I and in the case of q equal to 1 :
as precursor compounds for the manufacture of compounds of general formula Γ; to compounds of general formula III
Figure imgf000007_0001
(ill) wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, X sulfur, oxygen or N R3,
R3 hydrogen, alkyl, cycloalkyl, aryl or hetaryl,
Y2 NR4,
R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl; to the use of compounds of general formulae I, Γ or I" as sensitizers in dye-sensitized solar cells; and to such dye-sensitized solar cells per se.
The direct conversion of solar energy to electrical energy in solar cells is based on the internal photoeffect of a semiconductor material, i.e. the generation of electron-hole pairs by absorption of photons and the separation of the negative and positive charge carriers at a p-n junction or a Schottky contact. The photovoltage thus generated can bring about a photocurrent in an external circuit, through which the solar cell delivers its power. Thin layers or films of metal oxides are known to constitute inexpensive solid semiconductor materials (n-semiconductors), but their absorption, owing to large band gaps, is typically not within the visible region of the electromagnetic spectrum. For use in solar cells, the metal oxides therefore have to be combined with a photosensitizer which absorbs in the wavelength range of sunlight, i.e. at from 300 to 2000 nm, and, in the electronically excited state, injects electrons into the conduction band of the semiconductor. With the aid of a redox system which is used additionally in the cell and is reduced at the counterelectrode, electrons are recycled to the sensitizer which is thus regenerated.
Of particular interest for use in solar cells are the semiconductors zinc oxide, tin dioxide and especially titanium dioxide, which are used in the form of nanocrystalline porous layers. These layers have a large surface area which is coated with the sensitizer, so that high absorption of sunlight is achieved.
Dye-sensitized solar cells (DSCs) which are based on titanium dioxide as the semiconductor material are described, for example, in US-A-4 927 721 , Nature 353, p. 737-740 (1991 ) and US-A-5 350 644, and also Nature 395, p. 583-585 (1998) and EP- A-1 176 646. These solar cells comprise monomolecular films of transition metal complexes, especially ruthenium complexes, which are bonded to the titanium dioxide layer via acid groups, as sensitizers and iodine/iodide redox systems present in dissolved form or amorphous organic p-conductors based on spirobifluorenes.
Ruthenium complexes as molecular sensitizers have shown impressive solar-to-electric power conversion efficiencies (PCE) in liquid electrolyte based devices, with the PCE reaching over 1 1 % under standard AM 1 .5G full sunlight as was shown by
M. K. Nazeeruddin, F. De Angelis, S. Fantacci, A. Selloni, G. Viscardi, P. Liska, S. Ito, T. Bessho, M. Gratzel, J. Am. Chem. Soc. 2005, 127, 16835;
Y. Chiba, A. Islam, Y. Watanabe, R. Komiya, N. Koide, L. Y. Han, Jpn. J. Appl. Phys. 2006, 45, L638;
F. Gao, Y. Wang, D. Shi, J. Zhang, M. K. Wang, X. Y. Jing, R. Humphry-Baker, P. Wang, S. M . Zakeeruddin, M. Gratzel, J. Am. Chem. Soc. 2008, 130, 10720;
Y. M. Cao, Y. Bai, Q. J. Yu, Y. M. Cheng, S. Liu, D. Shi, F. Gao, P. Wang, J. Phys. Chem. C 2009, 1 13, 6290;
and
C.-Y. Chen, M . K. Wang, J.-Y. Li, N. Pootrakulchote, L. Alibabaei, C. H . Ngoc-le, J. D. Decoppet, J .H. Tsai, C. Gratzel, C. G. Wu, S. M. Zakeeruddin, M. Gratzel, ACS Nano 2009, 3, 3103.
In recent years, metal-free organic dyes have attracted increasing attention as they do not contain any toxic or costly metal and their properties are easily tuned by facile structural modification. In addition, they generally have much higher extinction coefficients when compared to Ru(ll) polypyridyls, making them excellent for use in solid state DSCs in combination with hole transporting materials such as P3HT as shown, for example, by G. K. Mor, S. Kim, M. Paulose, O. K. Varghese, K. Shankar, J. Basham and C. A. Grimes, Nano Lett., 2009, 9, 4250, or spiro-MeOTAD as shown, for example, by H. J. Snaith, A. J. Moule, C. Klein, K. Meerholz, R. H. Friend, M. Gratzel, Nano Lett., 2007, 7, 3372.
Due to their high extinction coefficients and long-term stability against the action of oxygen and/or light rylene derivatives have attracted much attention as possible sensitizers for DSCs.
Thus, perylene-3,4:9,10-tetracarboxylic acid derivatives as sensitizers are examined in Japanese documents JP-A-10-189065, 2000-243463, 2001 -093589, 2000-100484 and 10-334954, and in New J. Chem. 26, p. 1 155-1 160 (2002).
Further rylene derivatives useful as sensitizers in DSCs are prepared and evaluated in WO 2007/054470 A1 . In order to facilitate tailor-made adjustments of the molecular properties of rylenes, versatile substitution patterns are desirable. Rylene derivatives with core-extensions comprising heteroatoms like nitrogen, sulfur or oxygen, like compounds depicted in formula I at the outset, were hitherto not considered for use in organic electronics applications.
Naphthalene compounds of formula
Figure imgf000009_0001
are described by X. Qian et al. in Chem. Commun., 2001 , 2656 - 2657 (D = oxygen; Het = oxygen), in EP 1 172418 A2 (D = N-(CH2)6-OH, Het = sulfur; D = N-(CH2)6-NH2, Het = sulfur; D = N-(CH2)2-0-(CH2)2-0-(CH2)2-NH2, Het = sulfur), by H. Yin et al. in European Journal of Medicinal Chemistry 46 (201 1 ) 3030-2037 (D = N-(CH2)2-N(CH3)2, Het = sulfur; D = N-(CH2)2-N(CH3)2, Het = oxygen; D = oxygen, Het = oxygen; D = N- (CH2)2-N+(0 )(CH3)2, Het = sulfur; D = N-(CH2)2-N+(0 )(CH3)2, Het = oxygen), by P.H. Grayshan et al. in Heterocyclic Chem. 1974, 34-38 (D = N-R, Het = sulfur; D = oxygen, Het = sulfur), by Qian Xuhong and Ren Shengwu in J. Chem. Eng. Data 1988, 33, 528- 529 (D = oxygen, Het = oxygen; D = N R, Het = oxygen), by Q. Yang et al. in Bioorg. Med. Chem. 13 (2005) 1615-1622 (D = oxygen, Het = sulfur; D = NR, Het = sulfur), by Q. Yang et al. in Bioorganic & Medicinal Chemistry Letters 18 (2008) 6210-6213 (D = NR, Het = sulfur; D = oxygen, Het = sulfur), by A. M. Kadhim and A. T. Peters in Tetrahedron. Vol. 30 (1974), 2245-2249 (D = oxygen, Het = sulfur; D = NR, Het = sulfur), by Qian Xuhong et al. in Tetrahedron Letters 43 (2002) 2995-2998 (D = oxygen, Het = sulfur; D = N-CH2-CH=C(CH3)2, Het = sulfur; D = N-CH2-CH(OOH)- C(CH3)=CH2)) and by Qian Xuhong et al. in Bioorganic & Medicinal Chemistry Letters 14 (2004) 2665-2668 (D = NR, Het = sulfur). Those compounds were reported for use in biochemical DNA cleavage reactions, as fluorescent markers for biochemical purposes, as laser or textile dyes, organic pigments and organic whitening agents. None of those references refers to the use of those compounds in the field of organic electronics.
It is the main object of the present invention to provide further rylene compounds the optical and electronic properties of which can be easily tuned for various organic electronics applications, e. g. in the field of organic photovoltaics.
Accordingly, compounds of general formula I
Figure imgf000010_0001
(I) have been found for use in dye-sensitized colar cells, wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, 0 or 1 , sulfur, oxygen or N R3, hydrogen, alkyl, cycloalkyl, aryl or hetaryl, oxygen or N-Z-A, is -COOM , -SO3M or -PO3M , hydrogen, alkali metal cation or [N R']4+, hydrogen or alkyl, where the radicals R' may be identical or different, and
Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
Preferred use is made of compounds wherein in general formula I the variables have the following meaning
R1 , R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, q 0 or 1 ,
X sulfur, oxygen or N R3,
R3 alkyl or aryl,
Y1 oxygen or N-Z-A, A is -COOM ,
M hydrogen, alkali metal cation or [N R'] hydrogen or alkyl, where the radicals R' may be identical or different, and Z Ci-C6-alkylene or 1 ,4-phenylene.
A further objective of the instant invention are compounds of general formula Γ
Figure imgf000012_0001
(0 wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
X sulfur, oxygen or N R3, hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y1 oxygen or N-Z-A,
A is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
The variables of preferred compounds of general formula Γ have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2,
X sulfur, oxygen or N R3,
R3 alkyl or aryl, Y1 oxygen or N-Z-A,
-COOM ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene.
A further objective of the instant invention are compounds of general formula I"
Figure imgf000013_0001
(I") wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y1 oxygen or N-Z-A, A is -COOM , -SO3M or -P03M,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different and
Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be
substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
In preferred compounds of general formula I" the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2,
R3 alkyl or aryl, Y1 oxygen or N-Z-A,
A -COOM ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different and Z Ci-C6-alkylene or 1 ,4-phenylene.
A further objective of the instant invention is the use of compounds of general formula II
Figure imgf000015_0001
(ii) wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
0 or 1 .
X sulfur, oxygen or N R3, R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y2 NR4 and
R4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, in the case of q equal to 0 or 1 :
as precursor compounds for the manufacture of compounds of general formula I and in the case of q equal to 1 :
as precursor compounds for the manufacture of compounds of general formula Γ. Typically, compounds of general formula II can be submitted to treatment with an hydroxide alkaline reagent in a fairly or non-nucleophilic solvent or suspending agent to yield compounds of general formula i
Figure imgf000016_0001
(i)
These latter compounds are identical to compounds of general formula I where Y1 has the meaning of oxygen. Compounds of general formula i can be turned into compounds of general formula ii
A
Figure imgf000016_0002
(ii)
by reacting compounds of general formula i with an amine of formula
H2N-Z-A where Z and A have the meaning given in the definition of the variables of compounds of general formula I. Typically, the amination reaction is carried out with the aid of a water binding agent like, e.g. imidazole, in the presence of a polar aprotic solvent or supending agent, examples of which are given below. Reaction without solvent or suspending agent is also possible. This route is decribe e.g. by H. Wonneberger et al. in Chemistry - An Asian Journal 201 1 , 6, 1744-1747.
Another route for the preparation of the compound of formula ii is the reaction of the compound of formula i with the aforementioned amine in an polar aprotic solvent in the presence of Lewis-acidic salts of organic or inorganic acids with metals such as zinc, iron, copper and magnesium and also the oxides of these metals, for example zinc acetate, zinc propionate, zinc oxide, iron(lll) acetate, iron(ll) chloride, iron(ll) sulfate, copper(ll) acetate, copper(ll) oxide and magnesium acetate, particular preference being given to zinc acetate. The salts are preferably used in anhydrous form.
Suitable polar aprotic solvents for both aforementioned routes are in particular aprotic nitrogen heterocycles such as pyridine, pyrimidine, imidazole, quinoline, isoquinoline, N-methylpiperidine, N-methylpiperidone and N-methylpyrrolidone, or carboxamides such as dimethylformamide and dimethylacetamide. Further information on this route can be retrieved e.g. from US 2008/0269482 A1 from the passage starting on page 21 and titled "A.3. Preparation of Rylene Derivatives of the Formula Ia3".
Examples of reactions of compounds of general formula II to compounds of general formula i and further reaction of the latter to yield compounds of general formula ii are given in the experimental part.
According to the instant invention preferred use is made of compounds of general formula ΙΓ
Figure imgf000017_0001
wherein the variables have the following meaning independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, q 0 or 1 , X sulfur, oxygen or N R3,
R3 alkyl or aryl,
Y2 NR4 and
R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl, in the case of q equal to 0 or 1 :
as precursor compounds for the manufacture of compounds of general formula I according to their preferred embodiments and in the case of q equal to 1 :
as precursor compounds for the manufacture of compounds of general formula Γ according to their preferred embodiments. A further objective of the instant invention are compounds of general formula III
Figure imgf000019_0001
(ill) wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, independently of each other 0, 1 , 2, 3 or 4, X sulfur, oxygen or N R3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y2 NR4,
R4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl.
In preferred compounds of general formula III the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, X sulfur, oxygen or N R3,
R3 alkyl or aryl,
Y2 NR4 and
R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl. In preferred compounds of general formula III according to the instant invention the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio,
hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, X NR3, R3 alkyl or aryl, Y2 NR4 and
R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl.
A further objective of the instant invention is the use of compounds of general formula I and preferred compounds of general formula I as sensitizers in dye-sensitized solar cells.
A further objective of the instant invention is the use of compounds of general formula Γ and preferred compounds of general formula Γ as sensitizers in dye-sensitized solar cells.
A further objective of the instant invention is the use of compounds of general formula I" and preferred compounds of general formula Γ" as sensitizers in dye-sensitized solar cells. A further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula I and preferred compounds of general formula I.
A further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula Γ and preferred compounds of general formula Γ.
A further objective of the instant invention is a dye-sensitized solar cell comprising compounds of general formula I" and preferred compounds of general formula Γ". In the context of the present invention, alkyl, aryl or heteroaryl represents unsubstituted or substituted alkyl, unsubstituted or substituted aryl or unsubstituted or substituted heteroaryl.
Alkyl comprises straight-chain or branched alkyl. Alkyl is preferably Ci-C3o-alkyl, especially Ci-C2o-alkyl and most preferably Ci-Ci2-alkyl. Examples of alkyl groups are especially methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, n-hexyl, n-heptyl, n-octyl, n-nonyl, n-decyl, n-undecyl, n-dodecyl, n-tridecyl, n- tetradecyl, n-hexadecyl, n-octadecyl and n-eicosyl.
Further examples of branched al presented by the following formula
Figure imgf000021_0001
in which # denotes a bonding site, and
Ra is selected from Ci- to C28-alkyl, where the sum of the carbon atoms of the
R9 radicals is an integer from 2 to 29. In the formula above, the Ra radicals are preferably selected from Ci- to Ci2-alkyl, especially Ci- to Cs-alkyl.
Preferred branched alkyl radicals of the above formula are, for example:
-ethylpropyl, 1-methylpropyl, 1-propylbutyl, 1-ethylbutyl, 1-methylbutyl, 1-butylpentyl, -propylpentyl, 1 -ethyl pentyl, 1 -methyl pentyl, 1-pentylhexyl, 1-butylhexyl,
-propylhexyl, 1-ethylhexyl, 1-methylhexyl, 1-hexylheptyl, 1-pentylheptyl, 1-butylheptyl, -propylheptyl, 1-ethylheptyl, 1 -methyl heptyl, 1-heptyloctyl, 1-hexyloctyl, 1-pentyloctyl, -butyloctyl, 1-propyloctyl, 1-ethyloctyl, 1-m ethyl octyl, 1-octylnonyl, 1 -heptyl nonyl, -hexylnonyl, 1-pentylnonyl, 1-butylnonyl, 1-propylnonyl, 1-ethylnonyl, 1-methylnonyl, -nonyldecyl, 1-octyldecyl, 1-heptyldecyl, 1-hexyldecyl, 1-pentyldecyl, 1-butyldecyl, -propyldecyl, 1-ethyldecyl, 1-methyldecyl, 1-decylundecyl, 1-nonylundecyl,
-octylundecyl, 1-heptylundecyl, 1-hexylundecyl, 1-pentylundecyl, 1-butylundecyl, -propylundecyl, 1 -ethyl undecyl, 1-methylundecyl, 1-undecyldodecyl, 1-decyldodecyl, -nonyldodecyl, 1-octyldodecyl, 1-heptyldodecyl, 1-hexyldodecyl, 1-pentyldodecyl, -butyldodecyl, 1-propyldodecyl, 1-ethyldodecyl, 1-methyldodecyl, 1-dodecyltridecyl, -undecyltridecyl, 1-decyltridecyl, 1-nonyltridecyl, 1-octyltridecyl, 1-heptyltridecyl, -hexyltridecyl, 1-pentyltridecyl, 1-butyltridecyl, 1-propyltridecyl, 1-ethyltridecyl, -methyltridecyl, 1-tridecyltetradecyl, 1-undecyltetradecyl, 1-decyltetradecyl,
-nonyltetradecyl, 1-octyltetradecyl, 1-heptyltetradecyl, 1-hexyltetradecyl,
-pentyltetradecyl, 1-butyltetradecyl, 1-propyltetradecyl, 1-ethyltetradecyl, 1 -methyltetradecyl, 1-pentadecylhexadecyl, 1-tetradecylhexadecyl, 1-tridecylhexadecyl, 1-dodecylhexadecyl, 1-undecylhexadecyl, 1-decylhexadecyl, 1-nonylhexadecyl, 1-octylhexadecyl, 1-heptylhexadecyl, 1-hexylhexadecyl, 1-pentylhexadecyl,
1-butylhexadecyl, 1-propylhexadecyl, 1-ethylhexadecyl, 1-methylhexadecyl,
1 -hexadecyloctadecyl , 1 -pentadecyloctadecyl , 1 -tetradecyloctadecyl ,
1-tridecyloctadecyl, 1-dodecyloctadecyl, 1-undecyloctadecyl, 1-decyloctadecyl, 1-nonyloctadecyl, 1-octyloctadecyl, 1-heptyloctadecyl, 1-hexyloctadecyl,
1-pentyloctadecyl, 1-butyloctadecyl, 1-propyloctadecyl, 1-ethyloctadecyl,
1-methyloctadecyl, 1-nonadecyleicosanyl, 1-octadecyleicosanyl,
1-heptadecyleicosanyl, 1-hexadecyleicosanyl, 1-pentadecyleicosanyl,
1-tetradecyleicosanyl, 1-tridecyleicosanyl, 1-dodecyleicosanyl, 1-undecyleicosanyl, 1-decyleicosanyl, 1-nonyleicosanyl, 1-octyleicosanyl, 1-heptyleicosanyl,
1-hexyleicosanyl, 1-pentyleicosanyl, 1-butyleicosanyl, 1-propyleicosanyl,
1-ethyleicosanyl, 1-methyleicosanyl, 1-eicosanyldocosanyl, 1-nonadecyldocosanyl, 1-octadecyldocosanyl, 1-heptadecyldocosanyl, 1-hexadecyldocosanyl,
1 -pentadecyldocosanyl, 1 -tetradecyldocosanyl, 1 -tridecyldocosanyl,
1-undecyldocosanyl, 1-decyldocosanyl, 1-nonyldocosanyl, 1-octyldocosanyl,
1-heptyldocosanyl, 1-hexyldocosanyl, 1-pentyldocosanyl, 1-butyldocosanyl,
1-propyldocosanyl, 1-ethyldocosanyl, 1-methyldocosanyl, 1-tricosanyltetracosanyl, 1-docosanyltetracosanyl, 1-nonadecyltetracosanyl, 1-octadecyltetracosanyl,
1 -heptadecyltetracosanyl, 1 -hexadecyltetracosanyl, 1 -pentadecyltetracosanyl,
1 -pentadecyltetracosanyl, 1 -tetradecyltetracosanyl, 1 -tridecyltetracosanyl,
1 -dodecyltetracosanyl , 1 -undecyltetracosanyl , 1 -decyltetracosanyl ,
1-nonyltetracosanyl, 1-octyltetracosanyl, 1-heptyltetracosanyl, 1-hexyltetracosanyl, 1-pentyltetracosanyl, 1-butyltetracosanyl, 1-propyltetracosanyl, 1-ethyltetracosanyl, 1 -methyltetracosanyl, 1 -heptacosanyloctacosanyl, 1 -hexacosanyloctacosanyl,
1 -pentacosanyloctacosanyl, 1 -tetracosanyloctacosanyl, 1 -tricosanyloctacosanyl, 1 -docosanyloctacosanyl, 1 -nonadecyloctacosanyl, 1 -octadecyloctacosanyl,
1 -heptadecyloctacosanyl, 1 -hexadecyloctacosanyl, 1 -hexadecyloctacosanyl,
1-pentadecyloctacosanyl, 1-tetradecyloctacosanyl, 1-tridecyloctacosanyl,
1-dodecyloctacosanyl, 1-undecyloctacosanyl, 1-decyloctacosanyl, 1-nonyloctacosanyl, 1-octyloctacosanyl, 1-heptyloctacosanyl, 1-hexyloctacosanyl, 1-pentyloctacosanyl, 1-butyloctacosanyl, 1-propyloctacosanyl, 1-ethyloctacosanyl, 1-methyloctacosanyl. AlkyI also comprises alkyl radicals whose carbon chains may be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -CO-, -NRb-, -SO- and/or - SO2- where Rb is preferably hydrogen, unsubstituted straight-chain or branched alkyl as described before or unsubstituted aryl as described below. Substituted alkyl groups may, depending on the length of the alkyl chain, have one or more (e.g.1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from cycloalkyi, heterocycloalkyi, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro.
Aryl-substituted alkyl radicals (aralkyl) have at least one unsubstituted or substituted aryl group, as defined below. The alkyl group of the aralkyl radical may bear at least one further substituent and/or be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -CO-, -NRb-, -SO- and/or -SO2- where Rb is preferably hydrogen, unsubstituted straight-chain or branched alkyl as described before or unsubstituted aryl as described below. Arylalkyl is preferably phenyl-Ci-Cio-alkyl, more preferably phenyl-Ci-C4-alkyl, for example benzyl, 1 -phenethyl, 2-phenethyl,
1 -phenprop-1 -yl, 2-phenprop-1 -yl, 3-phenprop-1 -yl, 1 -phenbut-1 -yl, 2-phenbut-1 -yl,
3- phenbut-1 -yl, 4-phenbut-1 -yl, 1 -phenbut-2-yl, 2-phenbut-2-yl, 3-phenbut-2-yl,
4- phenbut-2-yl, 1 -(phenmeth)eth-1-yl, 1 -(phenmethyl)-1 -(methyl)eth-1 -yl or
-(phenmethyl)-1 -(methyl)prop-1 -yl; preferably benzyl and 2-phenethyl.
Halogen-substituted alkyl groups (haloalkyi) comprise a straight-chain or branched alkyl group in which at least one hydrogen atom or all hydrogen atoms are replaced by halogen. The halogen atoms are preferably selected from fluorine, chlorine and bromine, especially fluorine and chlorine. Examples of haloalkyi groups are especially chloromethyl, bromomethyl, dichloromethyl, trichloromethyl, fluoromethyl,
difluoromethyl, trifluoromethyl, chlorofluoromethyl, dichlorofluoromethyl,
chlorodifluoromethyl, 1 -chloroethyl, 1 -bromoethyl, 1 -fluoroethyl, 2-fluoroethyl,
2,2-difluoroethyl, 2,2,2-trifluoroethyl, 2-chloro-2-fluoroethyl, 2-chloro-2,2-difluoroethyl,
2.2- dichloro-2-fluoroethyl, 2,2,2-trichloroethyl, pentafluoroethyl, 2-fluoropropyl,
3-fluoropropyl, 2,2-difluoropropyl, 2,3-difluoropropyl, 2-chloropropyl, 3-chloropropyl,
2.3- dichloropropyl, 2-bromopropyl, 3-bromopropyl, 3,3,3-trifluoropropyl,
3,3,3-trichloropropyl, -CH2-C2F5, -CF2-C2F5, -CF(CF3)2, 1 -(fluoromethyl)-2-fluoroethyl, 1 -(chloromethyl)-2-chloroethyl, 1 -(bromomethyl)-2-bromoethyl, 4-fluorobutyl,
4-chlorobutyl, 4-bromobutyl, nonafluorobutyl, 5-fluoro-1 -pentyl, 5-chloro-1 -pentyl, 5-bromo-1 -pentyl, 5-iodo-1 -pentyl, 5,5,5-trichloro-1 -pentyl, undecafluoropentyl,
6-fluoro-1 -hexyl, 6-chloro-1 -hexyl, 6-bromo-1 -hexyl, 6-iodo-1 -hexyl, 6,6,6-trichloro- 1 -hexyl or dodecafluorohexyl.
The above remarks regarding unsubstituted or substituted alkyl also apply to unsubstituted or substituted alkoxy and unsubstituted or substituted dialkylamino.
Specific examples of unsubstituted and substituted alkyl radicals which may be interrupted by one or more nonadjacent groups selected from oxygen, sulfur, -NRb-, -CO-, -SO- and/or -S02- are: methyl, ethyl, n-propyl, isopropyl, n-butyl, isobutyl, sec-butyl, tert-butyl, n-pentyl, n-hexyl, n-heptyl, n-octyl, n-nonyl, n-decyl, n-undecyl, n-dodecyl, n-tridecyl, n-tetradecyl, n-hexadecyl, n-octadecyl and n-eicosyl, 2-methoxyethyl, 2-ethoxyethyl,
2- propoxyethyl, 2-butoxyethyl, 3-methoxypropyl, 3-ethoxypropyl, 3-propoxypropyl,
3- butoxypropyl, 4-methoxybutyl, 4-ethoxybutyl, 4-propoxybutyl, 3,6-dioxaheptyl, 3,6-dioxaoctyl, 4,8-dioxanonyl, 3,7-dioxaoctyl, 3,7-dioxanonyl, 4,7-dioxaoctyl,
4,7-dioxanonyl, 2- and 4-butoxybutyl, 4,8-dioxadecyl, 3,6,9-trioxadecyl,
3,6,9-t oxaundecyl, 3,6,9-trioxadodecyl, 3,6,9, 12-tetraoxatridecyl and
3,6,9,12-tetraoxatetradecyl ;
2-methylthioethyl, 2-ethylthioethyl, 2-propylthioethyl, 2-butylthioethyl,
3-methylthiopropyl, 3-ethylthiopropyl, 3-propylthiopropyl, 3-butylthiopropyl,
4- methylthiobutyl, 4-ethylthiobutyl, 4-propylthiobutyl, 3,6-dithiaheptyl, 3,6-dithiaoctyl, 4,8-dithianonyl, 3,7-dithiaoctyl, 3,7-dithianonyl, 2- and 4-butylthiobutyl, 4,8-dithiadecyl, 3,6,9-t thiadecyl, 3,6,9-trithiaundecyl, 3,6,9-trithiadodecyl, 3,6,9, 12-tetrathiathdecyl and 3,6,9, 12-tetrathiatetradecyl;
2- monomethyl- and 2-monoethylaminoethyl, 2-dimethylaminoethyl, 2- and
3- dimethylaminopropyl, 3-monoisopropylaminopropyl, 2- and 4-monopropylaminobutyl, 2- and 4-dimethylaminobutyl, 6-methyl-3,6-diazaheptyl, 3,6-dimethyl-3,6-diazaheptyl, 3,6-diazaoctyl, 3,6-dimethyl-3,6-diazaoctyl, 9-methyl-3,6,9-triazadecyl, 3,6,9-trimethyl- 3,6,9-triazadecyl, 3,6,9-triazaundecyl, 3,6,9-trimethyl-3,6,9-triazaundecyl, 12-methyl- 3,6,9,12-tetraazatridecyl and 3,6,9, 12-tetramethyl-3,6,9, 12-tetraazatridecyl;
(1 -ethylethylidene)aminoethylene, (1 -ethylethylidene)aminopropylene,
(1 -ethylethylidene)aminobutylene, (1 -ethylethylidene)aminodecylene and
(1 -ethylethylidene)aminododecylene; propan-2-on-1 -yl, butan-3-on-1 -yl, butan-3-on-2-yl and 2-ethylpentan-3-on-1 -yl;
2- methylsulfinylethyl, 2-ethylsu If i nylethyl , 2-propylsulfinylethyl, 2-isopropylsulfinylethyl, 2-butylsulfinylethyl, 2- and 3-methylsulfinylpropyl, 2- and 3-ethylsulfinylpropyl, 2- and
3- propylsulfinylpropyl, 2- and 3-butylsulfinylpropyl, 2- and 4-methylsulfinylbutyl, 2- and
4- ethylsulfinylbutyl, 2- and 4-propylsulfinylbutyl and 4-butylsulfinylbutyl;
2- methylsulfonylethyl, 2-ethylsulfonylethyl, 2-propylsulfonylethyl,
2-isopropylsulfonylethyl, 2-butylsulfonylethyl, 2- and 3-methylsulfonylpropyl, 2- and
3- ethylsulfonylpropyl, 2- and 3-propylsulfonylpropyl, 2- and 3-butylsulfonylproypl, 2- and 4-methylsulfonylbutyl, 2- and 4-ethylsulfonylbutyl, 2- and 4-propylsulfonylbutyl and
4- butylsulfonylbutyl; carboxym ethyl, 2-carboxyethyl, 3-carboxypropyl, 4-carboxybutyl, 5-carboxypentyl,
6-carboxyhexyl, 8-carboxyoctyl, 10-carboxydecyl, 12-carboxydodecyl and 14-carboxyl- tetradecyl; sulfomethyl, 2-sulfoethyl, 3-sulfopropyl, 4-sulfobutyl, 5-sulfopentyl, 6-sulfohexyl, 8-sulfooctyl, 10-sulfodecyl, 12-sulfododecyl and 14-sulfotetradecyl;
2-hydroxyethyl, 2- and 3-hydroxypropyl, 3- and 4-hydroxybutyl and
8-hydroxyl-4-oxaoctyl;
2-cyanoethyl, 3-cyanopropyl, 3- and 4-cyanobutyl;
2-chloroethyl, 2- and 3-chloropropyl, 2-, 3- and 4-chlorobutyl, 2-bromoethyl, 2- and 3-bromopropyl and 2-, 3- and 4-bromobutyl;
2-nitroethyl, 2- and 3-nitropropyl and 2-, 3- and 4-nitrobutyl; methoxy, ethoxy, propoxy, butoxy, pentoxy and hexoxy; methylthio, ethylthio, propylthio, butylthio, pentylthio and hexylthio; methylamino, ethylamino, propylamino, butylamino, pentylamino, hexylamino, dicyclopentylamino, dicyclohexylamino, dicycloheptylamino, diphenylamino and dibenzylamino; formylamino, acetylamino, propionylamino and benzoylamino; carbamoyl, methylaminocarbonyl, ethylaminocarbonyl, propylaminocarbonyl, butyl- aminocarbonyl, pentylaminocarbonyl, hexylaminocarbonyl, heptylaminocarbonyl, octylaminocarbonyl, nonylaminocarbonyl, decylaminocarbonyl and phenylamino- carbonyl; aminosulfonyl, n-dodecylaminosulfonyl, Ν,Ν-diphenylaminosulfonyl, and
N,N-bis(4-chlorophenyl)aminosulfonyl; methoxycarbonyl, ethoxycarbonyl, propoxycarbonyl hexoxycarbonyl,
dodecyloxycarbonyl, octadecyloxycarbonyl, phenoxycarbonyl,
(4-tert-butylphenoxy)carbonyl and (4-chlorophenoxy)carbonyl; methoxysulfonyl, ethoxysulfonyl, propoxysulfonyl, butoxysulfonyl, hexoxysulfonyl, dodecyloxysulfonyl and octadecyloxysulfonyl.
In the context of the invention, cycloalkyl denotes a cycloaliphatic radical having preferably 3 to 10, more preferably 5 to 8, carbon atoms. Examples of cycloalkyl groups are especially cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl or cyclooctyl. Substituted cycloalkyi groups may, depending on the ring size, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from alkyl, alkoxy, alkylamino, alkylthio, cycloalkyi, heterocycloalkyl, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro. In the case of substitution, the cycloalkyi groups preferably bear one or more, for example one, two, three, four or five, Ci-C6-alkyl groups. Examples of substituted cycloalkyi groups are especially 2- and
3- methylcyclopentyl, 2- and 3-ethylcyclopentyl, 2-, 3- and 4-methylcyclohexyl, 2-, 3- and 4-ethylcyclohexyl, 2-, 3- and 4-propylcyclohexyl, 2-, 3- and 4-isopropylcyclohexyl,
2- , 3- and 4-butylcyclohexyl, 2-, 3- and 4-sec.-butylcyclohexyl, 2-, 3- and 4-tert-butyl- cyclohexyl, 2-, 3- and 4-methylcycloheptyl, 2-, 3- and 4-ethylcycloheptyl, 2-, 3- and
4- propylcycloheptyl, 2-, 3- and 4-isopropylcycloheptyl, 2-, 3- and 4-butylcycloheptyl, 2-,
3- and 4-sec-butylcycloheptyl, 2-, 3- and 4-tert-butylcycloheptyl, 2-, 3-, 4- and 5-methyl- cyclooctyl, 2-, 3-, 4- and 5-ethylcyclooctyl, 2-, 3-, 4- and 5-propylcyclooctyl. Specific examples of substituted and unsubstituted cycloalkyi groups are cyclopropyl, cyclobutyl, cyclopentyl, 2- and 3-methylcyclopentyl, 2- and 3-ethylcyclo-pentyl, cyclohexyl, 2-, 3- and 4-methylcyclohexyl, 2-, 3- and 4-ethylcyclohexyl, 3- and 4- propylcyclohexyl, 3- and 4-isopropylcyclohexyl, 3- and 4-butylcyclohexyl, 3- and 4-sec- butylcyclohexyl, 3- and 4-tert-butylcyclohexyl, cycloheptyl, 2-, 3- and
4-methyl-cycloheptyl, 2-, 3- and 4-ethylcycloheptyl, 3- and 4-propylcycloheptyl, 3- and
4- iso-propylcycloheptyl, 3- and 4-butylcycloheptyl, 3- and 4-sec-butylcycloheptyl, 3- and 4-tert-butylcycloheptyl, cyclooctyl, 2-, 3-, 4- and 5-methylcyclooctyl, 2-, 3-, 4- and
5- ethylcyclooctyl and 3-, 4- and 5-propylcyclooctyl; 3- and 4-hydroxycyclohexyl, 3- and 4-nitrocyclohexyl and 3- and 4-chlorocyclohexyl;
In the context of the present invention, aryl comprises mono- or polycyclic aromatic hydrocarbon radicals and monocyclic aromatic hydrocarbon radicals which may be fused to one or more unfused or fused saturated or unsaturated carbocyclic or heterocyclic five or six membered rings. Aryl has preferably 6 to 14, more preferably 6 to 10, carbon atoms. Examples of aryl are especially phenyl, naphthyl, indenyl, fluorenyl, anthracenyl, phenanthrenyl, naphthacenyl, chrysenyl and pyrenyl, especially phenyl, naphthyl and fluorenyl.
Substituted aryls may, depending on the number and size of their ring systems, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from alkyl, alkoxy, alkylamino, alkylthio, cycloalkyi,
heterocycloalkyl, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro. The alkyl, alkoxy, alkylamino, alkylthio, cycloalkyi, heterocycloalkyl, aryl and hetaryl substituents on the aryl may in turn be unsubstituted or substituted. Reference is made to the substituents mentioned above for these groups. The substituents on the aryl are preferably selected from alkyl, alkoxy, haloalkyl, haloalkoxy, aryl, fluorine, chlorine, bromine, cyano and nitro. Substituted aryl is more preferably substituted phenyl which generally bears 1 , 2, 3, 4 or 5, preferably 1 , 2 or 3, substituents.
Substituted aryl is preferably aryl substituted by at least one alkyl group ("alkaryl"). Alkaryl groups may, depending on the size of the aromatic ring system, have one or more (e.g. 1 , 2, 3, 4, 5, 6, 7, 8, 9 or more than 9) alkyl substituents. The alkyl substituents may be unsubstituted or substituted. In this regard, reference is made to the above statements regarding unsubstituted and substituted alkyl. In a preferred embodiment, the alkaryl groups have exclusively unsubstituted alkyl substituents. Alkaryl is preferably phenyl which bears 1 , 2, 3, 4 or 5, preferably 1 , 2 or 3, more preferably 1 or 2, alkyl substituents.
Aryl which bears one or more radicals is, for example, 2-, 3- and 4-methylphenyl, 2,4-, 2,5-, 3,5- and 2,6-dimethylphenyl, 2,4,6-trimethylphenyl, 2-, 3- and 4-ethylphenyl, 2,4-, 2,5-, 3,5- and 2,6-diethylphenyl, 2,4,6-triethylphenyl, 2-, 3- and 4-propylphenyl, 2,4-,
2.5- , 3,5- and 2,6- dipropylphenyl, 2,4,6-tripropylphenyl, 2-, 3- and 4-isopropylphenyl, 2,4-, 2,5-, 3,5- and 2,6-diisopropylphenyl, 2,4,6-triisopropylphenyl, 2-, 3- and 4-butyl- phenyl, 2,4-, 2,5-, 3,5- and 2,6-dibutylphenyl, 2,4,6-tributylphenyl, 2-, 3- and 4-isobutyl- phenyl, 2,4-, 2,5-, 3,5- and 2,6-diisobutylphenyl, 2,4,6-triisobutylphenyl, 2-, 3- and 4-sec-butylphenyl, 2,4-, 2,5-, 3,5- and 2,6-di-sec-butylphenyl, 2,4,6-tri-sec-butylphenyl, 2-, 3- and 4-tert-butylphenyl, 2,4-, 2,5-, 3,5- and 2,6-di-tert-butylphenyl and 2,4,6-tri- tert-butylphenyl; 2-, 3- and 4-methoxyphenyl, 2,4-, 2,5-, 3,5- and 2,6-dimethoxyphenyl, 2,4,6-trimethoxyphenyl, 2-, 3- and 4-ethoxyphenyl, 2,4-, 2,5-, 3,5- and 2,6-diethoxy- phenyl, 2,4,6-triethoxyphenyl, 2-, 3- and 4-propoxyphenyl, 2,4-, 2,5-, 3,5- and
2,6-dipropoxyphenyl, 2-, 3- and 4-isopropoxyphenyl, 2,4-, 2,5-, 3,5- and
2.6- diisopropoxyphenyl and 2-, 3- and 4-butoxyphenyl; 2-, 3- and 4-cyanophenyl.
The above remarks regarding unsubstituted or substituted aryl also apply to unsubstituted or substituted aryloxy and unsubstituted or substituted arylthio. Examples of aryloxy are phenoxy and naphthyloxy.
In the context of the present invention, hetaryl comprises heteroaromatic, mono- or polycyclic groups and monocyclic groups which may be fused to one or more unfused or fused saturated or unsaturated carbocyclic or heterocyclic five or six membered rings. In addition to the ring carbon atoms, these have 1 , 2, 3, 4 or more than 4 of the ring heteroatoms. The heteroatoms are preferably selected from oxygen, nitrogen, selenium and sulfur. The hetaryl groups have preferably 5 to 18, e.g. 5, 6, 8, 9, 10, 1 1 , 12, 13 or 14, ring atoms. Monocyclic hetaryl groups are preferably 5- or 6-membered hetaryl groups, such as 2-furyl (furan-2-yl), 3-furyl (furan-3-yl), 2-thienyl (thiophen-2-yl), 3-thienyl (thiophen-3- yl), selenophen-2-yl, selenophen-3-yl, 1 H-pyrrol-2-yl, 1 H-pyrrol-3-yl, pyrrol-1 -yl, imidazol-2-yl, imidazol-1 -yl, imidazol-4-yl, pyrazol-1 -yl, pyrazol-3-yl, pyrazol-4-yl, pyrazol-5-yl, 3-isoxazolyl, 4-isoxazolyl, 5-isoxazolyl, 3-isothiazolyl, 4-isothiazolyl, 5-isothiazolyl, 2-oxazolyl, 4-oxazolyl, 5-oxazolyl, 2-thiazolyl, 4-thiazolyl, 5-thiazolyl, 1 ,2,4-oxadiazol-3-yl, 1 ,2,4-oxadiazol-5-yl, 1 ,3,4-oxadiazol-2-yl, 1 ,2,4-thiadiazol-3-yl, 1 ,2,4-thiadiazol-5-yl, 1 ,3,4-thiadiazol-2-yl, 4H-[1 ,2,4]-triazol-3-yl, 1 ,3,4-triazol-2-yl, 1 ,2,3-triazol-1 -yl, 1 ,2,4-triazol-1 -yl, pyridin-2-yl, pyridin-3-yl, pyridin-4-yl, 3-pyridazinyl, 4-pyridazinyl, 2-pyrimidinyl, 4-pyrimidinyl, 5-pyrimidinyl, 2-pyrazinyl, 1 ,3,5-triazin-2-yl and 1 ,2,4-triazin-3-yl. Polycyclic hetaryl has 2, 3, 4 or more than 4 fused rings. The fused-on rings may be aromatic, saturated or partly unsaturated. Examples of polycyclic hetaryl groups are quinolinyl, isoquinolinyl, indolyl, isoindolyl, indolizinyl, benzofuranyl, isobenzofuranyl, benzothiophenyl, benzoxazolyl, benzisoxazolyl, benzthiazolyl, benzoxadiazolyl;
benzothiadiazolyl, benzoxazinyl, benzopyrazolyl, benzimidazolyl, benzotriazolyl, benzotriazinyl, benzoselenophenyl, thienothiophenyl, thienopyrimidyl, thiazolothiazolyl, dibenzopyrrolyl (carbazolyl), dibenzofuranyl, dibenzothiophenyl, naphtho[2,3-b]- thiophenyl, naphtha[2,3-b]furyl, dihydroindolyl, dihydroindolizinyl, dihydroisoindolyl, dihydroquinolinyl, dihydroisoquinolinyl. Substituted heteroaryls may, depending on the number and size of their ring systems, have one or more (e.g. 1 , 2, 3, 4, 5 or more than 5) substituents. These are preferably each independently selected from alkyl, alkoxy, alkylamino, alkylthio, cycloalkyl, heterocycloalkyl, aryl, hetaryl, fluorine, chlorine, bromine, cyano and nitro. Halogen substituents are preferably fluorine, chlorine or bromine. The substituents are preferably selected from Ci-C6-alkyl, Ci-C6-alkoxy, hydroxyl, carboxyl, halogen and cyano.
The above remarks regarding unsubstituted or substituted heteroaryl also apply to unsubstituted or substituted heteroaryloxy and unsubstituted or substituted
heteroarylthio.
Halogen represents fluorine, chlorine, bromine or iodine, preferably chlorine and bromine. Alkali cation represents sodium, potassium, rubidium and cesium, preferably sodium and potassium.
R' in the tetraalkyl ammonium cation [NR']4+ typically refers to methyl or tert.-butyl. Further details on the preparation of the compounds according to the instant invention can be taken from the experimental section. DSCs generally comprise the following elements: an electrically conductive layer (being part of or forming the working electrode or anode), a photosensitive layer generally comprising a semi-conductive metal oxide and a photosensitive dye, a charge transfer layer and another electrically conductive layer (being part of or forming the counter electrode or cathode).
Regarding further details of the construction of DSCs particular reference is made to WO 2012/001628 A1 , which is hereby fully incorporated by reference. Experimental part
A1 ) Preparation of compounds according to the invention
General procedures for the preparation are given below (if not stated otherwise the variables have the meaning as defined in general formula I and II):
Procedure 1 :
Figure imgf000029_0001
A
Figure imgf000029_0002
Procedure 2
Figure imgf000030_0001
x = o. s
Procedure 3
Figure imgf000030_0002
AY'NX
Figure imgf000030_0003
Figure imgf000031_0001
(R1')2N corresponds to definition of diarylamino of variable R1 of general formula I
Preparation of compound 1 : 5,6,14,15-tetrachloro-8-phenyl-1 H-isochromeno- [6',5',4':10,5,6]anthra[2,1 ,9-mna]acridine-1 ,3(8H)-dione
Figure imgf000031_0002
( :)
A suspension of 9, 10-dibromo-1 ,6,7,12-tetrachloroperylene-3,4-dicarboxylic acid anhidride (1 .24 g, 2. 0 mmol), diphenylamine (0.40 g, 2.40 mmol), Pd(AcO)2 (10 mmol%), sodium-ferf-butoxide (0.48 g, 5.0 mmol), tricyclohexylphosphine (20 mol%) in 70 ml toluene was stirred at 100°C under argon atmosphere for 24 h. The solvent was removed under reduced pressure. The solid was dissolved in dichloromethane and acetic acid and stirred overnight at 70°C. The solvent was removed under reduced pressure. The crude product was purified by column chromatography using
dichloromethane as eluent on silica. Yield 0.50 g (40%).
1H NMR (300 MHz, C2D2CI4, 300K): 6.49 (s, 1 H); 6.71 (d, 1 H, 3JHH = 8.3 Hz); 7.37-7.51 (m, 4H); 7.74-7.88 (m, 3H); 8.17 (s, 1 H); 8.30 (d, 1 H, 3JHH = 7.7 Hz); 8.50 (s, 1 H); 8.55 (s, 1 H). FD mass spectrum (8 kV): m/z (%): calcd for 625.28; found: 623.6 (100) [M]+
UV-Vis (CH2CI2): Amax = 693 (60 264) nm (IV crrr1).
Preparation of compound 2: 2-(5,6,14,15-tetrachloro-1 ,3-dioxo-8-phenylisoquinolino- [6',5',4': 10,5,6]anthra[2, 1 ,9-mna]acridin-2(1 H ,3H ,8H)-yl)acetic acid
Figure imgf000032_0001
(2)
A mixture of Compound 1 (0.20 g, 0.32 mmol), glycine (0.20 g) and imidazole (2.0 g) was stirred at 140°C under argon atmosphere for 4 h. The mixture was poured into 10 % hydrochloric acid and ice. The precipitate was filtered, washed with water and water/methanol 1 :1. The crude product was dissolved in THF and precipitated in water/methanol 1 :2. Yield 0.20 g (92%).
1H NMR (300 MHz, TH F-ds, 300K): 4.87 (s, 2H, , CH2COOH); 6.40 (s, 1 H); 6.68 (d, 1 H, 3J HH = 8.3 Hz); 7.31 -7.43 (m, 2H); 7.53(d, 1 H, 3J H H = 7.7 Hz); 7.59(d, 1 H, 3J H H = 7.6 Hz); 7.73-7.89 (m, 3H); 8.33 (s, 1 H); 8.46 (s, 1 H); 8.47 (d, 1 H , 3JHH = 7.3 Hz); 8.52 (s, 1 H).
FD mass spectrum (8 kV): m/z (%): calcd for 682.34; found: 682.8 (100) [M]+
UV-Vis (CH2CI2): Amax = 681 (51 554) nm (N cnrr1). Preparation of compound 3: 5,6,14, 15-tetrachloro-1 1 -(2,4,4-trimethylpentan-2-yl)-8-(4- (2,4,4-trimethylpentan-2-yl)phenyl)-1 H-isochromeno[6',5',4':10,5,6]anthra[2,1 ,9- mna]acridine-1 ,3(8H)-dione
Figure imgf000033_0001
A suspension of 9, 10-dibromo-1 ,6,7,12-tetrachloroperylene-3,4-dicarboxylic acid anhidride (0.62 g, 1 . 0 mmol), diphenylamine (0.47 g, 1.20 mmol), Pd(OAc)2 (10 mmol%), sodium-tert-butoxide (0.24 g, 2.5 mmol), tricyclohexylphosphine (20 mol%) in 60 ml toluene was stirred at 100°C under argon atmosphere for 24 h. The solvent was removed under reduced pressure. The solid was dissolved in dichloromethane and acetic acid and stirred overnight at 70°C. The solvent was removed under reduced pressure. The crude product was purified by column chromatography using
dichloromethane as eluent on silica. Yield 0.32 g (38 %).
1H NMR (300 MHz, C2D2CI4, 300K): 0.79 (s, 9H, CH3); 0.87 (s, 9H, CH3); 1.51 (s, 6H, CH3); 1.54 (s, 6H, CH3); 1 .85 (s, 2H, CH2); 1 .89 (s, 2H, CH2); 6.52 (s, 1 H); 6.75 (d, 1 H, 3J HH = 8.9 Hz); 7.33 (dd, 1 H, 3J H H = 8.2 Hz, 4J H H = 2.1 Hz); 7.40 (dd, 1 H, 3J H H = 8.3 Hz, 4J HH = 2.1 Hz); 7.53 (d, 1 H, 3J H H = 8.7 Hz); 7.78-7.84 (m, 2H); 8.21 (s, 1 H); 8.25 (d, 1 H, 4JHH = 2.0 Hz); 8.51 (s, 1 H); 8.55 (s, 1 H).
FD mass spectrum (8 kV): m/z (%): calcd for 849.71 ; found: 850.4 (100) [M]+
UV-Vis (CH2CI2): Amax = 709 (64 776) nm (N cnrr1). Preparation of compound 4: 1 1 -(2,4,4-trimethylpentan-2-yl)-8-(4-(2,4,4-trimethylpentan- 2-yl)phenyl)-1 H-isochromeno[6',5',4':10,5,6]anthra[2,1 ,9-mna]acridine-1 ,3(8H)-dione
Figure imgf000034_0001
A mixture of potassium hydroxide (1.0 g) and Compound 3 (0.30 g, 0.35 mmol) in 10 ml 1 ,2-ethanediol was stirred an heated at 165°C for 4 h. The mixture was cooled and diluted with 50 ml 10% hydrochloric acid. The precipitate was filtered, washed with water and dried. The solid was suspended in THF (20 ml) and acetic acid (20 ml) and stirred overnight at 100°C. The mixture was cooling down to room temperature and 10 ml of water was added. The precipitate was filtered, washed with water/methanol 1 :2 and dried Yield 0.18 g (71 %). FD mass spectrum (8 kV): m/z (%): calcd for 71 1.93; found: 712.5 (100) [M]+
Preparation of compound 5: 2-(1 ,3-dioxo-1 1 -(2,4,4-trimethylpentan-2-yl)-8-(4-(2,4,4- trimethylpentan-2-yl)phenyl)isoquinolino[6',5',4': 10,5,6]anthra[2, 1 ,9-mna]acridin- 2(1 H,3H,8H)-yl)acetic acid
Figure imgf000034_0002
A mixture of Compound 4 (0.18 g, 0.25 mmol), glycine (0.20 g) and imidazole (2.0 g) was stirred at 140°C under argon atmosphere for 4 h. The mixture was poured into 10 % hydrochloric acid and ice. The precipitate was filtered, washed with water and water/methanol 1 :1 . The crude product was dissolved in THF and precipitated in water/methanol 1 :2. The solid was dissolved in TH F and purified by GPC using THF as eluent. Yield 0.14 g (73%). 1H NMR (500 MHz, DMSO-d6, 300K): 0.84 (s, 9H, CH3); 0.91 (s, 9H, CH3); 1.51 (s, 6H, CH3); 1.54 (s, 6H, CH3); 1 .88 (s, 2H, CH2); 1 .93 (s, 2H, CH2); 4.71 (s, 2H , CH2); 6.34 (d, 1 H, 3J HH = 8.8 Hz); 6.58 (d, 1 H, 3JHH = 8.9 Hz); 7.44 (d, 2H, 3J HH = 8.3 Hz); 7.49 (d, 1 H, 3J HH = 8.8 Hz); 7.85 (d, 2H, 3J HH = 8.4 Hz); 8.17 (d, 1 H , 3J HH = 8.3 Hz); 8.28-8.31 (m, 2H); 8.35-8.39 (m, 3H); 8.43 (d, 1 H, 3JHH = 8.9 Hz); 8.75 (d, 1 H , 3JHH = 8.4 Hz).
FD mass spectrum (8 kV): m/z (%): calcd for 768.98; found: 768.2 (100) [M]+
UV-Vis (CH2CI2): Amax = 730 (66 965) and 672 (46 837) nm (N cnrr1). Preparation of compound 6: 9-(2,4,4-trimethylpentan-2-yl)-6-(4-(2,4,4-trimethylpentan- 2-yl)phenyl)-1 H-isochromeno[6,5,4-mna]acridine-1 ,3(6H)-dione
Figure imgf000035_0001
A mixture of 4,5-dibromo-1 ,8-naphthylanhydride (2.00 mmol), bis(4-(2,4,4- trimethylpentan-2-yl)phenyl)amine (3.0 mmol), Pd2(dba)3 (5 mmol%), sodium-tert- butoxide (3.0 mmol), tri(tert-butyl)phosphine (10 mol%) in 50 ml toluene was stirred at 90°C under argon atmosphere overnight. The solvent was removed under reduced pressure. The solid was dissolved in dichloromethane and mixture of acetic acid and acetic anhydride and stirred overnight at room temperature. The solvent was removed under reduced pressure. The crude product was purified by column chromatography using hexane/ dichloromethane as eluent on silica. Yield 0.30 g (25%).
FD-Mass: calc: 587.79 found: 589.0 1H-NMR (δ (ppm), CDCI3): 0.69 (s, 9H, CH3); 0.77 (s, 9H , CH3); 1.39 (s, 6H, CH3); 1.44 (s, 6H, CH3); 1 .74 (s, 2H, CH2); 1 .81 (s, 2H, CH2); 6.14 (d, 1 H , 3JHH = 8.8 Hz); 6.54 (d, 1 H, 3JHH = 9.0 Hz); 7.21 (d, 2H, 3JHH = 8.4 Hz); 7.35 (dd, 1 H, 3JHH = 8.8 Hz, 4JHH = 1 .9 Hz); 7.70 (d, 2H, 3JHH = 8.5 Hz); 7.88 (d, 1 H, 3JHH = 8.3 Hz); 8.09 (d, 1 H, 3JHH = 8.8 Hz); 8.12 (d, 1 H, 4JHH = 1 .8 Hz); 8.43 (d, 1 H, 3JHH = 8.2 Hz). UV-Vis (CH2CI2): Amax = 512 (38 794) and 481 (30 399) nm (N cnrr1).
Preparation of compound 7:
Figure imgf000036_0001
Preparation of compound 7a:
Figure imgf000036_0002
35.7 g of 3-nitroaniline (259mmol), 100 g 2-ethylhexylbromide (518mmol) and 71 .5 g (518mmol) potassium carbonate were added to 75 mL of DMSO and stirred at 1 10°C for 3 days. The reaction mixture was poured into water and extracted with dichloromethane. The product was purified via column chromatography with n- hexane:DCM 2:1 . Yield: 34.8 g (54%)
1H-NMR (δ (ppm), CD2CI2): 0.92 (m, 6H), 1.39 (m, 8H), 1 .60 (m, 1 H); 3.08 (t, 2H , 3JHH 5.1 Hz), 4.09 (s, 1 H, NH), 6.89 (m, 1 H), 7.27 (t, 1 H, 3JHH = 8.1 Hz), 7.37 (t, 1 H, 3JHH = 2.3 Hz), 7.45 (m, 1 H)
Preparation of compound 7b:
Figure imgf000036_0003
( o) 9.9 g of 6-bromo-2-(2,4,6-trimethylphenyl)benzo[de]isoquinoline-1 ,3-dione (25 mmol), 1.2g Pd2(dba)3 (5 mmol%), 3.6 g sodium-ferf-butoxide (37.5 mmol), 5.1 g tri(ferf- butyl)phosphine (37.5 mmol) were added to 50 ml. toluene containing 9.4 g of N-(2- ethylhexyl)-3-nitro-aniline (37.5 mmol) and stirred under argon overnight at 90 °C. The reaction mixture was cooled down to room temperature, the organic phase separated, and the rest of product extracted with dichloromethane. The solvent was removed under vacuum and purified under MPL chromatography. Yield: 7.2 g (51 %)
1H-NMR (δ (ppm), CD2CI2): 0.81 (t, 3H, 3JHH = 6.8 Hz), 0.88 (t, 3H , 3JHH = 7.5 Hz), 1.23 (m, 4H), 1 .41 (m, 4H), 1 .83 (m, 1 H), 2.09 (s, 6H), 2.38 (s, 3H), 3.92, (d, 2H, 3JHH = 7.0 Hz), 6.93 (d, 1 H, 3JHH = 1 1.0 Hz), 7.06 (s, 2H), 7.29 (t, 1 H, 3JHH = 8.2 Hz), 7.58 (s, 1 H), 7.64 (dt, 2H, 3JHH = 7.6 Hz), 7.75 (d, 1 H, 3JHH = 7.8 Hz), 8.10 (d, 1 H , 3JHH = 8.6 Hz), 8.59 (d, 1 H, 3JHH = 7.4 Hz), 8.70 (d, 1 H, 3JHH = 7.8 Hz) Preparation of compound 7c:
Figure imgf000037_0001
5 g of 6-[N-(2-ethylhexyl)-3-nitro-anilino]-2-(2,4,6-trimethylphenyl)benzo[de]- isoquinoline-1 ,3-dione (8.9 mmol) and 14.8 g (107 mmol) potassium carbonate were added to 100 ml. of ethanolamine and stirred for 3 days at 125 °C. The reaction mixture was cooled down to room temperature followed by the addition of distilled water and acidified with acetic acid to pH 6. The precipitate was filtered, washed with hot water and dried under vacuum at 80 °C. The dried material was purified by column chromatography with dichloromethane:methanol 19:1. Yield: 2.3 g (48%)
1H-NMR (δ (ppm), CD2CI2): 0.87 (t, 3H, 3JHH = 6.9 Hz), 0.95 (t, 3H , 3JHH = 7.4 Hz), 1.38 (m, 8H), 2.03 (s, 6H), 2.16 (s, 1 H), 2.37 (s, 3H), 4.21 (d, 2H, 3JHH = 7.8 Hz), 4.27 (s, 2H), 6.71 (d, 2H, 3JHH = 10.3 Hz), 7.03 (s, 2H), 7.07 (d, 1 H, 3JHH = 8.8 Hz), 7.84 (d, 1 H, 3J HH = 8.2 Hz), 8.1 1 (d, 1 H, 3J HH = 8.8 Hz), 8.50 (dd, 2H, 3J HH = 8.1 Hz, 4J HH = 1 1 .5 Hz) Preparation of compound 7d:
Figure imgf000038_0001
2.3 g of compound 7c (4.3 mmol), 4.9 g 2-iodo-9,9-dimethyl-fluorene (12.9 mmol), 42 mg copper(l) iodide (5 mol%), 4.2 g cesium carbonate (12.9 mmol) were purged with argon and 40 ml. of TH F containing 93 mg of N ,N '-dimethylethylenediamine (85% solution) was added and stirred for 3 days under reflux. The product was extracted with dichloromethane and purified by column chromatography with dichloromethane. Yield: 2.5 g (63%)
1H-NMR (5 (ppm), CD2CI2): 0.66 (m, 3H), 1.13 (m, 8H), 1 .44 (s, 12H), 1.90 (m, 1 H),
2.04 (s, 6H), 2.36 (s, 3H), 4.00 (s, 2H), 7.03 (s, 3H), 7.09 (s, 1 H), 7.16 (d, 1 H, 3JHH = 8.8 Hz), 7.23 (d, 2H, 3JHH = 8.2 Hz), 7.34 (m, 6H), 7.44 (d, 2H, 3JHH = 7.2 Hz), 7.7 (m,
4H), 7.90 (d, 1 H, 3JHH = 8.4 Hz), 8.16 (d, 1 H, 3JHH = 8.7 Hz), 8.46 (d, 1 H, 3JHH = 8.8 Hz), 8.55 (d, 1 H, 3JHH = 8.2 Hz)
Preparation of target compound 7:
Figure imgf000038_0002
2.5 g of compound 7d (2.73 mmol) were dissolved in 50 ml. 2-methyl-2-butanol, followed by the addition of 6.13 g of potassium hydroxide (109.2 mmol). The reaction mixture was refluxed under argon overnight and cooled down to room temperature. The product was precipitated in ice water/acetic acid solution, filtered, washed with hot water, and dried under vacuum at 80 °C. The solid was dissolved in dichloromethane, suspended in acetic acid for one hour, filtered, washed with a small portion of methanol and dried under vacuum at 70 °C. Yield: 1.8 g (82%)
1H-NMR (δ (ppm), CD2CI2): 0.65 (m, 6H), 1.1 1 (m, 8H), 1 .46 (s, 12H), 1.85 (m, 1 H), 3.94 (s, 2H), 6.93 (d, 1 H, 3JHH = 8.8 Hz), 7.05 (s, 1 H), 7.16 (d, 2H , 3JHH = 9.3 Hz), 7.31 (m, 6H), 7.40 (s, 2H), 7.44 (d, 2H, 3JHH = 7.1 Hz), 7.71 (m, 5H), 8.03 (d, 1 H , 3JHH = 9.0 Hz), 8.29 (m, 2H)
Preparation of compound 8:
Figure imgf000039_0001
0.9 g of compound 7 (1.1 mmol), 207 mg zinc acetate (1.1 mmol), and 580 mg glycine ( 1 1 .3 mmol) were added to 50 ml. N-methylpirrolidone and stirred over night at 130 °C. The reaction mixture was cooled down to room temperature and the product was precipitated from ice water. The mixture was acidified to pH 6 with acetic acid, the solid was filtered, washed with water and dried under vacuum at 80 °C. The product was purified by column chromatography with the following gradients:
1 - dichloromethane with 2% trietanolamine, dichloromethane: Methanol 19:1 with 2% triethylamine. The fractions containing product were combined and the solvent removed under vacuum. The resulting solid was stirred with acetic acid at 70 °C, filtered, washed with hot water, methanol, and dried under vacuum at 70 °C. Yield: 510 mg (53%)
1H-NMR (δ (ppm), CD2CI2): 0.62 (m, 6H), 1.08 (m, 8H), 1 .44 (s, 12H), 1.88 (m, 1 H), 3.98 (s, 2H), 4.93 (s, 2H), 7.03 (d, 1 H), 7.09 (s, 1 H), 7.16 (d, 1 H, 3JHH = 8.4 Hz), 7.23 (dd, 2H, 3JHH = 1 .5 Hz, 4JHH = 5.0 Hz), 7.33 (m, 6H), 7.44 (d, 2H , 3JHH = 5.7 Hz), 7.71 (m, 4H), 7.87 (d, 1 H, 3JHH = 6.5 Hz), 8.15 (d, 1 H, 3JHH = 7.3 Hz), 8.44 (d, 1 H, 3JHH = 7.1 Hz), 8.53 (d, 1 H, 3JHH = 6.6 Hz)
Figure imgf000040_0001
Figure imgf000040_0002
6.00 g (24mmol) of compound 7a and 9.00 g (16mmol) of 9-Br-DIPP-PDC were dissolved in 100 mL of dry toluene. 733 mg of Pd2(dba)3 (0,8mmol), 3.4 g of tris-(t- butyl)phosphine (10% in toluene) (1 ,6mmol) and 2.3 g (24mmol) of NaOtBu were added and stirred at 90°C for 2 days. The crude mixture was purified via column chromatograpy on silica with DCM:hexane 2:1 . Yield: 3.7 g Preparation of compound 9b:
Figure imgf000041_0001
(9b)
2.2g (3mmol) of compound 8a and 5 g (36mmol) of potassium carbonated were stirred in 100 mL of ethanol amine at 125°C overnight. The reaction mixture was cooled down to room temperature and poured into water. Acetic acid was added until the pH 5. The precipitate was filtered , washed with hot water and dried.
MALDI-MS: calc: 697.93 found: 697.35
Preparation of compound 9c:
Figure imgf000041_0002
(8c)
1.5 g (2,15mmol) of compound 9b and 1.8 g of 2-bromo-9,9-dimethylfluorene
(6,6mmol), 270 mg (2,8mmol) of NaOtBu, 275 mg of Pd2(dba)3 (0,3mmol) and 1.9 g (0,9mmol) of tri-(t-butyl)phosphine (10% in toluene) were stirred in 50 mL of dry toluenen at 80°C overnight. The reaction mixture was cooled down to room temperature and 590 mg (2,15mmol) 2-bromo-9,9-dimethylfluorene, 270 mg (2,8mmol) NaOtBu, 275 mg (0,3mmol) Pd2(dba)3 and 0.9 mg (1 ,9 mmol) tri-(t-butyl)phosphine (10% in toluene) were added and stirred at 80°C for 2 more days. The reaction mixture was cooled down to room temperature and filtered over celite and washed and extracted with DCM . The crude product was purified via column chromatography on silica with DCM . Yield: 1 ,3g (56%)
1H-NMR (δ (ppm), CD2CI2): 0.68 (m, 6H), 1.14 (d, 12H , 3JHH = 5.4 Hz), 1.24 (m, 8H), 1.45 (s, 12H), 1 .93 (m, 1 H), 2.74 (m, 2H), 4.00 (s, 2H), 7.13 (m, 4H), 7.25 (d, 2H , 3JHH = 6.1 Hz), 7.33 (m, 6H), 7.46 (m, 4H), 7.72 (m, 4H), 7.95 (d, 1 H, 3JHH = 7.2 Hz), 8.15 (m, 2H), 8.26 (d, 1 H, 3JHH = 7.4 Hz), 8.51 (m, 1 H), 8.59 (d, 1 H, 3JHH = 7.2 Hz)
Preparation of target compound 9:
Figure imgf000042_0001
(9)
1.3 g (1.2 mmol) of compound 9c were dissolved in 100 mL of 2-methyl-2-butanol. 2.7 g (48 mmol) of potassium hydroxide were added and refluxed overnight. The mixture was poured into a mixture of acetic acid and ice water. The precipitate was filtered, washed with water and dissolved in Methanol and Acetic acid (-100:1 ) for 1 h. The solvent was removed under reduced pressure and methanol added. The precipitate was filtered and dried. Yield: 1 g
MALDI-MS: calc: 922.41 found: 922.43 Preparation of compounds 10 and 1 1 :
Figure imgf000043_0001
Figure imgf000043_0002
9-(2-amino-5-chlorophenoxy)-N-(2,6-diisopropylphenyl)-3,4-perylenedicarboxylic acid imide (compound 10a)
A mixture of 9-Bromo-N-(2,6-diisopropylphenyl)-3,4-perylenedicarboxylic acid imide (0.561 g, 1 .0 mmol), 2-amino-5-chlorophenol (0.158 g, 1.1 mmol ) , cesium carbonate (0.390 g, 1 .2 mmol) in 25 ml of N MP was stirred at 90°C under argon atmosphere for 24 h. The crude product was precipitated by 50ml 1 M HCI solution, was filtrated and dried under reduced pressure. The crude product was purified by column chromatography using Toluene/EtOAc (5:1 ) mixture as eluent on silica. Yield: 51 % (0.320 g, 0.51 mmol) of a dark red solid.
1H NMR (250 MHz, CD2CI2, 298K): 1.20 (d, 12H, 3JHH = 6.7 Hz), .2.83 (h, 2H 3JHH = 6.5 Hz), 4.14 (s, 2H), 6.93-6.80 (m, 3H) , 7.04 (m, 1 H), 7.34 (m, 2H), 7.52-7.32 (m, 2H), 8.03 (d,1 H, 3J HH = 8.2 Hz), 8.16 (m, 2H), 8.40 (d, 1 H, 3J H H = 8.2 Hz), 8.51 (m, 2H).
FD mass spectrum (8 kV): m/z (%): calcd for 623.14; found: 623.6 (100), 621 .7 (85) [M]+
UV-Vis (CH2CI2): Amax = 509 nm (43626 N cnrr1).
9-(2-amino-5-chlorothiophenoxy)-N-(2,6-diisopropylphenyl)-3,4-perylenedicarboxylic acid imide (compound 1 1 a)
A mixture of 9-Bromo-N-(2,6-diisopropylphenyl)-3,4-perylenedicarboxylic acid imide (0.561 g, 1.0 mmol, 2-amino-5-chlorothiophenol (0.176 g, 1 .1 mmol ), cesium carbonate (0.390 g, 1.2 mmol) in 25 ml of NM P was stirred at 90°C under argon atmosphere for 24 h. The crude product was precipitated by 50ml 1 M HCI solution, was filtrated and dried under reduced pressure. The crude product was purified by column chromatography using Toluene/EtOAc (5:1 ) mixture as eluent on silica. Yield: 64% (0.410 g, 0.641 mmol) of a dark red solid.
1H NMR (300 MHz, CD2CI2, 298K): 1.15 (d, 12H, 3JHH = 6.7 Hz), .2.85-2.72 (h, 2H 3JHH = 6.8 Hz), 4.48 (s, 2H), 6.85 (d, 1 H, 3JHH = 8.7 Hz) , 7.04 (d, 1 H , 3JHH = 8.1 Hz), 7.32 (m, 3H), 7.51 (m, 2H), 7.65 (t, 1 H, 3JHH = 8.0 Hz), 8.22 (d,1 H , 3JHH = 8.3 Hz), 8.30 (d, 2H, 3JHH = 8.0 Hz), 8.40 (d, 1 H, 3JHH = 8.2 Hz), 8.46 (d, 1 H, 3JHH = 7.7 Hz), 8.57 (t, 2H, 3J HH = 8.5 Hz).
FD mass spectrum (8 kV): m/z (%): calcd for 639.20; found: 637.60 (100), 641 .1 (74) [M]+
UV-Vis (CH2CI2): Amax = 516 nm (42364 N cnrr1).
Preparation of compound 10b and 1 1 b:
Figure imgf000045_0001
(10b/1 1b)
10b: X=0 11 b: X=S
10-chloro-2-(2,6-diisopropylphenyl)-1 H-xantheno[2',1 ',9': 10,5,6]anthra[2, 1 ,9- def]isoquinoline-1 ,3(2H)-dione (compound 10b)
To compound 17a (0.10 g, 0.160 mmol) in a mixture of acetic acid (6 ml) and concentrated hydrochloric acid (5-6 drops) a solution of sodium nitrite (0.1 g, 1 .4 mmol) in water (5 ml) was added dropwise at 0-5°C under argon steam. The solution of copper(ll) sulfate (0.160 g, I mmol) in water (6 ml) and acetic acid (2 ml) was poured to the reaction mixture and refluxed for 1 ,5 - 2 h to afford the blue solid. The precipitate was filtered, washed with water and water/methanol 1 :1. The crude product was dissolved in THF and precipitated in water/methanol 1 :2 or purified by column chromatography using toluene as eluent on silica. Yield: 51 % (0.05 g, 0. 083 mmol). 1H NMR (300 M Hz, 298K) δ 1.07 (d, J = 6.8 Hz, 12H), 2.63 (h, J =, 6.8 Hz, 2H),7.25- 7.1 1 (m, 5H) 7.37 (d, J = 7.5 Hz, 1 H), 7.75 (d, J = 8.3 Hz, 1 H), 7.81 (d, J = 8.6 Hz, 1 H), 8.23 (d, J = 8.3 Hz, 1 H), 8.30 (d, J = 8.2 Hz, 1 H), 8.41 (t, J = 9.2 Hz, 1 H), 8.51 (dd, J = 8.1 , 2.3 Hz, 2H). FD mass spectrum (8 kV): m/z (%): calcd for 606.1 1 ; found: 605.6 (100) [M]+
10-chloro-2-(2,6-diisopropylphenyl)-1 H-thioxantheno[2', 1 ',9': 10,5,6]anthra[2, 1 ,9- def]isoquinoline-1 ,3(2H)-dione (1 1 b) To compound 17b (0.10 g, 0.156 mmol) in a mixture of acetic acid (6 ml) and concentrated hydrochloric acid (5-6 drops) a solution of sodium nitrite (0.1 g, 1 .4 mmol) in water (5 ml) was added dropwise at 0-5°C under argon steam. The solution of copper(ll) sulfate (0.160 g, 1 mmol) in water (6 ml) and acetic acid (2 ml) was poured to the reaction mixture and refluxed for 1 ,5 - 2 h to afford the blue solid. The precipitate was filtered, washed with water and water/methanol 1 :1. The crude product was dissolved in THF and precipitated in water/methanol 1 :2 or purified by column chromatography using toluene as eluent on silica. Yield: 57% (0.055 g, 0. 083 mmol)
FD mass spectrum (8 kV): m/z (%): calcd for 622.17; found: 621.50 (100) [M]+
Preparation of compound 10c and 1 1 c:
Figure imgf000046_0001
(I OC/1 : C)
10c: X=0
1 1c: X=S
10-(bis(4-(2,4,4-thmethylpentan-2-yl)phenyl)amino)-2-(2,6-diisopropylphenyl)-1 H- xantheno[2',1 ',9':10,5,6]anthra[2,1 ,9-def]isoquinoline-1 ,3(2H)-dione (10c)
A mixture of compound 18a (0.10 g, 0.165 mmol), bis(4-(2,4,4-trimethylpentan-2- yl)phenyl)amine (0.08g, 0.2 mmol), Pd2(dba)3 (5 mmol%), BINAP (10 mol%), cesium carbonate (0.1 g, 0.33mmol) in 20 ml toluene was stirred at 100°C under argon atmosphere overnight. The solvent was removed under reduced pressure. The crude product was purified by column chromatography using Toluene/EtOAc (4:1 ) as eluent on silica. Yield: 75% (0.12 g, 0.125 mmol) of a blue solid.
1H NMR (700 MHz, CD2CI2, 298K) δ 0.81 , (s, 18H), 1.15 (dd, J = 8.2, 7.0 Hz, 6H), 1 .41 (s, 12H), 1 .48 (s, 4H), 2.77 (hept, J = 6.8 Hz, 2H), 6.54 (d, J = 8.2 Hz, 1 H), 6.74 (d, J = 2.3 Hz, 1 H), 6.84 (dd, J = 8.5, 2.3 Hz, 1 H), 7.16 (d, J = 8.6 Hz, 4H), 7.18 (d, J = 8.3 Hz, 1 H), 7.35 (d, J = 8.1 Hz, 2H), 7.39 (d, J = 8.6 Hz, 4H), 7.51 (t, J = 8.1 Hz, 1 H), 7.57 (d, J = 9.1 Hz, 1 H), 7.60 (d, J = 8.2 Hz, 1 H), 7.64 (d, J = 8.3 Hz, 1 H), 7.67 (d, J = 4.0 Hz, 1 H), 7.69 (d, J = 3.6 Hz, 1 H), 8.15 (d, J = 7.9 Hz, 1 H), 8.23 (d, J = 7.9 Hz, 1 H). FD mass spectrum (8 kV): m/z (%): calcd for 963.29; found: 963.20 (100) [M]+ UV-Vis (CH2CI2): Amax = 627 nm (53384 N cnrr1).
10-(bis(4-(2,4,4-trimethylpentan-2-yl)phenyl)amino)-2-(2,6-diisopropylphe
thioxantheno[2', 1 ',9': 10,5,6]anthra[2, 1 ,9-def]isoquinoline-1 ,3(2H)-dione (1 1 c)
A mixture of compound 18b (0.10 g, 0.160 mmol), bis(4-(2,4,4-trimethylpentan-2- yl)phenyl)amine (0.08g, 0.2 mmol), Pd2(dba)3 (5 mmol%), BINAP (10 mol%), cesium carbonate (0.1 g, 0.33mmol) in 20 ml toluene was stirred at 100°C under argon atmosphere overnight. The solvent was removed under reduced pressure. The crude product was purified by column chromatography using Toluene/EtOAc (4:1 ) as eluent on silica. Yield: 73% (0.1 15 g, 0.1 17 mmol) of a blue solid.
1H NMR (300 MHz, CD2CI2, 298K) 0.71 (s, 18H), 1.07 (dd, J = 6.8, 2.3 Hz, 6H), 1.32 (d, J = 2.8 Hz, 12H), 1 .64 (s, 4H), 2.69 (h, J = 6.7 Hz, 2H), 6.70 (d, J = 2.5 Hz, 1 H), 6.78 - 6.90 (m, 2H), 7.05 (m, 4H), 7.17 - 7.36 (m, 5H), 7.36 - 7.52 (m, 2H), 7.64 (d, J = 8.2 Hz, 1 H), 7.69 (d, J = 5.5 Hz, 1 H), 7.71 - 7.79 (m, 2H), 8.18 (d, J = 8.1 Hz, 2H), 8.23 (d, J = 8.2 Hz, 2H).
FD mass spectrum (8 kV): m/z (%): calcd for 976.36; found: 979.30 (100) [M]+
UV-Vis (CH2CI2): Amax = 659 nm (54533 IV crrr1).
Preparation of compound 10: 10-(bis(4-(2,4,4-trimethylpentan-2- yl)phenyl)amino)isochromeno[6',5',4': 10,5,6]anthra[2, 1 ,9-mna]xanthene-1 ,3-dione
Figure imgf000047_0001
A mixture of potassium hydroxide (0.5 g) and Compound 10c (0.10 g, 0.104 mmol) in 10 ml 2-Methyl-2-butanol was stirred and reflused overnight. The mixture was cooled and diluted with 50 ml 10% hydrochloric acid. The precipitate was filtered, washed with water and dried. The solid was suspended in the mixture of DCM (10 ml) and acetic acid (20 ml) with 4-5 drops of acetic anhydride and stirred overnight at 100°C. The mixture was cooling down to room temperature and 10 ml of water was added. The precipitate was filtered, washed with water/methanol 1 :2 and dried. The product was obtained and isolated as blue solid in 96% yield (0.08 g, 0.1 mmol).
FD mass spectrum (8 kV): m/z (%): calcd for 804.02; found: 804.10 (100) [M]+ Preparation of compound 12:
2-(10-(bis(4-(2,4,4-trimethylpentan-2-yl)phenyl)amino)-1 ,3-dioxo-1 H- xantheno[2',1 ',9':10,5,6]anthra[2,1 ,9-def]isoquinolin-2(3H)-yl)acetic acid
Figure imgf000048_0001
A mixture of Compound 10 (0.06 g, 0.08 mmol), glycine (1 .0 g) and imidazole (3.0 g) was stirred at 140°C under argon atmosphere for 4 h. The mixture was poured into 10 % hydrochloric acid and ice. The precipitate was filtered, washed with water and water/methanol 1 :1 . The crude product was dissolved in THF and precipitated in water/methanol 1 :2. The solid was dissolved in THF and purified by GPC using THF as eluent. The product was obtained and isolated as blue solid in 58% yield (0.04 g, 0.047 mmol).
FD mass spectrum (8 kV): m/z (%): calcd for 861.08; found: 861 .7 (100) [M]+
UV-Vis (CH2CI2): Amax = 609 nm (54533 IV crrr1). B) Preparation and characterization of the DSCs General Methods and Materials Preparation of the (solid-state) DSCs: A ΤΊΟ2 blocking layer was prepared on a fluorine- doped tin oxide (FTO)-covered glass substrate using spray pyrolysis (cf. B. Peng, G. Jungmann, C. Jager, D. Haarer, H . W. Schmidt, M. Thelakkat, Coord. Chem. Rev. 2004, 248, 1479). Next, a Ti02 paste (Dyesol), diluted with terpineol, was applied by screen printing, resulting in a film thickness of 1.7 μιτι. All films were then sintered for 45 min at 450 °C, followed by treatment in a 40 mM aqueous solution of TiCU at 60 °C for 30 min, followed by another sintering step. The prepared samples with T1O2 layers were pretreated with 5 mM solutions of either the additive 2-(p-butoxyphenyl)aceto- hydroxamic acid sodium salt ("ADD1 ") or the additve 2-(p-butoxyphenyl)aceto- hydroxamic acid tetrabutyl ammonium salt ("ADD2") in ethanol. These additives are described on page 52 and page 53 of WO 2012/001628 A1 as "Example No. 6" and "Example No. 10", respectively. The electrodes were then dyed in 0.5 mM dye solution in toluene or CH2CI2 (DCM) (solvent listed in table 1 ). Spiro-MeOTAD was applied by spin-coating from a solution in DCM (200 mg/mL) also containing 20 mM Li(CF3SC>2)2N . Fabrication of the device was completed by evaporation of 200 nm of silver as the counter electrode. The active area of the sDSC was defined by the size of these contacts (0.13 cm2), and the cells were masked by an aperture of the same area for measurements. The current-voltage characteristics for all cells were measured with a Keithley 2400 under 1000 W/m2, AM 1 .5G conditions (LOT ORIEL 450 W). The incident photon to current conversion efficiency's (IPCE) were obtained with an Acton Research Monochromator using additional white background light illumination.
The samples were illuminated with monochromatic light from the quartz
monochromator with deuterium lamp. The power of the incident light beam was (2- 5)·10 8 W. The negative voltage of -300 V was supplied to the sample substrate. The counter-electrode with the 4.5x15 mm2 slit for illumination was placed at 8 mm distance from the sample surface. The counter-electrode was connected to the input of the BK2- 16 type electrometer, working in the open input regime, for the photocurrent
measurement. The 10 15 - 10 12 A strong photocurrent was flowing in the circuit under illumination. The photocurrent J is strongly dependent on the incident light photon energy hv. The J0 5 = f(hv) dependence was plotted. Usually the dependence of the photocurrent on incident light quanta energy is well described by linear relationship between J0 5 and hv near the threshold (cf. E. Miyamoto, Y. Yamaguchi, M. Yokoyama, Electrophotography 1989, 28, 364 and M. Cordona, L. Ley, Top. Appl. Phys. 1978, 26, 1 ). The linear part of this dependence was extrapolated to the hv axis and Jp value was determined as the photon energy at the interception point.
The results of the DSCs with varying dyes/compounds are given in the following table 1 . Table 1
Figure imgf000050_0001
Isc: short circuit current; Voc: open circuit voltage; FF: fill factor; ETA: efficiency
Figure 1 : Absorbance of compound 8 on T1O2 with additives ADD1 and ADD2 before coating with the hole conductor Figure 2: EQE of the OPV cell in the case of use of compound 8 (applied as toluene solution) with ADD1 and ADD2 before coating with the hole conductor
Figure 3: Current-voltage characteristic of the OPV cell in the case of use of compound 8 with additives ADD1 and ADD2 before coating with the hole conductor
Figure 4: Absorbance of compound 12 on T1O2 with additives ADD1 and ADD2 before coating with the hole conductor Figure 5: EQE of the OPV cell in the case of use of compound 12 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
Figure 6: Current-voltage characteristic of the OPV cell in the case of use of compound 12 with additives ADD1 and ADD2 before coating with the hole conductor
Figure 7: Absorbance of compound 2 on ΤΊΟ2 with additives ADD1 and ADD2 before coating with the hole conductor Figure 8: EQE of the OPV cell in the case of use of compound 2 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
Figure 9: Current-voltage characteristic of the OPV cell in the case of use of compound 2 with additives ADD1 and ADD2 before coating with the hole conductor
Figure 10: Absorbance of compound 5 on ΤΊΟ2 with additives ADD1 and ADD2 before coating with the hole conductor
Figure 1 1 : EQE of the OPV cell in the case of use of compound 5 (applied as DCM solution) with ADD1 and ADD2 before coating with the hole conductor
Figure 12: Current-voltage characteristic of the OPV cell in the case of use of compound 5 with additives ADD1 and ADD2 before coating with the hole conductor

Claims

Claims
1 . Use of compounds of general formula I
Figure imgf000052_0001
(I) wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, q 0 or 1 ,
X sulfur, oxygen or NR3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, Y1 oxygen or N-Z-A,
A is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen, in dye-sensitized solar cells.
2. Use according to claim 1 wherein in general formula I the variables have the
following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, q 0 or 1 ,
X sulfur, oxygen or NR3,
R3 alkyl or aryl,
Y1 oxygen or N-Z-A,
A is -COOM ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene.
3. Compounds of general formula Γ
Figure imgf000053_0001
(0 wherein the variables have the following meaning R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
X sulfur, oxygen or NR3,
R3 hydrogen, alkyl, cycloalkyl, aryl or hetaryl,
Y1 oxygen or N-Z-A,
A is -COOM , -SO3M or -PO3M , M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
4. Compounds according to claim 3 wherein in general formula Γ the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2,
X sulfur, oxygen or NR3,
R3 alkyl or aryl, Y1 oxygen or N-Z-A,
A -COOM ,
M hydrogen, alkali metal cation or [NR']4+,
R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene.
5. Compounds of general formula I"
Figure imgf000055_0001
(I") wherein the variables have the following meaning independently of each other hydrogen, halogen, alkyl, cycloalkyl, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
R3 hydrogen, alkyl, cycloalkyl, aryl or hetaryl,
Y1 oxygen or N-Z-A, is -COOM , -SO3M or -PO3M ,
M hydrogen, alkali metal cation or [NR']4+, R' hydrogen or alkyl, where the radicals R' may be identical or different,
Ci-C6-alkylene or 1 ,4-phenylene, where the phenylene radical may be substituted by one or more substituents alkyl, nitro, cyano and/or halogen.
6. Compounds according to claim 5 wherein in general formula I" the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, R3 alkyl or aryl,
Y1 oxygen or N-Z-A,
-COOM ,
M hydrogen, alkali metal cation or [NR']
R' hydrogen or alkyl, where the radicals R' may be identical or different,
Z Ci-C6-alkylene or 1 ,4-phenylene.
7. Use of compounds of general formula II
Figure imgf000056_0001
(II) wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4, q 0 or 1 ,
X sulfur, oxygen or NR3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y2 NR4, R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl, in the case of q equal to 0 or 1 :
as precursor compounds for the manufacture of compounds of general formula I according to claim 1 and in the case of q equal to 1 :
as precursor compounds for the manufacture of compounds of general formula Γ according to claim 3.
Use of compounds of general formula ΙΓ
Figure imgf000057_0001
( ) wherein the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2, q 0 or 1 ,
X sulfur, oxygen or NR3,
R3 alkyl or aryl, Y2 NR4, R4 hydrogen, alkyl, cycloalkyi, aryl or hetaryl, in the case of q equal to 0 or 1 :
as precursor compounds for the manufacture of compounds of general formula I according to claim 2 and in the case of q equal to 1 :
as precursor compounds for the manufacture of compounds of general formula Γ according to claim 4.
9. Compounds of general formula III
Figure imgf000058_0001
(III) wherein the variables have the following meaning independently of each other hydrogen, halogen, alkyl, cycloalkyi, aryl, hetaryl, alkoxy, aryloxy, arylthio, hetaryloxy, hetarylthio, diarylamino or dialkylamino, m, n independently of each other 0, 1 , 2, 3 or 4,
X sulfur, oxygen or NR3,
R3 hydrogen, alkyl, cycloalkyi, aryl or hetaryl,
Y2 NR4, R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl.
Compounds according to claim 9 wherein in general formula III the variables have the following meaning
R1, R2 independently of each other hydrogen, halogen, aryl, aryloxy, arylthio, hetaryloxy, hetarylthio or dialkylamino, m, n independently of each other 0, 1 or 2,
X sulfur, oxygen or NR3,
R3 alkyl or aryl,
Y2 NR4,
R4 hydrogen, alkyl, cycloalkyl, aryl or hetaryl.
Use of compounds of general formula I according to claim 1 or 2, of general formula Γ according to claim 3 or 4, or of general formula I" according to claim 5 or 6 as sensitizers in dye-sensitized solar cells.
12. A dye-sensitized solar cell comprising compounds of general formula I according to claim 1 or 2, of general formula Γ according to claim 3 or 4, or of general formula I" according to claim 5 or 6.
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