EP2173815A1 - Method of preparing naphthalocyanines - Google Patents

Method of preparing naphthalocyanines

Info

Publication number
EP2173815A1
EP2173815A1 EP07763794A EP07763794A EP2173815A1 EP 2173815 A1 EP2173815 A1 EP 2173815A1 EP 07763794 A EP07763794 A EP 07763794A EP 07763794 A EP07763794 A EP 07763794A EP 2173815 A1 EP2173815 A1 EP 2173815A1
Authority
EP
European Patent Office
Prior art keywords
alkyl
benzisoindolenine
amino
salt
aryl
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP07763794A
Other languages
German (de)
French (fr)
Other versions
EP2173815A4 (en
Inventor
Sutharsiny Indusegaram
Simone Charlotte Vonwiller
Damon Donald Ridley
Kia Silverbrook
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Silverbrook Research Pty Ltd
Original Assignee
Silverbrook Research Pty Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Silverbrook Research Pty Ltd filed Critical Silverbrook Research Pty Ltd
Publication of EP2173815A1 publication Critical patent/EP2173815A1/en
Publication of EP2173815A4 publication Critical patent/EP2173815A4/en
Withdrawn legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F5/00Compounds containing elements of Groups 3 or 13 of the Periodic Table
    • C07F5/003Compounds containing elements of Groups 3 or 13 of the Periodic Table without C-Metal linkages
    • CCHEMISTRY; METALLURGY
    • 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
    • C09B47/00Porphines; Azaporphines
    • C09B47/04Phthalocyanines abbreviation: Pc
    • C09B47/06Preparation from carboxylic acids or derivatives thereof, e.g. anhydrides, amides, mononitriles, phthalimide, o-cyanobenzamide
    • CCHEMISTRY; METALLURGY
    • 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
    • C09B47/00Porphines; Azaporphines
    • C09B47/04Phthalocyanines abbreviation: Pc
    • C09B47/06Preparation from carboxylic acids or derivatives thereof, e.g. anhydrides, amides, mononitriles, phthalimide, o-cyanobenzamide
    • C09B47/073Preparation from isoindolenines, e.g. pyrrolenines

Definitions

  • the present application relates generally to an improved method of synthesizing naphthalocyanines It has been developed primarily to reduce the cost of existing naphthalocyanine syntheses and to facilitate large-scale preparations of these compounds
  • naphthalocyanines as IR-absorbing dyes.
  • Naphthalocyanines, and particularly gallium naphthalocyanines have low absorption in the visible range and intense absorption in the near-IR region (750-810 nm). Accordingly, naphthalocyanines are attractive compounds for use in invisible inks.
  • the Applicant's US Patent Nos. 7,148,345 and 7,122,076 (the contents of which are herein incorporated by reference) describe in detail the use of naphthalocyanine dyes in the formulation of inks suitable for printing invisible (or barely visible) coded data onto a substrate. Detection of the coded data by an optical sensing device can be used to invoke a response in a remote computer system. Hence, the substrate is interactive by virtue of the coded data printed thereon.
  • naphthalocyanines and especially gallium naphthalocyanines are excellent candidates for such dyes and, as a consequence, there is a growing need to synthesize naphthalocyanines efficiently and in high yield on a large scale
  • Naphthalocyanines are challenging compounds to synthesize on a large scale.
  • naphthalene-2,3-dicarbonitrile 2 is prepared from two expensive building blocks tetrabromo-o-xylene 3 and fumaronit ⁇ le 4, neither of which can be readily prepared in multi-kilogram quantities.
  • a method of preparing a naphthalocyanine comprising the steps of:
  • the tetrahydronaphthalic anhydride is of formula (I)- wherein:
  • Ri, R 2 , R 3 and R 4 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 20 alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl) amino, halogen, cyano, thiol, Ci 2 o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 2 o alkylcarbonyl, Ci 2 o alkoxycarbonyl, Ci 2 o alkylcarbonyloxy, Ci 2 o alkylcarbonylamino, C 5 2 o aryl, C 5 2 o arylalkyl, C 5 2 o aryloxy, C 5 2 o arylalkoxy, C 5 2 o heteroaryl, C 5 2 o heteroarylalkoxy or C 5 2 o heteroarylalkyl.
  • Ri, R 2 , R 3 and R 4 are all hydrogen.
  • step (ii) comprises a one -pot conversion from the tetrahydronaphthalic anhydride to a benzisoindolenine salt
  • This one-pot conversion facilitates synthesis of naphthalocyanines via the route described above and greatly improves yields and scalability.
  • the benzisoindolenine salt is a nitrate salt although other salts (e g. benzene sulfonate salt) are of course withm the scope of the present invention.
  • the one-pot conversion is effected by heating with a reagent mixture comprising ammonium nitrate.
  • the reagent mixture comprises at least 2 equivalents of ammonium nitrate with respect to the tetrahydronaphthalic anhydride.
  • the reagent mixture comprises urea.
  • the reagent mixture comprises at least one further ammonium salt.
  • the further ammonium salt is selected from ammonium sulfate and ammonium benzenesulfonate
  • the reagent mixture comprises a catalytic amount of ammonium molybdate.
  • the heating is withm a temperature range of 150 to 200 0 C.
  • the reaction may be performed m the presence of or in the absence of a solvent.
  • heating is in the presence of an aromatic solvent.
  • suitable solvents are nitrobenzene, biphenyl, diphenyl ether, mesitylene, anisole, phenetole, dichlorobenzene, t ⁇ chlorobenzene and mixtures thereof
  • the benzisoindolenine is liberated from the benzisoindolenine salt using a base.
  • Sodium methoxide is an example of a suitable base although the skilled person will be readily aware of other suitable bases.
  • the benzisoindolenine is of formula (II): wherein:
  • Ri, R 2 , R 3 and R 4 are each independently selected from hydrogen, hydroxyl, C 1 - 20 alkyl, Ci- 20 alkoxy, amino, Ci_ 2 o alkylamino, di(Ci. 2 o alkyl)amino, halogen, cyano, thiol, Ci. 2 o alkylthio, nitro, Ci- 20 alkylcarboxy, Ci- 20 alkylcarbonyl, Ci_ 2 o alkoxycarbonyl, Ci- 20 alkylcarbonyloxy, Ci- 20 alkylcarbonylamino, C 5 . 2 o aryl, C 5 . 20 arylalkyl, C 5 . 20 aryloxy, C 5 .
  • the naphthalocyanine is of formula (III):
  • R-i4> R15 an d R-16 are each independently selected from hydrogen, hydroxyl, C 1 - 20 alkyl, Ci- 20 alkoxy, amino, C 1 - 20 alkylamino, di(C 1 . 20 alkyl) amino, halogen, cyano, thiol, Ci -2O alkylthio, nitro, Ci- 20 alkylcarboxy, C i. 2O alkylcarbonyl, C 1 . 20 alkoxycarbonyl, C 1 . 20 alkylcarbonyloxy, C 1 . 20 alkylcarbonylamino, C 5 .
  • M is absent or selected from Si(A 1 XA 2 ), Ge(A 1 XA 2 ), Ga(A 1 ), Mg, Al(A 1 ), TiO, Ti(A 1 XA 2 ), ZrO,
  • a 1 and A 2 are axial ligands, which may be the same or different, and are selected from -OH, halogen or -OR q ;
  • R q is selected from Ci i 6 alkyl, C 5 20 aryl, C 5 20 arylalkyl, Ci 20 alkylcarbonyl, Ci 2 o alkoxycarbonyl or Si(R x )(R y )(R z ); and R x , R y and R z may be the same or different and are selected from Ci 20 alkyl, C 5 20 aryl, C 5 20 arylalkyl, Ci 2 o alkoxy, C 5 2 o aryloxy or C 5 2 o arylalkoxy;
  • R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R 7 , R 8 , R 9 , Ri 0 , Rn, Ri 2 , Ri 3 , Ri 4 , Ri 5 and R i6 are all hydrogen.
  • M is Ga(A 1 ), such as Ga(OCH 2 CH 2 OCH 2 CH 2 OCH 2 CH 2 OMe); that is where R q is CH 2 CH 2 OCH 2 CH 2 OCH 2 CH 2 OMe.
  • ethers such as
  • step (iii) comprises heating the benzisoindolenine in the presence of a metal compound, such as AlCl 3 or GaCl 3 or a corresponding metal alkoxide
  • a metal compound such as AlCl 3 or GaCl 3 or a corresponding metal alkoxide
  • the reaction may be performed in the absence of or in the presence of a suitable solvent, such as toluene, nitrobenzene etc.
  • the reaction may be catalyzed with a suitable base, such as sodium methoxide Alcohols, such as triethylene glycol monomethyl ether or glycol may also be present to assist with naphthalocyanine formation. These alcohols may end up as the axial ligand of the naphthalocyanine or they may be cleaved from the metal under the reaction conditions.
  • a suitable base such as sodium methoxide Alcohols, such as triethylene glycol monomethyl ether or glycol may also be present to assist with naphthalocyanine formation. These alcohols may end up as the axial ligand of the naphthalocyanine or they may be cleaved from the metal under the reaction conditions.
  • a suitable base such as sodium methoxide
  • Alcohols such as triethylene glycol monomethyl ether or glycol may also be present to assist with naphthalocyanine formation. These alcohols may end up as the axial ligand of the naphthalocyanine or they may be cleaved
  • the method further comprises the step of sulfonating said naphthalocyanine.
  • Sulfonate groups are useful for solubilizmg the naphthalocyanines in ink formulations, as described in our earlier US Patents Nos. 7,148,345 and 7,122,076.
  • a method of effecting a one-pot conversion of a tetrahydronaphthalic anhydride to a benzisoindolenine salt comprising heating said tetrahydronaphthalic anhydride with a reagent mixture comprising ammonium nitrate.
  • This transformation advantageously obviates a separate dehydrogenation step to form the naphthalene ring system.
  • the ammonium nitrate performs the dual functions of oxidation
  • the isomdolenme salts generated according to the second aspect may be used in the synthesis of naphthalocyanines. Hence, this key reaction provides a significant improvement in routes to naphthalocyanines.
  • the method comprising reacting the dihalogeno compound (IV) with a hydroxymethanesulfinate salt in a DMSO solvent so as to prepare the sultine (V); wherein:
  • Ri, R 2 , R 3 and R 4 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 20 alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl) amino, halogen, cyano, thiol, Ci 2 o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl, Ci 20 alkylcarbonyloxy, Ci 20 alkylcarbonylamino, C 5 20 aryl, C 5 20 arylalkyl, C 5 20 aryloxy, C 5 20 arylalkoxy, C 5 20 heteroaryl, C 5 20 heteroaryloxy, C 5 20 heteroarylalkoxy or C 5 20 heteroarylalkyl; and X is Cl, Br or I.
  • the method according to the third aspect surprisingly minimizes polymeric by-products and improves yields, when compared to literature methods for this reaction employing DMF as the solvent These advantages are amplified when the reaction is performed on a large scale (e g at least 0 3 molar, at least 0 4 molar or at least 0 5 molar scale)
  • NaI is used to catalyze the coupling reactions when X is Cl or Br
  • a metal carbonate base e.g. Na 2 CO 3 , K 2 CO 3 , Cs 2 CO 3 etc.
  • the hydroxymethanesulfinate salt is sodium hydroxymethanesulfinate (RongaliteTM).
  • Ri, R 2 , R 3 and R 4 are all hydrogen.
  • the method comprises the further step of reacting the sultine (V) with an olefin at elevated temperature (e.g. about 8O 0 C) to generate a Diels- Alder adduct.
  • elevated temperature e.g. about 8O 0 C
  • the olefin is maleic anhydride and said Diels-Alder adduct is a tetrahydronaphthalic anhydride.
  • the tetrahydronaphthalic anhydride is used as a precursor for naphthalocyanme synthesis, as described herein
  • the naphthalocyanine synthesis proceeds via conversion of the tetrahydronaphthalic anhydride to a benzisoindolenine, as described herein.
  • Figure 1 is a 1 H NMR spectrum of the crude sultme 10 in J 6 -DMSO
  • Figure 2 is a 1 H NMR spectrum of the anhydride 8 in J 6 -DMSO
  • Figure 3 is a 1 H NMR spectrum of the crude benzisoindolenine salt 12 in J 6 -DMSO,
  • Figure 4 is an expansion of the aromatic region of the 1 H NMR spectrum shown in Figure
  • Figure 5 is a 1 H NMR spectrum of the benzisoindolenine 7 m J 6 -DMSO.
  • Figure 6 is an expansion of the aromatic region of the 1 H NMR spectrum shown in Figure
  • Figure 7 is a UV-VIS spectrum of naphthalocyanatogallium methoxytriethyleneoxide in NMP
  • phthalocyanines As an alternative to dicarbonit ⁇ les, the general class of phthalocyanines is known to be prepared from isoindolenines. In US 7,148,345, we proposed the benzisoindolenine 5 as a possible precursor to naphthalocyanmes.
  • Tetrahydronaphthalic anhydride 6 was an attractive starting point, because this is a known Diels-Alder adduct which may be synthesized via the route shown in Scheme 3 Scheme 3
  • the present invention also provides a significant improvement in the conversion of tetrahydronaphthalic anhydride 6 to the benzisoindolenine 5.
  • ammonium nitrate used for this step readily effects oxidation of the saturated ring system as well as converting the anhydride to the isoindolenine.
  • Conversion to a tetrahydroisomdolenme was expected to proceed smoothly, in accordance with the isoindolenine similar systems described m WO98/31667.
  • the benzisoindolenine 5 may be converted into any required naphthalocyanine using known conditions.
  • the preparation of a gallium naphthalocyanine from benzisoindolenine 5 is exemplified herein
  • Subsequent manipulation of the naphthalocyanine macrocycle may also be performed in accordance with known protocols
  • sulfonation may be performed using oleum, as described in US Patent Nos 7,148,345 and 7,122,076
  • aryl is used herein to refer to an aromatic group, such as phenyl, naphthyl or triptycenyl Ce n aryl, for example, refers to an aromatic group having from 6 to 12 carbon atoms, excluding any substituents.
  • arylene refers to divalent groups corresponding to the monovalent aryl groups described above Any reference to aryl implicitly includes arylene, where appropriate.
  • heteroaryl refers to an aryl group, where 1, 2, 3 or 4 carbon atoms are replaced by a heteroatom selected from N, O or S
  • heteroaryl (or heteroaromatic) groups include pyridyl, benzimidazolyl, mdazolyl, qumolinyl, isoquinolinyl, indolinyl, isoindolinyl, mdolyl, isoindolyl, furanyl, thiophenyl, pyrrolyl, thiazolyl, imidazolyl, oxazolyl, isoxazolyl, pyrazolyl, isoxazolonyl, piperazinyl, pyrimidinyl, piperidinyl, morpholinyl, pyrrolidinyl, isothiazolyl, triazolyl, oxadiazolyl, thiadiazolyl, pyridyl, pyrimidinyl, benzo
  • aryl and heteroaryl groups may be optionally substituted with 1, 2, 3, 4 or 5 of the substituents described below.
  • the optional substituent(s) are independently selected from Ci -8 alkyl, Ci -8 alkoxy, -(OCH 2 CH 2 ) d OR d (wherein d is an integer from 2 to 5000 and R d is H, Ci -8 alkyl or C(O)Ci- S alkyl), cyano, halogen, amino, hydroxyl, thiol, -SR V , -NR 11 R", nitro, phenyl, phenoxy, -CO 2 R", -C(O)R", -OCOR", -SO 2 R", -OSO 2 R", -SO 2 OR", -NHC(O)R", -CONR 11 R", -CONR 11 R", -SO 2 NR 11 R", wherein R" and R" are independently selected from hydrogen, Ci -2O alkyl, phenyl or phenyl-Ci-
  • alkyl is used herein to refer to alkyl groups in both straight and branched forms. Unless stated otherwise, the alkyl group may be interrupted with f, 2, 3 or 4 heteroatoms selected from O, NH or S. Unless stated otherwise, the alkyl group may also be interrupted with 1, 2 or 3 double and/or triple bonds. However, the term “alkyl” usually refers to alkyl groups having double or triple bond interruptions. Where “alkenyl” groups are specifically mentioned, this is not intended to be construed as a limitation on the definition of "alkyl” above.
  • Ci -2O alkyl it is meant the alkyl group may contain any number of carbon atoms between 1 and 20. Unless specifically stated otherwise, any reference to “alkyl” means Ci -20 alkyl, preferably Cu 2 alkyl or Ci_ 6 alkyl.
  • the term "alkyl” also includes cycloalkyl groups. As used herein, the term “cycloalkyl” includes cycloalkyl, polycycloalkyl, and cycloalkenyl groups, as well as combinations of these with linear alkyl groups, such as cycloalkylalkyl groups.
  • the cycloalkyl group may be interrupted with 1, 2 or 3 heteroatoms selected from O, N or S.
  • cycloalkyl usually refers to cycloalkyl groups having no heteroatom interruptions.
  • examples of cycloalkyl groups include cyclopentyl, cyclohexyl, cyclohexenyl, cyclohexylmethyl and adamantyl groups.
  • arylalkyl refers to groups such as benzyl, phenylethyl and naphthylmethyl.
  • halogen or "halo" is used herein to refer to any of fluorine, chlorine, bromine and iodine. Usually, however, halogen refers to chlorine or fluorine substituents.
  • Sodium hydroxymethanesulfinate (RongaliteTM) (180 g; 1 17 mol) was suspended in DMSO (400 mL) and left to stir for 10 mm. before dichloro-o-xylene (102.5 g; 0.59 mol), potassium carbonate (121.4 g; 0.88 mol) and sodium iodide (1.1 g; 7 mmol) were added consecutively More DMSO (112 mL) was used to rinse residual materials into the reaction mixture before the whole was allowed to stir at room temperature. The initial endothermic reaction became mildly exothermic after around 1 h causing the internal temperature to rise to ca. 32-33 0 C.
  • the reaction was followed by TLC (ethyl acetate/hexane, 50:50) and found to be complete after 3 h.
  • the reaction mixture was diluted with methanol/ethyl acetate (20:80; 400 mL) and the solids were filtered off, and washed with more methanol/ethyl acetate (20:80; 100 mL, 2 x 50 mL).
  • the filtrate was transferred to a separating funnel and brine (1 L) was added. This caused more sodium chloride from the product mixture to precipitate out.
  • the crude sultine from above (126 g) was diluted in trifluoro toluene (100 mL) and then added to a preheated (bath 80 0 C) suspension of maleic anhydride (86 g; 0 88 mol) in trifluorotoluene (450 mL)
  • the residual sultine was washed with more trifluorotoluene into the reaction mixture and then the final volume was made up to 970 mL.
  • the reaction mixture was heated at 80 0 C for 15 h, more maleic anhydride (28.7 g; 0.29 mol) was added and then heating was continued for a further 8 h until TLC showed that the sultine had been consumed While still at 80 0 C, the solvent was removed by evaporation with a water aspirator and then the residual solvent was removed under high vacuum.
  • the moist solid was triturated with methanol (200 mL) and filtered off, washing with more methanol (3 x 100 mL).
  • the tetrahydronaphthalic anhydride 6 was obtained as a fine white crystalline solid (75.4 g; 64% from 10) after drying under high vacuum at 60-70 0 C for 4 h
  • Example 3 The sultine was prepared from dichloro-o-xylene (31.9 g; 0.182 mol), as described in Example 2, and then reacted with maleic anhydride (26 8 g; 0.273 mol) in toluene (300 mL total volume) as described above. This afforded the tetrahydronaphthalc anhydride 6 as a white crystalline solid
  • the resulting suspension was poured on a sintered glass funnel, using more methanol (100 mL) to rinse out the reaction flask After removing most of the methanol by gravity filtration, the brown solid was sucked dry and then washed with more methanol (3 x 200 mL, 50 mL), air-d ⁇ ed overnight and dried under high vacuum in a warm water bath for 1.5 h.
  • the benzisoindolenme salt 12 was obtained as a fine brown powder (154.6 g) and was found by NMR analysis to contain urea (5.43 ppm) and other salts (6.80 ppm). This material was used directly in the next step without further purification.
  • Example 5 l-am ⁇ no-3- ⁇ m ⁇ nobenz[f] ⁇ so ⁇ ndolen ⁇ ne 7
  • the crude nitrate salt 12 (154.6 g) was suspended in acetone (400 mL) with cooling m an ice/water bath to 0 0 C
  • Sodium methoxide (25% in methanol; 284 ml; 1 3 mol) was added slowly dropwise via a dropping funnel at such a rate as to maintain an internal temperature of 0-5 0 C
  • the reaction mixture was poured into cold water (2 x 2 L) in two 2 L conical flasks The mixtures were then filtered on sintered glass funnels and the solids were washed thoroughly with water (250 mL; 200 mL for each funnel).
  • the fine brown solids were air- dried over 2 days and then further dried under high vacuum to give the benzisoindolenine 5 as a fine brown powder (69 1 g; 73%).
  • Gallium chloride (15.7 g; 0.089 mol) was dissolved in anhydrous toluene (230 mL) in a 3-neck flask (1 L) equipped with a mechanical stirrer, heating mantle, thermometer, and distillation outlet
  • the resulting solution was cooled in an ice/water bath to 10 °C and then sodium methoxide in methanol (25%; 63 mL) was added slowly with stirring such that the internal temperature was maintained below 25 0 C thereby affording a white precipitate.
  • the mixture was then treated with triethylene glycol monomethyl ether (TEGMME, 190 mL) and then the whole was heated to distill off all the methanol and toluene (3 h).
  • TEGMME triethylene glycol monomethyl ether
  • the mixture was then cooled to 90-100 0 C (internal temperature) by removing the heating mantle and then the benzisoindolenine 5 from the previous step (69.0 g; 0.35 mol) was added all at once as a solid with the last traces being washed into the reaction vessel with diethyl ether (30 mL)
  • the reaction mixture was then placed in the preheated heating mantle such that an internal temperature of 170 0 C was established after 20 min.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Nitrogen Condensed Heterocyclic Rings (AREA)
  • Indole Compounds (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)

Abstract

A method of preparing a naphthalocyanine is provided. The method comprises the steps of: (i) providing a tetrahydronaphthalic anhydride; (ii) converting said tetrahydronaphthalic anhydride to a benzisoindolenine; and (iii) macrocyclizing said benzisoindolenine to form a naphthalocyanine.

Description

METHOD OF PREPARING NAPHTHALOCYANINES
Field of the Invention
The present application relates generally to an improved method of synthesizing naphthalocyanines It has been developed primarily to reduce the cost of existing naphthalocyanine syntheses and to facilitate large-scale preparations of these compounds
Background of the Invention
We have described previously the use of naphthalocyanines as IR-absorbing dyes. Naphthalocyanines, and particularly gallium naphthalocyanines, have low absorption in the visible range and intense absorption in the near-IR region (750-810 nm). Accordingly, naphthalocyanines are attractive compounds for use in invisible inks. The Applicant's US Patent Nos. 7,148,345 and 7,122,076 (the contents of which are herein incorporated by reference) describe in detail the use of naphthalocyanine dyes in the formulation of inks suitable for printing invisible (or barely visible) coded data onto a substrate. Detection of the coded data by an optical sensing device can be used to invoke a response in a remote computer system. Hence, the substrate is interactive by virtue of the coded data printed thereon.
The Applicant's netpage and Hyperlabel® systems, which makes use of interactive substrates printed with coded data, are described extensively in the cross-referenced patents and patent applications above (the contents of which are herein incorporated by reference)
In the anticipation of widespread adoption of netpage and Hyperlabel® technologies, there exists a considerable need to develop efficient syntheses of dyes suitable for use in inks for printing coded data. As foreshadowed above, naphthalocyanines and especially gallium naphthalocyanines are excellent candidates for such dyes and, as a consequence, there is a growing need to synthesize naphthalocyanines efficiently and in high yield on a large scale
Naphthalocyanines are challenging compounds to synthesize on a large scale. In US Patent Nos. 7,148,345 and 7,122,076, we described an efficient route to naphthalocyanines via macrocyclization of naphthalene-2,3-dicarbonitrile Scheme 1 shows a route to the sulfonated gallium naphthalocyanine 1 from naphthalene-2,3-dicarbonitrile 2, as described in US 7,148,345
Scheme 1
However, a problem with this route to naphthalocyanines is that the starting material 2 is expensive. Furthermore, naphthalene-2,3-dicarbonitrile 2 is prepared from two expensive building blocks tetrabromo-o-xylene 3 and fumaronitπle 4, neither of which can be readily prepared in multi-kilogram quantities.
Accordingly, if naphthalocyanines are to be used in large-scale applications, there is a need to improve on existing syntheses
Summary of the Invention
In a first aspect, there is provided a method of preparing a naphthalocyanine comprising the steps of:
(i) providing a tetrahydronaphthalic anhydride;
(ii) converting said tetrahydronaphthalic anhydride to a benzisoindolenine; and
(iii) macrocychzing said benzisoindolenine to form a naphthalocyanine Optionally, the tetrahydronaphthalic anhydride is of formula (I)- wherein:
Ri, R2, R3 and R4 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 20 alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl) amino, halogen, cyano, thiol, Ci 2o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 2o alkylcarbonyl, Ci 2o alkoxycarbonyl, Ci 2o alkylcarbonyloxy, Ci 2o alkylcarbonylamino, C5 2o aryl, C5 2o arylalkyl, C5 2o aryloxy, C5 2o arylalkoxy, C5 2o heteroaryl, C5 2o heteroaryloxy, C5 2o heteroarylalkoxy or C5 2o heteroarylalkyl.
Optionally, Ri, R2, R3 and R4 are all hydrogen.
Optionally, step (ii) comprises a one -pot conversion from the tetrahydronaphthalic anhydride to a benzisoindolenine salt This one-pot conversion facilitates synthesis of naphthalocyanines via the route described above and greatly improves yields and scalability.
Optionally, the benzisoindolenine salt is a nitrate salt although other salts (e g. benzene sulfonate salt) are of course withm the scope of the present invention.
Optionally, the one-pot conversion is effected by heating with a reagent mixture comprising ammonium nitrate.
Optionally, the reagent mixture comprises at least 2 equivalents of ammonium nitrate with respect to the tetrahydronaphthalic anhydride.
Optionally, the reagent mixture comprises urea.
Optionally, the reagent mixture comprises at least one further ammonium salt. Optionally, the further ammonium salt is selected from ammonium sulfate and ammonium benzenesulfonate
Optionally, the reagent mixture comprises a catalytic amount of ammonium molybdate.
Optionally, the heating is withm a temperature range of 150 to 2000C.
The reaction may be performed m the presence of or in the absence of a solvent. Optionally, heating is in the presence of an aromatic solvent. Examples of suitable solvents are nitrobenzene, biphenyl, diphenyl ether, mesitylene, anisole, phenetole, dichlorobenzene, tπchlorobenzene and mixtures thereof
Optionally, the benzisoindolenine is liberated from the benzisoindolenine salt using a base. Sodium methoxide is an example of a suitable base although the skilled person will be readily aware of other suitable bases.
Optionally, the benzisoindolenine is of formula (II): wherein:
Ri, R2, R3 and R4 are each independently selected from hydrogen, hydroxyl, C 1-20 alkyl, Ci-20 alkoxy, amino, Ci_2o alkylamino, di(Ci.2o alkyl)amino, halogen, cyano, thiol, Ci.2o alkylthio, nitro, Ci-20 alkylcarboxy, Ci-20 alkylcarbonyl, Ci_2o alkoxycarbonyl, Ci-20 alkylcarbonyloxy, Ci-20 alkylcarbonylamino, C5.2o aryl, C5.20 arylalkyl, C5.20 aryloxy, C5.20 arylalkoxy, C5.20 heteroaryl, C5.20 heteroaryloxy, C5.20 heteroarylalkoxy or C5.20 heteroarylalkyl. Optionally, the naphthalocyanine is of formula (III):
wherein:
Ri, R2, R3, R4, R5, Re, R-7, Re. R9. Rio. Rib Ri2) R13. R-i4> R15 and R-16 are each independently selected from hydrogen, hydroxyl, C 1-20 alkyl, Ci-20 alkoxy, amino, C 1-20 alkylamino, di(C 1.20 alkyl) amino, halogen, cyano, thiol, Ci-2O alkylthio, nitro, Ci-20 alkylcarboxy, C i.2O alkylcarbonyl, C1.20 alkoxycarbonyl, C1.20 alkylcarbonyloxy, C1.20 alkylcarbonylamino, C5.20 aryl, C5.20 arylalkyl, C5.20 aryloxy, C5 20 arylalkoxy, C5 20 heteroaryl, C5 20 heteroaryloxy, C5 20 heteroarylalkoxy or C5 20 heteroarylalkyl;
M is absent or selected from Si(A1XA2), Ge(A1XA2), Ga(A1), Mg, Al(A1), TiO, Ti(A1XA2), ZrO,
Zr(A1XA2), VO, V(A1XA2), Mn, Mn(A1), Fe, Fe(A1), Co, Ni, Cu, Zn, Sn, Sn(A1XA2), Pb,
Pb(A1XA2), Pd and Pt; A1 and A2 are axial ligands, which may be the same or different, and are selected from -OH, halogen or -ORq;
Rq is selected from Ci i6 alkyl, C5 20 aryl, C5 20 arylalkyl, Ci 20 alkylcarbonyl, Ci 2o alkoxycarbonyl or Si(Rx)(Ry)(Rz); and Rx, Ry and Rz may be the same or different and are selected from Ci 20 alkyl, C5 20 aryl, C5 20 arylalkyl, Ci 2o alkoxy, C5 2o aryloxy or C5 2o arylalkoxy;
Optionally, R1, R2, R3, R4, R5, R6, R7, R8, R9, Ri0, Rn, Ri2, Ri3, Ri4, Ri5 and Ri6 are all hydrogen.
Optionally, M is Ga(A1), such as Ga(OCH2CH2OCH2CH2OCH2CH2OMe); that is where Rq is CH2CH2OCH2CH2OCH2CH2OMe. For the avoidance of doubt, ethers such as
CH2CH2OCH2CH2OCH2CH2OMe fall within the definition of alkyl groups as specified herembelow Gallium compounds are preferred since they have excellent lightfastness, strong absorption in the near-IR region, and are virtually invisible to the human eye when printed on a page Optionally, step (iii) comprises heating the benzisoindolenine in the presence of a metal compound, such as AlCl3 or GaCl3 or a corresponding metal alkoxide The reaction may be performed in the absence of or in the presence of a suitable solvent, such as toluene, nitrobenzene etc. When a metal alkoxide is used, the reaction may be catalyzed with a suitable base, such as sodium methoxide Alcohols, such as triethylene glycol monomethyl ether or glycol may also be present to assist with naphthalocyanine formation. These alcohols may end up as the axial ligand of the naphthalocyanine or they may be cleaved from the metal under the reaction conditions. The skilled person will readily be able to optimize the conditions for naphthalocyanine formation from the benzisoindolenine
Optionally, the method further comprises the step of sulfonating said naphthalocyanine. Sulfonate groups are useful for solubilizmg the naphthalocyanines in ink formulations, as described in our earlier US Patents Nos. 7,148,345 and 7,122,076.
In a second aspect, there is provided a method of effecting a one-pot conversion of a tetrahydronaphthalic anhydride to a benzisoindolenine salt, said method comprising heating said tetrahydronaphthalic anhydride with a reagent mixture comprising ammonium nitrate. This transformation advantageously obviates a separate dehydrogenation step to form the naphthalene ring system. The ammonium nitrate performs the dual functions of oxidation
(dehydrogenation) and isomdolenme formation.
The isomdolenme salts generated according to the second aspect may be used in the synthesis of naphthalocyanines. Hence, this key reaction provides a significant improvement in routes to naphthalocyanines.
In general, optional features of this second aspect mirror the optional features described above in respect of the first aspect. In a third aspect, there is provided a method of preparing a sultine of formula (V) from a dihalogeno compound of formula (IV)
the method comprising reacting the dihalogeno compound (IV) with a hydroxymethanesulfinate salt in a DMSO solvent so as to prepare the sultine (V); wherein:
Ri, R2, R3 and R4 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 20 alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl) amino, halogen, cyano, thiol, Ci 2o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl, Ci 20 alkylcarbonyloxy, Ci 20 alkylcarbonylamino, C5 20 aryl, C5 20 arylalkyl, C5 20 aryloxy, C5 20 arylalkoxy, C5 20 heteroaryl, C5 20 heteroaryloxy, C5 20 heteroarylalkoxy or C5 20 heteroarylalkyl; and X is Cl, Br or I.
The method according to the third aspect surprisingly minimizes polymeric by-products and improves yields, when compared to literature methods for this reaction employing DMF as the solvent These advantages are amplified when the reaction is performed on a large scale (e g at least 0 3 molar, at least 0 4 molar or at least 0 5 molar scale)
Optionally, NaI is used to catalyze the coupling reactions when X is Cl or Br
Optionally, a metal carbonate base (e.g. Na2CO3, K2CO3, Cs2CO3 etc) is present.
Optionally, the hydroxymethanesulfinate salt is sodium hydroxymethanesulfinate (Rongalite™).
Optionally, Ri, R2, R3 and R4 are all hydrogen.
Optionally, the method comprises the further step of reacting the sultine (V) with an olefin at elevated temperature (e.g. about 8O0C) to generate a Diels- Alder adduct.
Optionally, the olefin is maleic anhydride and said Diels-Alder adduct is a tetrahydronaphthalic anhydride.
Optionally, the tetrahydronaphthalic anhydride is used as a precursor for naphthalocyanme synthesis, as described herein
Optionally, the naphthalocyanine synthesis proceeds via conversion of the tetrahydronaphthalic anhydride to a benzisoindolenine, as described herein.
Brief Description of the Drawings
The invention will now be described in detail with reference to the following drawings, in which: Figure 1 is a 1H NMR spectrum of the crude sultme 10 in J6-DMSO,
Figure 2 is a 1H NMR spectrum of the anhydride 8 in J6-DMSO,
Figure 3 is a 1H NMR spectrum of the crude benzisoindolenine salt 12 in J6-DMSO,
Figure 4 is an expansion of the aromatic region of the 1H NMR spectrum shown in Figure
3,
Figure 5 is a 1H NMR spectrum of the benzisoindolenine 7 m J6-DMSO.
Figure 6 is an expansion of the aromatic region of the 1H NMR spectrum shown in Figure
5; and
Figure 7 is a UV-VIS spectrum of naphthalocyanatogallium methoxytriethyleneoxide in NMP
Detailed Description
As an alternative to dicarbonitπles, the general class of phthalocyanines is known to be prepared from isoindolenines. In US 7,148,345, we proposed the benzisoindolenine 5 as a possible precursor to naphthalocyanmes.
However, efficient syntheses of the benzisoindolenine 5 were unknown in the literature, and it was hitherto understood that dicarbonitriles, such as naphthalene-2,3-dicarbonitrile 2, were the only viable route to naphthalocyanines
Nevertheless, with the potentially prohibitive cost of naphthalene-2,3-dicarbonitrile 2, the present inventors sought to explore a new route to the benzisoindolenine 5, as outlined m Scheme 2
Scheme 2
Tetrahydronaphthalic anhydride 6 was an attractive starting point, because this is a known Diels-Alder adduct which may be synthesized via the route shown in Scheme 3 Scheme 3
Referring to Scheme 2, it was hoped that the conversion of naphthalic anhydride 7 to the benzisoindolenine 5 would proceed analogously to the known conversion of phthalic anhydride to the isomdolenme 8, as described in WO98/31667.
However, a number of problems remained with the route outlined in Scheme 2. Firstly, the dehydrogenation of tetrahydronaphthalic anhydride 6 typically requires high temperature catalysis Under these conditions, tetrahydronaphthalic anhydride 6 readily sublimes resulting in very poor yields. Secondly, the preparation of tetrahydronaphthalic anhydride 6 on a large scale was not known. Whilst a number of small-scale routes to this compound were known in the literature, these generally suffered either from poor yields or scalability problems.
The use of sultmes as diene precursors is well known and l,4-dihydro-2,3-benzoxathim-3- oxide 10 has been used in a synthesis of 6 on a small scale (Hoey, M D.; Dittmer, D. A. J. Org. Chem. 1991, 56, 1947-1948). As shown in Scheme 4, this route commences with the relatively inexpensive dichloro-o-xylene 11 , but the feasibility of scaling up this reaction sequence is limited by the formation of undesirable polymeric by-products in the sultme-formmg step The formation of these by-products makes reproducible production of 6 in high purity and high yield difficult
Scheme 4
Nevertheless, the route outlined in Scheme 4 is potentially attractive from a cost standpoint, since dichloro-o -xylene 11 and maleic anhydride are both inexpensive materials. Whilst the reaction sequence shown in Schemes 4 and 2 present significant synthetic challenges, the present inventors have surprisingly found that, using modified reaction conditions, the benzisoindolenine 5 can be generated on a large scale and in high yield. Hence, the present invention enables the production of naphthalocyanines from inexpensive starting materials, and represents a significant cost improvement over known syntheses, which start from naphthalene-2,3- dicarbonitπle 2 Referring to Scheme 5, there is shown a route to the benzisoindolenine 5, which incorporates two synthetic improvements in accordance with the present invention
θ4
Scheme 5
Unexpectedly, it was found that by using DMSO as the reaction solvent in the conversion of 11 into 10, the reaction rate and selectivity for the formation of sultine 10 increases significantly This is in contrast to known conditions (Hoey, M D ; Dittmer, D. A. / Org. Chem 1991, 56, 1947-1948) employing DMF as the solvent, where the formation of undesirable polymeric side- products is a major problem, especially on a large scale. Accordingly, the present invention provides a significant improvement in the synthesis of tetrahydronaphthalic anhydride 6.
The present invention also provides a significant improvement in the conversion of tetrahydronaphthalic anhydride 6 to the benzisoindolenine 5. Surprisingly, it was found that the ammonium nitrate used for this step readily effects oxidation of the saturated ring system as well as converting the anhydride to the isoindolenine. Conversion to a tetrahydroisomdolenme was expected to proceed smoothly, in accordance with the isoindolenine similar systems described m WO98/31667. However, concomitant dehydrogenation under these reaction conditions advantageously provided a direct one-pot route from the tetrahydronaphthalic anhydride 6 to the benzisoindolenine salt 12. This avoids problematic and low-yieldmg dehydrogenation of the tetrahydronaphthalic anhydride 6 in a separate step Subsequent treatment of the salt 12 with a suitable base, such as sodium methoxide, liberates the benzisoindolenine 5. As a result of these improvements, the entire reaction sequence from 11 to 5 is very conveniently carried out, and employs inexpensive starting materials and reagents (Scheme 5)
The benzisoindolenine 5 may be converted into any required naphthalocyanine using known conditions. For example, the preparation of a gallium naphthalocyanine from benzisoindolenine 5 is exemplified herein Subsequent manipulation of the naphthalocyanine macrocycle may also be performed in accordance with known protocols For example, sulfonation may be performed using oleum, as described in US Patent Nos 7,148,345 and 7,122,076
Hitherto, the use of tetrahydronaphthalic anhydride 6 as a building block for naphthalocyanine synthesis had not previously been reported However, it has now been shown that tetrahydronaphthalic anhydride 6 is a viable intermediate in the synthesis of these important compounds. Moreover, it is understood by the present inventors that the route shown in Scheme 5 represents the most cost-effective synthesis of benzisoindolenines 5
The term "aryl" is used herein to refer to an aromatic group, such as phenyl, naphthyl or triptycenyl Ce n aryl, for example, refers to an aromatic group having from 6 to 12 carbon atoms, excluding any substituents. The term "arylene", of course, refers to divalent groups corresponding to the monovalent aryl groups described above Any reference to aryl implicitly includes arylene, where appropriate.
The term "heteroaryl" refers to an aryl group, where 1, 2, 3 or 4 carbon atoms are replaced by a heteroatom selected from N, O or S Examples of heteroaryl (or heteroaromatic) groups include pyridyl, benzimidazolyl, mdazolyl, qumolinyl, isoquinolinyl, indolinyl, isoindolinyl, mdolyl, isoindolyl, furanyl, thiophenyl, pyrrolyl, thiazolyl, imidazolyl, oxazolyl, isoxazolyl, pyrazolyl, isoxazolonyl, piperazinyl, pyrimidinyl, piperidinyl, morpholinyl, pyrrolidinyl, isothiazolyl, triazolyl, oxadiazolyl, thiadiazolyl, pyridyl, pyrimidinyl, benzopyrimidinyl, benzotriazole, quinoxalinyl, pyridazyl, coumarinyl etc. The term "heteroarylene", of course, refers to divalent groups corresponding to the monovalent heteroaryl groups described above. Any reference to heteroaryl implicitly includes heteroarylene, where appropriate.
Unless specifically stated otherwise, aryl and heteroaryl groups may be optionally substituted with 1, 2, 3, 4 or 5 of the substituents described below.
Where reference is made to optionally substituted groups {e.g. in connection with aryl groups or heteroaryl groups), the optional substituent(s) are independently selected from Ci-8 alkyl, Ci-8 alkoxy, -(OCH2CH2)dORd (wherein d is an integer from 2 to 5000 and Rd is H, Ci-8 alkyl or C(O)Ci-S alkyl), cyano, halogen, amino, hydroxyl, thiol, -SRV, -NR11R", nitro, phenyl, phenoxy, -CO2R", -C(O)R", -OCOR", -SO2R", -OSO2R", -SO2OR", -NHC(O)R", -CONR11R", -CONR11R", -SO2NR11R", wherein R" and R" are independently selected from hydrogen, Ci-2O alkyl, phenyl or phenyl-Ci-8 alkyl (e.g. benzyl). Where, for example, a group contains more than one substituent, different substituents can have different R" or R" groups.
The term "alkyl" is used herein to refer to alkyl groups in both straight and branched forms. Unless stated otherwise, the alkyl group may be interrupted with f, 2, 3 or 4 heteroatoms selected from O, NH or S. Unless stated otherwise, the alkyl group may also be interrupted with 1, 2 or 3 double and/or triple bonds. However, the term "alkyl" usually refers to alkyl groups having double or triple bond interruptions. Where "alkenyl" groups are specifically mentioned, this is not intended to be construed as a limitation on the definition of "alkyl" above.
Where reference is made to, for example, Ci-2O alkyl, it is meant the alkyl group may contain any number of carbon atoms between 1 and 20. Unless specifically stated otherwise, any reference to "alkyl" means Ci-20 alkyl, preferably Cu2 alkyl or Ci_6 alkyl. The term "alkyl" also includes cycloalkyl groups. As used herein, the term "cycloalkyl" includes cycloalkyl, polycycloalkyl, and cycloalkenyl groups, as well as combinations of these with linear alkyl groups, such as cycloalkylalkyl groups. The cycloalkyl group may be interrupted with 1, 2 or 3 heteroatoms selected from O, N or S. However, the term "cycloalkyl" usually refers to cycloalkyl groups having no heteroatom interruptions. Examples of cycloalkyl groups include cyclopentyl, cyclohexyl, cyclohexenyl, cyclohexylmethyl and adamantyl groups.
The term "arylalkyl" refers to groups such as benzyl, phenylethyl and naphthylmethyl.
The term "halogen" or "halo" is used herein to refer to any of fluorine, chlorine, bromine and iodine. Usually, however, halogen refers to chlorine or fluorine substituents.
Where reference is made herein to "a naphthalocyanine", "a benzisoindolenine", "a tetrahydronaphthalic anhydride" etc, this is understood to be a reference to the general class of compounds embodied by these generic names, and is not intended to refer to any one specific compound. References to specific compounds are accompanied with a reference numeral. Chiral compounds described herein have not been given stereo-descriptors. However, when compounds may exist in stereoisomeric forms, then all possible stereoisomers and mixtures thereof are included (e.g. enantiomers, diastereomers and all combinations including racemic mixtures etc.) Likewise, when compounds may exist in a number of regioisomeric or tautomeric forms, then all possible regioisomers, tautomers and mixtures thereof are included.
For the avoidance of doubt, the term "a" (or "an"), in phrases such as "comprising a", means "at least one" and not "one and only one". Where the term "at least one" is specifically used, this should not be construed as having a limitation on the definition of "a" Throughout the specification, the term "comprising", or variations such as "comprise" or
"comprises", should be construed as including a stated element, integer or step, but not excluding any other element, integer or step.
The invention will now be described with reference to the following drawings and examples. However, it will of course be appreciated that this invention may be embodied in many other forms without departing from the scope of the invention, as defined in the accompanying claims
Example 1
l,4-dιhydro-2,3-benzoxathun-3-oxιde 10
Sodium hydroxymethanesulfinate (Rongalite™) (180 g; 1 17 mol) was suspended in DMSO (400 mL) and left to stir for 10 mm. before dichloro-o-xylene (102.5 g; 0.59 mol), potassium carbonate (121.4 g; 0.88 mol) and sodium iodide (1.1 g; 7 mmol) were added consecutively More DMSO (112 mL) was used to rinse residual materials into the reaction mixture before the whole was allowed to stir at room temperature. The initial endothermic reaction became mildly exothermic after around 1 h causing the internal temperature to rise to ca. 32-33 0C. The reaction was followed by TLC (ethyl acetate/hexane, 50:50) and found to be complete after 3 h. The reaction mixture was diluted with methanol/ethyl acetate (20:80; 400 mL) and the solids were filtered off, and washed with more methanol/ethyl acetate (20:80; 100 mL, 2 x 50 mL). The filtrate was transferred to a separating funnel and brine (1 L) was added. This caused more sodium chloride from the product mixture to precipitate out. The addition of water (200 mL) redissolved the sodium chloride The mixture was shaken and the organic layer was separated and then the aqueous layer was extracted further with methanol/ethyl acetate (20:80, 200 mL, 150 mL, 250 mL). The combined extracts were dried (Na2SOzO and rotary evaporated (bath 37-38 0C). More solvent was removed under high vacuum to give the sultine 10 as a pale orange liquid (126 g) that was found by 1H NMR spectroscopy to be relatively free of by-product but containing residual DMSO and ethyl acetate (Figure 1). Example 2
Tetrahydronaphthalic anhydride 6
The crude sultine from above (126 g) was diluted in trifluoro toluene (100 mL) and then added to a preheated (bath 80 0C) suspension of maleic anhydride (86 g; 0 88 mol) in trifluorotoluene (450 mL) The residual sultine was washed with more trifluorotoluene into the reaction mixture and then the final volume was made up to 970 mL. The reaction mixture was heated at 80 0C for 15 h, more maleic anhydride (28.7 g; 0.29 mol) was added and then heating was continued for a further 8 h until TLC showed that the sultine had been consumed While still at 80 0C, the solvent was removed by evaporation with a water aspirator and then the residual solvent was removed under high vacuum. The moist solid was triturated with methanol (200 mL) and filtered off, washing with more methanol (3 x 100 mL). The tetrahydronaphthalic anhydride 6 was obtained as a fine white crystalline solid (75.4 g; 64% from 10) after drying under high vacuum at 60-70 0C for 4 h
Example 3 The sultine was prepared from dichloro-o-xylene (31.9 g; 0.182 mol), as described in Example 2, and then reacted with maleic anhydride (26 8 g; 0.273 mol) in toluene (300 mL total volume) as described above. This afforded the tetrahydronaphthalc anhydride 6 as a white crystalline solid
(23 5 g; 64%).
Example 4 l-amιno-3-iminobenz[f]isoιndolenιne nitrate salt 12
Urea (467 g; 7.78 mol) was added to a mechanically stirred mixture of ammonium sulfate (38.6 g, 0 29 mol), ammonium molybdate (1.8 g) and nitrobenzene (75 mL). The whole was heated with a heating mantle to ca 130 0C (internal temperature) for 1 h causing the urea to melt At this point the anhydride 6 (98.4 g; 0.49 mol) was added all at once as a solid. After 15 min ammonium nitrate (126.4 g, 1.58 mol) was added with stirring (internal temperature 140 0C) accompanied by substantial gas evolution The reaction temperature was increased to 170-175 0C over 45 min and held there for 2 h 20 min. The viscous brown mixture was allowed to cool to ca 100 0C and then methanol (400 mL) was slowly introduced while stirring. The resulting suspension was poured on a sintered glass funnel, using more methanol (100 mL) to rinse out the reaction flask After removing most of the methanol by gravity filtration, the brown solid was sucked dry and then washed with more methanol (3 x 200 mL, 50 mL), air-dπed overnight and dried under high vacuum in a warm water bath for 1.5 h. The benzisoindolenme salt 12 was obtained as a fine brown powder (154.6 g) and was found by NMR analysis to contain urea (5.43 ppm) and other salts (6.80 ppm). This material was used directly in the next step without further purification.
Example 5 l-amιno-3-ιmιnobenz[f]ιsoιndolenιne 7 The crude nitrate salt 12 (154.6 g) was suspended in acetone (400 mL) with cooling m an ice/water bath to 0 0C Sodium methoxide (25% in methanol; 284 ml; 1 3 mol) was added slowly dropwise via a dropping funnel at such a rate as to maintain an internal temperature of 0-5 0C Upon completion of the addition, the reaction mixture was poured into cold water (2 x 2 L) in two 2 L conical flasks The mixtures were then filtered on sintered glass funnels and the solids were washed thoroughly with water (250 mL; 200 mL for each funnel). The fine brown solids were air- dried over 2 days and then further dried under high vacuum to give the benzisoindolenine 5 as a fine brown powder (69 1 g; 73%).
Example 6
Naphthalocyanatogallium methoxytnethyleneoxide
RI - CH2CH2OCH2CH2OCH2CH2OMe
Gallium chloride (15.7 g; 0.089 mol) was dissolved in anhydrous toluene (230 mL) in a 3-neck flask (1 L) equipped with a mechanical stirrer, heating mantle, thermometer, and distillation outlet The resulting solution was cooled in an ice/water bath to 10 °C and then sodium methoxide in methanol (25%; 63 mL) was added slowly with stirring such that the internal temperature was maintained below 25 0C thereby affording a white precipitate. The mixture was then treated with triethylene glycol monomethyl ether (TEGMME, 190 mL) and then the whole was heated to distill off all the methanol and toluene (3 h). The mixture was then cooled to 90-100 0C (internal temperature) by removing the heating mantle and then the benzisoindolenine 5 from the previous step (69.0 g; 0.35 mol) was added all at once as a solid with the last traces being washed into the reaction vessel with diethyl ether (30 mL) The reaction mixture was then placed in the preheated heating mantle such that an internal temperature of 170 0C was established after 20 min. Stirring was then continued at 175-180 0C for a further 3 h during which time a dark green/brown colour appeared and the evolution of ammonia took place The reaction mixture was allowed to cool to ca 100 0C before diluting with DMF (100 mL) and filtering through a sintered glass funnel under gravity overnight The moist filter cake was sucked dry and washed consecutively with DMF (80 mL), acetone (2 x 100 mL), water (2 x 100 mL), DMF (50 mL), acetone (2 x 50 mL; 100 mL) and diethyl ether (100 mL) with suction. After brief air drying, the product was dried under high vacuum at 60-70 0C to constant weight. Naphthalocyanatogallium methoxytriethyleneoxide was obtained as a microcrystalline dark blue/green solid (60.7 g; 76%); X1n^x (NMP) 771 nm (Figure 7).

Claims

1 A method of preparing a naphthalocyanme comprising the steps of.
(i) providing a tetrahydronaphthalic anhydride, (ii) converting said tetrahydronaphthalic anhydride to a benzisoindolenine, and
(iii) macrocyclizing said benzisoindolenine to form a naphthalocyanine.
2 The method of claim 1, wherein said tetrahydronaphthalic anhydride is of formula (I):
wherein:
Ri, R2, R3 and R4 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 2o alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl) amino, halogen, cyano, thiol, Ci 2o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl, Ci 20 alkylcarbonyloxy, Ci 20 alkylcarbonylammo, C5 20 aryl, C5 20 arylalkyl, C5 20 aryloxy, C5 20 arylalkoxy, C5 20 heteroaryl, C5 20 heteroaryloxy, C5 2o heteroarylalkoxy or C5 2o heteroarylalkyl.
3 The method of claim 2, wherein Ri, R2, R3 and R4 are all hydrogen.
4 The method of claim 1, wherein step (ii) comprises a one-pot conversion from the tetrahydronaphthalic anhydride to a benzisoindolenine salt.
5 The method of claim 4, wherein said salt is a nitrate salt.
6 The method of claim 4, wherein said one-pot conversion is effected by heating with a reagent mixture comprising ammonium nitrate
7 The method of claim 6, wherein said reagent mixture comprises at least 2 equivalents of ammonium nitrate with respect to said tetrahydronaphthalic anhydride.
8 The method of claim 6, wherein said reagent mixture comprises urea.
9 The method of claim 6, wherein said reagent mixture comprises at least one further ammonium salt.
10. The method of claim 9, wherein said at least one further ammonium salt is selected from: ammonium sulfate and ammonium benzenesulfonate
11. The method of claim 6, wherein said reagent mixture comprises a catalytic amount of ammonium molybdate.
12. The method of claim 6, wherein said heating is within a temperature range of 150 to
2000C.
13. The method of claim 12, wherein said heating is in the presence of solvent selected from the group comprising: nitrobenzene, diphenyl, diphenyl ether, mesitylene, anisole, phenetole, dichlorobenzene, trichlorobenzene and mixtures thereof.
14. The method of claim 4, wherein the benzisoindolenine is liberated from the benzisoindolenine salt using a base.
15. The method of claim 1, wherein said benzisoindolenine is of formula (II):
wherein:
Ri, R2, R3 and R4 are each independently selected from hydrogen, hydroxyl, Ci-2O alkyl, Ci-20 alkoxy, amino, Ci-20 alkylamino, di(Ci-2o alkyl)amino, halogen, cyano, thiol, Ci-2o alkylthio, nitro, Ci 20 alkylcarboxy, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl, Ci 20 alkylcarbonyloxy, Ci 20 alkylcarbonylamino, C5_2o aryl, C5_2o arylalkyl, C5_2o aryloxy, C5_2o arylalkoxy, C5_2o heteroaryl, C5_2o heteroaryloxy, C5.20 heteroarylalkoxy or C5.20 heteroarylalkyl.
16. The method of claim 1, wherein said naphthalocyanine is of formula (III):
wherein:
Ri, R2, R3, R4, Rs, R6, R7, Re, R9, Rio, Rn, R12, Ri3, R14, R15 and Ri6 are each independently selected from hydrogen, hydroxyl, Ci 20 alkyl, Ci 20 alkoxy, amino, Ci 20 alkylamino, di(Ci 20 alkyl)amino, halogen, cyano, thiol, Ci 20 alkylthio, nitro, Ci 20 alkylcarboxy, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl, Ci 20 alkylcarbonyloxy, Ci 20 alkylcarbonylamino, C5 20 aryl, C5 20 arylalkyl, C5 20 aryloxy, C5 20 arylalkoxy, C5 2oheteroaryl, C5 2oheteroaryloxy, C5 20 heteroarylalkoxy or C5 20 heteroarylalkyl;
M is absent or selected from Si(A1XA2), Ge(A1XA2), Ga(A1), Mg, Al(A1), TiO, Ti(A1XA2), ZrO, Zr(A1XA2), VO, V(A1XA2), Mn, Mn(A1), Fe, Fe(A1), Co, Ni, Cu, Zn, Sn, Sn(A1XA2), Pb,
Pb(A1XA2), Pd and Pt;
A1 and A2 are axial ligands, which may be the same or different, and are selected from -OH, halogen or -ORq;
Rq is selected from Ci i6 alkyl, C5 20 aryl, C5 20 arylalkyl, Ci 20 alkylcarbonyl, Ci 20 alkoxycarbonyl or Si(Rx)(Ry)(Rz), and
Rx, Ry and Rz may be the same or different and are selected from Ci 20 alkyl, C5 20 aryl, C5 20 arylalkyl, Ci 20 alkoxy, C5 20 aryloxy or C520 arylalkoxy;
17. The method of claim 16, wherein Ri, R2, R3, R4, R5, R6, R7, R8, R9, Rio, Rn, R12, R13, Ri4, Ri5 and Ri6 are all hydrogen.
18. The method of claim 16, wherein M is Ga(A1)
19. The method of claim 1, wherein step (iii) comprises heating said benzisoindolenine in the presence of a metal compound
20. The method of claim 1, wherein said method further comprises the step of: (iv) sulfonating said naphthalocyanine.
EP07763794A 2007-08-01 2007-08-01 Method of preparing naphthalocyanines Withdrawn EP2173815A4 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/AU2007/001067 WO2009015407A1 (en) 2007-08-01 2007-08-01 Method of preparing naphthalocyanines

Publications (2)

Publication Number Publication Date
EP2173815A1 true EP2173815A1 (en) 2010-04-14
EP2173815A4 EP2173815A4 (en) 2011-03-02

Family

ID=40303787

Family Applications (1)

Application Number Title Priority Date Filing Date
EP07763794A Withdrawn EP2173815A4 (en) 2007-08-01 2007-08-01 Method of preparing naphthalocyanines

Country Status (6)

Country Link
EP (1) EP2173815A4 (en)
JP (1) JP2010533653A (en)
KR (1) KR20100057779A (en)
AU (1) AU2007357071B2 (en)
CA (1) CA2687907A1 (en)
WO (1) WO2009015407A1 (en)

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015169701A1 (en) * 2014-05-05 2015-11-12 Basf Se Ga-naphthalocyanine chromophores with short chain alkoxy axial substituents
WO2016193237A1 (en) * 2015-06-02 2016-12-08 Basf Se Naphthalocyanine derivatives
WO2022056886A1 (en) * 2020-09-19 2022-03-24 Huawei Technologies Co., Ltd. Organic electroluminescent display

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5241288B1 (en) * 1970-07-22 1977-10-18
JP2727826B2 (en) * 1991-11-01 1998-03-18 日立化成工業株式会社 Environment-resistant naphthalocyanine composition and optical recording medium using the same
US6238931B1 (en) * 1993-09-24 2001-05-29 Biosite Diagnostics, Inc. Fluorescence energy transfer in particles
DE69613825T2 (en) * 1995-03-23 2002-04-11 Biosite Diagnostics Inc., San Diego HYBRID PHTALOCYANINE DERIVATIVES AND THEIR USE
JPH1059974A (en) * 1996-08-21 1998-03-03 Yamamoto Chem Inc Method for producing phthalocyanine compound

Non-Patent Citations (3)

* Cited by examiner, † Cited by third party
Title
J.L.CHARLTON ET AL.: "Orthoquinodimethanes", TETRAHEDRON, vol. 43, no. 13, 1987, pages 2873-2889, XP002617316, *
MCKEOWN N B: "PRODUCT CLASS 9: PHTHALOCYANINES AND RELATED COMPOUNDS", SCIENCE OF SYNTHESIS, THIEME VERLAG, STUTTGART, DE, vol. 17, 1 January 2004 (2004-01-01), pages 1237-1368, XP009050738, *
See also references of WO2009015407A1 *

Also Published As

Publication number Publication date
KR20100057779A (en) 2010-06-01
WO2009015407A1 (en) 2009-02-05
CA2687907A1 (en) 2009-02-05
AU2007357071A1 (en) 2009-02-05
AU2007357071B2 (en) 2011-04-21
EP2173815A4 (en) 2011-03-02
JP2010533653A (en) 2010-10-28

Similar Documents

Publication Publication Date Title
US8119820B2 (en) Method of preparing sultines
EP0679693B1 (en) Processes for the preparation of alkoxy-bridged metallophthalocyanine dimers
US7772409B2 (en) Method of preparing sultines
EP0860475B1 (en) Synthesis of bis(Phthalocyanylalumino)tetraphenyldisiloxanes
AU2007357071B2 (en) Method of preparing naphthalocyanines
JP4962812B2 (en) Phthalocyanine compound and method for producing the same, and coloring composition containing the phthalocyanine compound
US7825262B2 (en) One-pot preparation of a benzoisoindolenine salt from a tetrahydronaphthalic anhydride
Dehe et al. Novel pyrazole functionalized phthalocyanines and their first row transition metal complexes
SG174075A1 (en) Method of preparing naphthalocyanines
EP0834325B1 (en) Process for preparing metallophthalocyanine
WO2009034169A1 (en) Processes for the preparation of the alpha crystal polymorph of metal phthalocyanines
CN113549083B (en) Phthalocyanine compound, preparation method thereof and optical filter
JP3806155B2 (en) Preparation of metal-free phthalocyanine
JPH07330729A (en) Method for producing 1,3-diiminoisoindoline derivative
JP4567837B2 (en) Method for producing dioxazine compound
JP2005145896A (en) Method for producing metal phthalocyanine
JP3865426B2 (en) Method for producing clear copper phthalocyanine pigment
JP4057080B2 (en) Method for producing metal phthalocyanine compound
CN103781856B (en) Phthalocyanine Synthesis
JP2025154923A (en) Method for producing phthalocyanine compound
JP2003105220A (en) Method for producing quinacridones
KR19980064160A (en) Process for preparing metal-free phthalocyanine while controlling the metal-free phthalocyanine polymorph to be formed
JP2004026693A (en) Method for producing phthalocyanines
JP2002114924A (en) Method for producing metal halide phthalocyanine

Legal Events

Date Code Title Description
PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

Free format text: ORIGINAL CODE: 0009012

17P Request for examination filed

Effective date: 20100111

AK Designated contracting states

Kind code of ref document: A1

Designated state(s): AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IS IT LI LT LU LV MC MT NL PL PT RO SE SI SK TR

AX Request for extension of the european patent

Extension state: AL BA HR MK RS

RIN1 Information on inventor provided before grant (corrected)

Inventor name: SILVERBROOK, KIA

Inventor name: RIDLEY, DAMON, DONALD

Inventor name: VONWILLER, SIMONE, CHARLOTTE

Inventor name: INDUSEGARAM, SUTHARSINY

RIN1 Information on inventor provided before grant (corrected)

Inventor name: SILVERBROOK, KIA

Inventor name: RIDLEY, DAMON, DONALD

Inventor name: VONWILLER, SIMONE, CHARLOTTE

Inventor name: INDUSEGARAM, SUTHARSINY

DAX Request for extension of the european patent (deleted)
A4 Supplementary search report drawn up and despatched

Effective date: 20110202

RIC1 Information provided on ipc code assigned before grant

Ipc: C09B 47/073 20060101ALI20110125BHEP

Ipc: C07D 307/92 20060101ALI20110125BHEP

Ipc: C07D 209/68 20060101ALI20110125BHEP

Ipc: C09B 47/00 20060101AFI20090220BHEP

GRAP Despatch of communication of intention to grant a patent

Free format text: ORIGINAL CODE: EPIDOSNIGR1

RIC1 Information provided on ipc code assigned before grant

Ipc: C09B 47/073 20060101ALI20120201BHEP

Ipc: C07D 307/92 20060101ALI20120201BHEP

Ipc: C07D 209/68 20060101ALI20120201BHEP

Ipc: C09B 47/00 20060101AFI20120201BHEP

STAA Information on the status of an ep patent application or granted ep patent

Free format text: STATUS: THE APPLICATION IS DEEMED TO BE WITHDRAWN

18D Application deemed to be withdrawn

Effective date: 20120706