WO2010053847A2 - Molecular and biomolecular functionalization of metal oxides - Google Patents

Molecular and biomolecular functionalization of metal oxides Download PDF

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WO2010053847A2
WO2010053847A2 PCT/US2009/062845 US2009062845W WO2010053847A2 WO 2010053847 A2 WO2010053847 A2 WO 2010053847A2 US 2009062845 W US2009062845 W US 2009062845W WO 2010053847 A2 WO2010053847 A2 WO 2010053847A2
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metal oxide
functional group
group
linker
functionalized
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WO2010053847A3 (en
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Robert J. Hamers
Bo Li
Elizabeth C. Landis
Ryan A. Franking
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Wisconsin Alumni Research Foundation
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Wisconsin Alumni Research Foundation
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F7/00Compounds containing elements of Groups 4 or 14 of the Periodic Table
    • C07F7/28Titanium compounds
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F3/00Compounds containing elements of Groups 2 or 12 of the Periodic Table
    • C07F3/06Zinc compounds
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07FACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
    • C07F7/00Compounds containing elements of Groups 4 or 14 of the Periodic Table
    • C07F7/003Compounds containing elements of Groups 4 or 14 of the Periodic Table without C-Metal linkages
    • 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

Definitions

  • the present invention relates to methods for functionalizing metal oxides with organic molecules using UV light.
  • the resulting functionalized metal oxides may be used alone or as coatings on substrates.
  • the functionalized metal oxides are well-suited for use in biosensors and dye sensitized solar cells.
  • Biosensors are designed to determine the presence of biomolecules and are often used in biotechnology industries to perform rapid biochemical analysis. These biosensors are adapted to detect and/or quantify various analytes based on known interactions between the analytes and other biomolecules immobilized on a substrate, such as glass.
  • Organosilane chemistry is a typical method used to attach biomolecules to glass. Unfortunately, these and other methods used to immobilize biomolecules on glass substrates suffer from irreproducibility and instability, resulting in increased manufacturing costs and short shelf life.
  • Oxide materials are often used in energy conversion devices.
  • the bonding of molecules such as dye molecules to the surface of TiO 2 provides a way to modify the optical properties and enhance the performance of some energy conversion devices, such as dye-sensitized solar cells.
  • These surface molecular layers play an important role in controlling the electrical properties of TiO 2 and other oxide materials. These layers are able to modify the density of mid-gap surface states, alter the charge transfer from dye molecules to TiO 2 , and control the degree to which redox-active species such as FI 3 " can undergo direct recombination processes at the surface.
  • the present invention provides methods for functionalizing metal oxides with organic molecules.
  • the methods involve using UV light to covalently bind a variety of linker precursors to the surface of a metal oxide.
  • Other desirable molecules such as dye molecules and biomolecules, may be coupled to the linker precursors for further functionalization of the metal oxides.
  • the functionalized metal oxides may be used alone or as coatings on a variety of substrates and may be incorporated into a variety of devices such as biosensors and dye sensitized solar cells.
  • the present invention is able to provide functionalized metal oxides having higher densities of organic molecules as well as greater thermal and chemical stability.
  • the disclosed photochemical methods which do not require high temperature or ultrahigh vacuum, are simpler and more reproducible than the prior art methods.
  • the methods comprise contacting at least one linker precursor having a first functional group to the surface of a metal oxide and exposing the linker precursor to UV light.
  • linker precursors and first functional groups may be used.
  • the linker precursor comprises a substituted or unsubstituted alkene and the first functional group comprises a carbon-carbon double bond or a vinyl group.
  • the linker precursor comprises a substituted or unsubstituted alkyne and the first functional group comprises a carbon-carbon triple bond or an ethynyl group.
  • Exemplary alkenes and alkynes are described below.
  • a UV-induced reaction of the first functional group on the linker precursor with the metal oxide covalently binds the linker precursor to the surface of the metal oxide.
  • the reaction product of the linker precursor and the metal oxide (referred to herein as a "linker molecule") comprises an anchoring group (the atomic or molecular group that becomes covalently bound to the metal oxide).
  • the anchoring group may vary.
  • the anchoring group comprises a carbon, a CH, or a CH 2 group.
  • the linker precursors may be bifunctional, comprising a second functional group.
  • the linker molecules i.e., the covalently bound linker precursors
  • a variety of second functional groups may be used.
  • the second functional group is a protected or unprotected amine group or a carboxyl group.
  • Other molecules, including dye molecules and biomolecules, may be coupled to the linker molecules via the second functional group. Exemplary dye molecules and biomolecules are described below. Accordingly, the disclosed methods may comprise other steps, including but not limited to reacting any of these, or other desirable molecules, with the second functional groups.
  • metal oxides are compatible with the disclosed methods, including but not limited to doped or undoped TiO 2 , ZnO, ZrO 2 , or SnO 2 .
  • the metal oxide is TiO 2 .
  • the structure of the metal oxide may vary.
  • the metal oxide may take the form of a film disposed on the surface of a substrate.
  • substrates may be used, including, but not limited to glass or plastic.
  • FIG. IA shows the structures of TFAAD (trifluoroacetamide protected
  • FIG. IB illustrates a method for forming a functionalized metal oxide according to a disclosed embodiment.
  • FIG. 2A includes the XPS spectra of a single crystalline rutile (001 ) TiO 2 sample showing the C(Is), O(ls) and Ti(2p) regions. The spectra shown include the sample before and after attachment of TFAAD to a rutile TiO 2 surface.
  • FIG. 2B includes the FTIR spectra of a single crystalline rutile TiO 2 (001) sample functionalized with TFAAD.
  • FIG. 3A includes the XPS spectra of a single crystalline anatase (001)
  • TiO 2 sample showing the C(Is), O(ls) and Ti(2p) regions.
  • the spectra shown include the sample before and after attachment of TFAAD to an anatase TiO 2 surface.
  • FIG. 3B includes the O(ls) spectrum of nanocrystalline anatase TiO 2 samples functionalized with TFAAD at three different illumination times.
  • FIG. 4A depicts the functionalization of single crystalline rutile (001), single crystalline anatase (001) and polycrystalline anatase TiO 2 surfaces with TFAAD as a function of illumination time.
  • FIG. 4B shows an enlarged portion of FIG. 4A (the dotted rectangle).
  • FIG. 5 shows XPS spectra of TFAAD on three different zinc oxide crystal faces and a XPS spectrum of a control sample ("10-10 clean").
  • FIG. 6 shows the IR spectrum of TFAAD on fluorine-doped tin oxide.
  • FIG. 7 shows XPS spectra of TFAAD on zirconium oxide, bare zirconium oxide, and a sample exposed to TFAAD but no UV illumination ("dark control").
  • the present invention provides methods for functionalizing metal oxides with organic compounds using UV light. Also disclosed are the functionalized metal oxides, substrates coated with the functionalized metal oxides, and devices incorporating the coated substrates.
  • the methods comprise contacting at least one linker precursor to the surface of a metal oxide and exposing the linker precursor to UV light.
  • the linker precursors are molecules comprising a first functional group that is capable of covalently binding to the metal oxide via a UV light induced reaction.
  • the particular wavelength of the UV light may vary and may depend upon the identity of the linker precursor and the metal oxide.
  • the UV light is mid-UV light having a wavelength between 300 nm and 200 nm.
  • the UV light is UV light at 254 nm.
  • the UV light is near-UV light having a wavelength between 400 nm and 300 nm.
  • Desired portions of the metal oxide may be illuminated to photo-pattern specific linker precursors to specific areas on the metal substrates.
  • photo-patterning may provide arrays of linker precursors on the surface of the metal oxide.
  • the metal oxide may be photo-patterned to provide one or more areas having linker precursors covalently bound to the metal oxide and one or more areas without linker precursors.
  • the linker precursors in one area may be the same or different from the linker precursors in another area.
  • linker precursors and first functional groups may be used with the disclosed methods.
  • the linker precursor comprises a substituted or unsubstituted alkene and the first functional group comprises a carbon- carbon double bond.
  • the phrase "unsubstituted alkene" refers to straight, branched, and cyclic alkenes which do not contain heteroatoms.
  • the number of carbon atoms in the alkene may vary.
  • the alkene includes 2 to 20 carbon atoms. In other embodiments, the alkene includes 4 to 15 carbon atoms.
  • substituted alkene refers to an unsubstituted alkene as defined above in which one or more bonds to a carbon(s) or hydrogen(s) are replaced by a bond to non-hydrogen and non-carbon atoms.
  • Non-hydrogen and non-carbon atoms include, but are not limited to, a halogen atom such as F, Cl, Br, and I; an oxygen atom in groups such as hydroxyl, alkoxy, aryloxy, carbonyl, carboxyl, and ester groups; a nitrogen atom in groups such as amines, amides, alkylamines, arylamines, and alkylarylamines, and nitriles; and other heteroatoms in various other groups.
  • the linker precursor comprises a substituted or unsubstituted alkene and the functional group is a vinyl group.
  • Non-limiting examples of suitable substituted and unsubstituted alkenes include the following: 10-aminodec-l-ene, 11-undecenoate methyl ester, 1-dodecene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 3-buten-2-one, 3 -methyl- 1-butene, 3-buten-l-ol, 4- pentenenitrile, 1,4-hexadiene, 3 -methyl- 1,4-pentadiene, 3-penten-2-one, 3,3-dimethyl-l- butene, 4-methyl-l-pentene, 2-methyl-l-pentene, 2,3-dimethyl-l-butene, 4-penten-l-ol, 2-methyl-3-buten-l-ol, 4-penten-2-ol, 3-methyl-3-buten-l-ol, 4-penten-2-ol, 3-methyl
  • Substituted alkenes may be protected with a variety of protecting groups, including, but not limited to trifluoroacetic acid and tert-butyloxycarbamate.
  • substituted alkenes include tert-butyloxycarbamate protected 10-aminodec-l-ene and trifluoroacetic acid protected 10-aminodec-l-ene. Structures of these substituted alkenes as well as unsubstituted 1-dodecene are shown in FIG. IA.
  • the linker precursor comprises a substituted or unsubstituted alkyne and the first functional group comprises a carbon-carbon triple bond.
  • unsubstituted alkyne refers to straight, branched, and cyclic alkynes which do not contain heteroatoms. The number of carbon atoms in the alkyne may vary as for the alkenes described above.
  • substituted alkyne has the same meaning with respect to unsubstituted alkyne groups that substituted alkene has with respect to unsubstituted alkenes.
  • substituted alkyne also refers to an alkyne in which one or more carbon atoms are bonded to a substituted or unsubstituted alkane, a substituted or unsubstituted alkene, or a substituted or unsubstituted aryl.
  • unsubstituted alkane refers to straight, branched, and cyclic alkanes which do not contain heteroatoms.
  • the number of carbon atoms in the alkane may vary as for the alkenes described above.
  • substituted alkane has the same meaning with respect to unsubstituted alkane groups that substituted alkene has with respect to unsubstituted alkenes.
  • unsubstituted aryl refers to aryl groups that are not substituted and includes groups containing condensed rings such as naphthalene.
  • substituted aryl has the same meaning with respect to unsubstituted aryl groups that substituted alkene has with respect to unsubstituted alkenes.
  • Non-limiting examples of suitable substituted and unsubstituted alkenes include the following: 1-butyne, 1-pentyne, 1-hexyne, 1-heptyne, 1-octyne, 1-nonyne, 1-decyne, 1-dodecyne, 2-ethynylanisole, 3-ethynylanisole, 4-ethynylanisole, 2-ethynylbenzyl alcohol, lethynyl-3,5- bis(trifluoromethyl)benzene, 1-ethynylcyclohexene, 1-ethynylcyclopentanol, 2-ethynyl- 2,4-difluorobenzene, l-ethynyl-3,5-difluorobenzene, l-ethynyl-2-fluorobenzene, 1- e
  • linker molecule refers to the reaction product of the linker precursor and the metal oxide. These linker molecules comprise an anchoring group.
  • anchoring group refers to the atomic or molecular group that becomes covalently bound to the metal oxide via the UV light induced reaction described above.
  • the anchoring group will vary, depending upon the identity of the first functional group on the linker precursor.
  • the anchoring group may comprise a carbon, a CH group, or a CH 2 group.
  • the anchoring group may comprise a CH 2 group.
  • the anchoring group may comprise a carbon. This carbon may be bonded to a single hydrogen, another carbon, a heteroatom atom, or combinations thereof.
  • the anchoring group may comprise a CH group.
  • the anchoring group may comprise a carbon. This carbon atom may be bonded to another carbon or a heteroatom.
  • the linker molecules themselves may comprise a substituted or unsubstituted alkane, a substituted or unsubstituted alkene, or a substituted or unsubstituted alkyne.
  • the disclosed anchoring groups are distinguished from the conventional anchoring groups provided by conventional schemes for functionalizing metal oxides.
  • conventional linker precursors comprising any of the following groups may be reacted with metal oxide surfaces: phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, and salicylate.
  • the resulting conventional anchoring groups will include phosphonic acid or a derivative thereof, carboxylic acid or a derivative thereof, ester or a derivative thereof, acid chloride or a derivative thereof, carboxylate salt or a derivative thereof, amide or a derivative thereof, silane or a derivative thereof, ether or a derivative thereof, acetylacetonate or a derivative thereof, and salicylate or a derivative thereof.
  • derivative thereof refers to the molecular group that is directly bound (either covalently or noncovalently) to the metal oxide after reacting any of disclosed conventional linker precursors with a metal oxide.
  • the first functional group of the linker precursor is not a phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, or salicylate.
  • the anchoring group of the linker molecule is not a phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, salicylate or a derivative of any of these groups.
  • FIG. IB An embodiment of the disclosed method is illustrated in FIG. IB.
  • a substituted alkene 100 having a vinyl group is exposed to a metal oxide 104.
  • the substituted alkene is exposed to UV light at 254 nm.
  • the UV light induces a reaction between the metal oxide and the vinyl group on the substituted alkene 100, thereby providing a covalently bound linker molecule 108 on the surface of the metal oxide 104.
  • the linker precursor is bifunctional and comprises a second functional group.
  • linker molecules covalently bound linker precursors are referred to as linker molecules.
  • the second functional group may be used to couple a variety of desirable molecules to the linker precursor or the linker molecule, as further discussed below. Such molecules may be coupled to the linker precursor before it is covalently bound to the metal oxide or after the linker precursor is covalently bound to the metal oxide (i.e., to the linker molecule).
  • a variety of second functional groups may be used, including, but not limited to an amine group and a carboxyl group. The second functional groups may be protected or unprotected with any of the protecting groups described above.
  • the metal oxide comprises TiO 2 , ZnO, ZrO 2 , or SnO 2 . Any of these metal oxides may be doped with other atoms or compounds.
  • the metal oxide may comprise fluorine-doped SnO 2 (FTO).
  • the metal oxide may comprise indium tin oxide (ITO), a mixture of In 2 O 3 and SnO 2 , or antimony tin oxide (ATO), a mixture of Sb 2 O 3 and SnO 2 .
  • ITO indium tin oxide
  • ATO antimony tin oxide
  • TiO 2 provides a particularly useful metal oxide due to its low fluorescence quenching. TiO 2 may be used in a variety of crystal forms, including rutile and anatase.
  • the metal oxide provides a non-porous structure.
  • the metal oxide is single-crystalline.
  • the metal oxide is polycrystalline.
  • the metal oxide provides a nanocrystalline porous structure.
  • the nanocrystalline porous structures provide a greater surface area for attaching linker precursors as compared to non-porous structures having similar dimensions and thicknesses.
  • the metal oxide may take the form of a film disposed on the surface of a substrate.
  • the functionalized metal oxide provides a coating for the substrate.
  • a variety of substrates may be used.
  • the substrate is transparent.
  • the substrate is glass or plastic.
  • a variety of plastics may be used, including, but not limited to polycarbonates and polyacrylics.
  • the thickness of the metal oxide film may vary.
  • the linker precursor or linker molecule includes any of the second functional groups disclosed above and the methods further include reacting a dye molecule or a biomolecule with the second functional group.
  • a dye molecule or a biomolecule may be used.
  • dye molecules suitable for use in dye sensitized solar cells may be used.
  • Such dyes are known.
  • biomolecules include DNA molecules, RNA molecules, synthetic oligonucleotides, peptides, polypeptides, proteins, enzymes, antibodies, receptors, polysaccharides, and viruses. Synthetic methods for coupling dye molecules and biomolecules to the disclosed second functional groups are well-known.
  • Example 3 describes a synthetic method for coupling an oligonucleotide to an amine group.
  • the disclosed functionalized metal oxides may be used in a variety of devices, either alone or as coatings on a substrate.
  • the functionalized metal oxides may be used in dye-sensitized solar cells.
  • a basic dye- sensitized solar cell includes a transparent anode, an electrolyte, and a counter electrode.
  • any of the disclosed functionalized metal oxides comprising a dye molecule may be used as a coating on a transparent substrate.
  • the coated transparent substrate may form the anode in a dye-sensitized solar cell.
  • Appropriate electrolytes and materials for counter electrodes are well-known.
  • the functionalized metal oxides may be used in biosensors.
  • any of the disclosed functionalized metal oxides comprising a biomolecule may be used as a coating on a substrate.
  • the binding of analyte molecules to the immobilized biomolecules may be detected by appropriate imaging techniques.
  • Surface plasmon resonance is another imaging technique may be used to detect the binding of analyte molecules to substrates coated with the appropriate functionalized metal oxide and the appropriate metal films.
  • Example 1 Photochemical grafting of alkenes on anatase and rutile TiO? surfaces
  • Titanium isopropoxide in 2-propanol was slowly hydrolyzed with the addition of water, then heated to 85 °C for 4 hours before being dried in an oven at 85 0 C overnight.
  • Agglomerated particles were dispersed using a Sonics VCX- 130 sonicator, and films were formed by drying aqueous suspensions of the particles on planar substrates.
  • the natural single crystalline anatase sample was soaked in chloroform for 24 hours without sonication, followed by exposure to UV light in air to remove organic contamination.
  • Photochemical grafting of alkene molecules to TiO 2 surfaces was accomplished by placing the TiO 2 sample in a nitrogen-purged reaction chamber and adding ⁇ 5 ⁇ l of neat alkene, which wets the surface with a thin, liquid film.
  • single crystal TiO 2 samples (except for natural single crystalline anatase) were ultra-sonicated in chloroform (5 min) and methanol (5 min) to remove any physisorbed reactants and dried with N 2 gas before analysis.
  • the natural single crystalline anatase TiO 2 sample was rinsed in chloroform (30 min) and methanol (30 min), and nanocrystalline samples were rinsed in alternating portions of chloroform and methanol for 1 hour.
  • TFAAD has a vinyl group at one end for linking to the surface and a protected amine group at the other end that can be deprotected after surface attachment, yielding primary amine groups that can then be used for further functionalization, as further shown in Example 3 below.
  • FIG. 1 shows the structures of the three alkenes and illustrates the photochemical grafting of the alkenes on TiO 2 surfaces.
  • t-BOCAAD J-butyloxycarbonyl
  • t-BOCAAD 10-aminodec-l-ene
  • FIG. 1 shows the structures of the three alkenes and illustrates the photochemical grafting of the alkenes on TiO 2 surfaces.
  • Characterization The crystal structure of the nanocrystalline TiO 2 was analyzed using X-ray Diffraction, (Scintag PAD V). The surface monolayers of all TiO 2 samples were characterized using X-ray photoelectron spectroscopy (XPS) with a monochromatic Al Ka source (nominal 1486.6 eV photon energy).
  • XPS X-ray photoelectron spectroscopy
  • XPS spectra were recorded with an analyzer resolution of 0.1-0.2 eV, collecting electrons emitted at 45° from the surface normal.
  • Infrared reflection-absorption spectra were collected on a Bruker Vector 33 FTIR spectrometer equipped with a VeeMaxII variable angle specular reflectance accessory and a wire grid polarizer.
  • Single crystal spectra were collected using s- polarized light at 30° incidence from the surface normal and nanocrystalline spectra were collected using p-polarized light at 60° incidence from the surface; 500 or 100 scans at 4 cm "1 resolution were collected for both background and sample. The spectra were baseline corrected for clarity.
  • UPS ultraviolet photoemission spectroscopy
  • characterization was carried out using a He(I) emission lamp (21.2 eV) as an excitation source and an analyzer resolution of 0.05-0.1 eV.
  • Samples were collected at a takeoff angle of 75° (from the surface plane) and biased -5.00 to -6.50 V with respect to the spectrometer to ensure that the vacuum level of the sample was higher in energy than that of the analyzer.
  • Spectra at progressively higher biases were collected until the high binding energy cutoff was observed to converge; the spectrum obtained at the bias at which convergence was observed was used for the work function calculations.
  • Energys were referenced to the sample Fermi level, which was determined by measurement of Ta clips directly in contact with the sample.
  • FIG. 2A shows XPS spectra for the C(Is), O(ls) and Ti(2p) areas before and after functionalization of a single crystalline rutile (001) TiO 2 surface with TFAAD.
  • the cleaned rutile TiO 2 surface shows only a small C(Is) peak at 284.6 eV, demonstrating that carbon contamination levels are low.
  • the O(ls) spectrum shows a strong peak at 529.7 eV and a shoulder at 531.2 eV.
  • the peak at 529.7 eV corresponds to the chemically distinct lattice oxygen and the shoulder at 531.2 eV arises from the absorbate oxygen atoms including carboxyl acid and hydroxyl groups.
  • this lattice oxygen Is peak at 529.7 eV was used as a reference for other peaks.
  • the titanium peaks at 458.4 eV and 464.4 eV are attributed to the 2p 3/2 and 2pi /2 peaks of lattice titanium, respectively.
  • the C(Is) spectrum shows a strong peak at 284.7 eV, a weak shoulder near 286.1 eV, and two smaller peaks at 288.6 and 293 eV.
  • the peak at 284.7 eV comes from the alkyl chain of TFAAD.
  • the O(ls) spectrum shows a peak at 532.3 eV from the oxygen atoms of the trifluoroacetamide functional groups of TFAAD monolayers and a peak at 529.7 eV from the lattice oxygen attenuated by the TFAAD layer.
  • the absolute Ti(2p) signals are also attenuated to approximately 5% of their original values by the grafted TFAAD layer.
  • FIG. 2B shows the spectrum of a single-crystal rutile (001) TiO 2 sample after grafting of TFAAD for 18 hours.
  • the rutile (110) surface has both 5-fold coordinated and 6-fold coordinated Ti atoms; the six-coordinate Ti atoms are capped with bridging oxygens that link adjacent Ti sites.
  • the (001) surface is composed of the 4-fold coordinated Ti cations with two oxygens within the surface plane and the other two in the plane below. Because the bridging oxygens are only weakly bound to the surface, the (001) surface is calculated to be lower in energy than the (110) surface. Regarding the differences in reactivity between the surfaces, it is possible that UV illumination creates some in-plane oxygen vacancies on the (001) face, which in turn assists in the photoemission process.
  • Nanocrystalline Anatase TiO 2 Surfaces with TFAAD The anatase form of titanium dioxide is of interest because while less stable than rutile, this crystal structure shows increased performance for photovoltaic energy conversion and photocatalysis.
  • TFAAD molecules were grafted onto synthetic single crystal anatase (001) TiO 2 thin films grown on SrTiO 3 substrates, a natural single anatase (101) crystal, and nanocrystalline TiO 2 RImS prepared by dispersing anatase nanocrystals onto a substrate consisting of a glass suface with a thin coating of fluorinated tin oxide.
  • FIG. 3 A shows the C( 1 s), O( 1 s) and Ti(2p) XPS spectra for the synthetic single-crystal anatase (001) TiO 2 thin film before and after photochemical grafting of TFAAD (data shown after 39 hours).
  • XPS spectra (not shown) obtained on the natural single-crystal anatase (101) sample was qualitatively similar to the spectra obtained on rutile TiO 2 - However, a comparison of the XPS peak areas shows that the extent of reaction is significantly different on (001) and (101) crystal faces.
  • the AF(i s /A ⁇ i( 2p ) ratio after a grafting time of 7 hours is 4.6 on the anatase (101) sample, but only AF( 1S )/A ⁇ i( 2p ) of 0.94 on the anatase (001) surface.
  • AF( 1S )/A ⁇ i( 2p ) of 0.94 on the anatase (001) surface Regarding these differences in reactivity, it is known that the most stable anatase (101) surface shows the highest concentration of oxygen- vacancy defects, while the anatase (001) surface typically shows a much lower concentration of oxygen vacancies.
  • FIG. 3B shows the O(ls) spectrum of nanocrystalline anatase TiO 2 samples functionalized with TFAAD at three different illumination times (6, 24 and 29.5 hours). As the illumination time increases, the peak at 529.7 eV from the lattice oxygen decreases because of attenuation by the TFAAD monolayer, while the peak at 532.3 eV from the oxygen atoms of the trifluoroacetamide functional group increased.
  • the fact that the limiting peak area ratio is obtained under conditions where XPS intensity from the underlying bulk TiO 2 is still clearly observed proves that the photochemical surface functionalization self- terminates. Molecules react with the surface until some maximum coverage is reached, and then reaction with the surface stops. Single crystalline rutile (001) sample reaches this limiting coverage faster than single crystalline anatase (001). The difference in limiting values between these two samples suggests that the maximum density may also be slightly different. Both samples show an induction period at the beginning of the reaction, which may be related to the UV-induced formation of surface defects, such as oxygen vacancies.
  • FIGs. 4A and 4B show the reaction extent for nanocrystalline TiO 2 samples (diamonds) exposed to TFAAD.
  • FIG. 4B is an enlarged version of the region enclosed by the dotted rectangle in FIG. 4 A.
  • the AF(i s /A ⁇ i(2 P ) ratio obtained from nanocrystalline anatase samples saturates at 3.0 after 35 hours, which is lower than the single crystalline rutile (001) and single crystalline anatase (001) samples.
  • the nanocrystalline sample also shows an induction period for approximately 1 hour at the beginning of the reaction.
  • TFAAD has the lowest-lying acceptor level (largest electron affinity) and yielded the highest reactivity
  • t-BOCAAD has a higher-lying acceptor level (smaller electron affinity) and yielded lower reactivity
  • 1-dodecene has the highest-lying acceptor level and was the least reactive.
  • Fluorinated tin oxide (FTO)-coated glass substrates with a resistivity of 15 ohm/sq were obtained from Hartford Glass Co. and were cleaned by rinsing with acetone and methanol. FTO-coated glass was used because of its electrical conductivity, but identical procedures would be expected to be work with uncoated (bare) glass.
  • the substrates were coated with TiO 2 by a two-step procedure. The samples were first immersed in a 5OmM aqueous TiCl 4 solution for 30 min at 7O 0 C to prepare a dense layer of TiO 2 on the surface.
  • a paste containing 20nm TiO 2 anatase particles (Ti-Nanoxide T20/SP, purchased from Solaronix, Inc.) was screen printed onto the glass through a 90 threads/cm polyester mesh and dried at 125°C for 5 min. The TiO 2 was printed and dried two more times for a total of three layers, creating a 7-10 ⁇ m thick film. The films were then placed on a hot plate and heated to 325 0 C for 5 min, 375 0 C for 5 min, 450 0 C for 15 min, and finally to 500 0 C for 15 mins. before being allowed to cool to room temperature. A final UV-ozone cleaning was usually performed overnight before films were ready for use. This procedure produces glass surfaces coated with a nanocrystalline thin film of TiO 2 particles. Such nanocrystalline films are porous and have a high internal surface area.
  • Non-porous TiO 2 films were prepared by coating the glass surfaces with a thin film of titanium (by thermal or electron-beam evaporation) and subsequently oxidizing the Ti to TiO 2 in air to produce flat TiO 2 surfaces. [0054] To clean the samples, the TiO 2 films on glass were exposed to UV light at
  • the UV lamp generates ozone which oxidizes and removes any residual organic contamination.
  • Example 1 Briefly, ⁇ 5 ⁇ L of the alkene was dripped onto the TiO 2 -coated glass surface, covered with a quartz window, and illuminated using ultraviolet (UV) light (254 nm) from a low-pressure mercury lamp for 8-16 hours while maintaining a flow of nitrogen gas. Covalent attachment of the alkene to the TiO 2 film was confirmed by infrared and Raman spectroscopy measurements. To test the thermal stability of the resulting molecular coating, samples were exposed to hot water for varying lengths of time, and the intensity of C-H stretching vibrations were monitored using IR spectroscopy. For the nanocrystalline TiO 2 films, no degradation was detectable after more than 600 hours in water at 60 0 C or after more than 180 minutes in water at 85°C.
  • UV ultraviolet
  • TFAAD trifluoroacetamide
  • the amine-modified surfaces were exposed to a 1 mM solution of the heterobifunctional cross-linker sulfosuccinimidyl 4-(iV-maleimidomethyl) cyclohexane-l-carboxylate (SSMCC) in triethanolamine buffer solution (pH 7) for 2 hours.
  • SSMCC heterobifunctional cross-linker sulfosuccinimidyl 4-(iV-maleimidomethyl) cyclohexane-l-carboxylate
  • DNAl DNA oligonucleotides modified with a thiol group at the 5' end
  • DNA oligonucleotide used to modify the surface was 5'-HS-GCT TAT CGA GCT TTC G-3' (DNAl).
  • DNAl The sequence of DNA oligonucleotide used to modify the surface was 5'-HS-GCT TAT CGA GCT TTC G-3' (DNAl).
  • the hybridization of the surface-bound strand was studied using single- stranded DNA oligonucleotides labeled with a fluorescein tag at the 5' end (5'-FAM-CG AAA GCT CGA TAA GC-3' (cDNAl)).
  • cDNAl is a perfect complementary match to DNAl. All DNA strands were purchased from the Biotechnology Center of the University of Wisconsin-Madison.
  • the stability of the surface-bound oligonucleotides was evaluated by testing the amount of DNA that would hybridize to an DNAl -modified sample in 25 repeated cycles of hybridization and denaturation.
  • the sample was exposed to the fluorescently labeled complement (cDNAl) for 5 min at room temperature in a humid chamber, rinsed in 2xSSPE buffer (0.2 M sodium phosphate buffer, pH ⁇ 7.4, with 0.3 M NaCl and 0.002 M EDTA) twice, 5 min each, and the intensity of fluorescence was measured.
  • the sample was then denatured in an aqueous solution of 8.3 M urea for 4 min at 65°C, rinsed with distilled water, and rehybridized.
  • Fluorine doped tin oxide (as a thin film on a glass substrate) and zinc oxide single crystal surfaces were used as purchased.
  • Zinc oxide was purchased from MTI Corporation.
  • Fluorine doped tin oxide coated glass was purchased from Hartford Glass, Inc.
  • Zirconium oxide surfaces were fabricated by evaporating a thin film of zirconium (using electron-beam evaporation) onto a silicon wafer substrate and letter the Zr film oxidize at room temperature in air. Photochemical grafting of TFAAD on the metal oxide surfaces was conducted as described in Example 2. After completion of the reaction, the nonspecif ⁇ cally bound alkene was removed by soaking the surfaces in organic solvents, typically methanol and chloroform.
  • FIG. 5 shows XPS spectra of TFAAD on three different zinc oxide crystal faces.
  • the clean sample i.e., control sample
  • FIG. 6 shows the IR spectrum of TFAAD on fluorine doped tin oxide.
  • FIG. 7 shows XPS spectra of TFAAD on zirconium oxide, bare zirconium oxide, and a sample exposed to TFAAD but no UV illumination ("dark control"). Only the functionalized surface shows a fluorine peak. In addition, the carbon peak is largest for the functionalized surface.

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Abstract

Disclosed herein are methods for functionalizing metal oxides, including tin dioxide. The methods comprise contacting at least one linker precursor comprising a first functional group to a metal oxide and exposing the linker precursor to UV light. The first functional group covalently binds to the metal oxide via a UV light induced reaction. The linker precursor may be an alkene having a vinyl group or an alkyne having an ethynyl group. Other molecules, such as biomolecules and dye molecules, may be bound to the linker precursors. The functionalized metal oxides may be used alone or as coatings on a substrate and find use in a variety of devices, including biosensors and dye sensitized solar cells.

Description

MOLECULARAND BIOMOLECULAR FUNCTIONALIZATION OF METAL OXIDES
FIELD OF THE INVENTION
[0001] The present invention relates to methods for functionalizing metal oxides with organic molecules using UV light. The resulting functionalized metal oxides may be used alone or as coatings on substrates. The functionalized metal oxides are well-suited for use in biosensors and dye sensitized solar cells.
BACKGROUND OF THE INVENTION
[0002] The preparation of functionalized substrates is an area of interest for many commercial applications ranging from biosensors to energy conversion devices. Biosensors are designed to determine the presence of biomolecules and are often used in biotechnology industries to perform rapid biochemical analysis. These biosensors are adapted to detect and/or quantify various analytes based on known interactions between the analytes and other biomolecules immobilized on a substrate, such as glass. Organosilane chemistry is a typical method used to attach biomolecules to glass. Unfortunately, these and other methods used to immobilize biomolecules on glass substrates suffer from irreproducibility and instability, resulting in increased manufacturing costs and short shelf life.
[0003] Oxide materials, especially TiO2, are often used in energy conversion devices. The bonding of molecules such as dye molecules to the surface of TiO2 provides a way to modify the optical properties and enhance the performance of some energy conversion devices, such as dye-sensitized solar cells. These surface molecular layers play an important role in controlling the electrical properties of TiO2 and other oxide materials. These layers are able to modify the density of mid-gap surface states, alter the charge transfer from dye molecules to TiO2, and control the degree to which redox-active species such as FI3 " can undergo direct recombination processes at the surface. Conventional schemes for functionalizing TiO2 use organic molecules having functional groups such as phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, and salicylate. See Galoppini, E., Coordination Chemistry Reviews, 248 (2004) 1283-1297. In the case of silanes and ethers, the functionalization involves reaction of these functional groups with surface titanol (Ti-OH) groups and, thus, depends on the amount of surface titanol groups. Previous work using ester linkages has shown that there are multiple bonding sites depending on the pH and degree of hydration of the surface. See Finnie, K. S. et al., Langmuir 1998, 14, 2744; and Vittadini, A. et al., J. Phys. Chem. B 2005, 109, 20938. A problem with these conventional schemes is that the synthetic methods are complex, costly, and time consuming. In addition, many of the resulting linkages to the metal oxides are weak and unstable.
SUMMARY OF THE INVENTION
[0004] The present invention provides methods for functionalizing metal oxides with organic molecules. The methods involve using UV light to covalently bind a variety of linker precursors to the surface of a metal oxide. Other desirable molecules, such as dye molecules and biomolecules, may be coupled to the linker precursors for further functionalization of the metal oxides. The functionalized metal oxides may be used alone or as coatings on a variety of substrates and may be incorporated into a variety of devices such as biosensors and dye sensitized solar cells. Compared to conventional methods and conventional functionalized metal oxides, the present invention is able to provide functionalized metal oxides having higher densities of organic molecules as well as greater thermal and chemical stability. Moreover, the disclosed photochemical methods, which do not require high temperature or ultrahigh vacuum, are simpler and more reproducible than the prior art methods.
[0005] The methods comprise contacting at least one linker precursor having a first functional group to the surface of a metal oxide and exposing the linker precursor to UV light. A variety of linker precursors and first functional groups may be used. In some embodiments, the linker precursor comprises a substituted or unsubstituted alkene and the first functional group comprises a carbon-carbon double bond or a vinyl group. In other embodiments, the linker precursor comprises a substituted or unsubstituted alkyne and the first functional group comprises a carbon-carbon triple bond or an ethynyl group. Exemplary alkenes and alkynes are described below.
[0006] A UV-induced reaction of the first functional group on the linker precursor with the metal oxide covalently binds the linker precursor to the surface of the metal oxide. The reaction product of the linker precursor and the metal oxide (referred to herein as a "linker molecule") comprises an anchoring group (the atomic or molecular group that becomes covalently bound to the metal oxide). The anchoring group may vary. In some embodiments, the anchoring group comprises a carbon, a CH, or a CH2 group. These anchoring groups are distinguished from conventional anchoring groups provided by conventional schemes for functionalizing metal oxides.
[0007] The linker precursors may be bifunctional, comprising a second functional group. The linker molecules (i.e., the covalently bound linker precursors) may also include this second functional group. A variety of second functional groups may be used. In some embodiments, the second functional group is a protected or unprotected amine group or a carboxyl group. Other molecules, including dye molecules and biomolecules, may be coupled to the linker molecules via the second functional group. Exemplary dye molecules and biomolecules are described below. Accordingly, the disclosed methods may comprise other steps, including but not limited to reacting any of these, or other desirable molecules, with the second functional groups.
[0008] A variety of metal oxides are compatible with the disclosed methods, including but not limited to doped or undoped TiO2, ZnO, ZrO2, or SnO2. In some embodiments, the metal oxide is TiO2. The structure of the metal oxide may vary. Moreover, in some embodiments, the metal oxide may take the form of a film disposed on the surface of a substrate. A variety of substrates may be used, including, but not limited to glass or plastic.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] FIG. IA shows the structures of TFAAD (trifluoroacetamide protected
10-aminodec-l-ene), t-BOCAAD (teit-butyloxycarbamate protected 10-aminodec-l-ene), and 1-dodecene. FIG. IB illustrates a method for forming a functionalized metal oxide according to a disclosed embodiment.
[0010] FIG. 2A includes the XPS spectra of a single crystalline rutile (001 ) TiO2 sample showing the C(Is), O(ls) and Ti(2p) regions. The spectra shown include the sample before and after attachment of TFAAD to a rutile TiO2 surface. FIG. 2B includes the FTIR spectra of a single crystalline rutile TiO2 (001) sample functionalized with TFAAD.
[0011] FIG. 3A includes the XPS spectra of a single crystalline anatase (001)
TiO2 sample showing the C(Is), O(ls) and Ti(2p) regions. The spectra shown include the sample before and after attachment of TFAAD to an anatase TiO2 surface. FIG. 3B includes the O(ls) spectrum of nanocrystalline anatase TiO2 samples functionalized with TFAAD at three different illumination times.
[0012] FIG. 4A depicts the functionalization of single crystalline rutile (001), single crystalline anatase (001) and polycrystalline anatase TiO2 surfaces with TFAAD as a function of illumination time. FIG. 4B shows an enlarged portion of FIG. 4A (the dotted rectangle).
[0013] FIG. 5 shows XPS spectra of TFAAD on three different zinc oxide crystal faces and a XPS spectrum of a control sample ("10-10 clean").
[0014] FIG. 6 shows the IR spectrum of TFAAD on fluorine-doped tin oxide.
[0015] FIG. 7 shows XPS spectra of TFAAD on zirconium oxide, bare zirconium oxide, and a sample exposed to TFAAD but no UV illumination ("dark control").
DETAILED DESCRIPTION
[0016] The present invention provides methods for functionalizing metal oxides with organic compounds using UV light. Also disclosed are the functionalized metal oxides, substrates coated with the functionalized metal oxides, and devices incorporating the coated substrates.
[0017] The methods comprise contacting at least one linker precursor to the surface of a metal oxide and exposing the linker precursor to UV light. The linker precursors are molecules comprising a first functional group that is capable of covalently binding to the metal oxide via a UV light induced reaction. The particular wavelength of the UV light may vary and may depend upon the identity of the linker precursor and the metal oxide. In some embodiments, the UV light is mid-UV light having a wavelength between 300 nm and 200 nm. In some such embodiments, the UV light is UV light at 254 nm. In other embodiments, the UV light is near-UV light having a wavelength between 400 nm and 300 nm.
[0018] The use of light provides a particularly flexible functionalization scheme.
Desired portions of the metal oxide may be illuminated to photo-pattern specific linker precursors to specific areas on the metal substrates. Such photo-patterning may provide arrays of linker precursors on the surface of the metal oxide. By way of example only, the metal oxide may be photo-patterned to provide one or more areas having linker precursors covalently bound to the metal oxide and one or more areas without linker precursors. In embodiments having a plurality of areas having covalently bound linker precursors, the linker precursors in one area may be the same or different from the linker precursors in another area.
[0019] A variety of linker precursors and first functional groups may be used with the disclosed methods. In some embodiments, the linker precursor comprises a substituted or unsubstituted alkene and the first functional group comprises a carbon- carbon double bond. The phrase "unsubstituted alkene" refers to straight, branched, and cyclic alkenes which do not contain heteroatoms. The number of carbon atoms in the alkene may vary. In some embodiments, the alkene includes 2 to 20 carbon atoms. In other embodiments, the alkene includes 4 to 15 carbon atoms. The phrase "substituted alkene" refers to an unsubstituted alkene as defined above in which one or more bonds to a carbon(s) or hydrogen(s) are replaced by a bond to non-hydrogen and non-carbon atoms. Non-hydrogen and non-carbon atoms include, but are not limited to, a halogen atom such as F, Cl, Br, and I; an oxygen atom in groups such as hydroxyl, alkoxy, aryloxy, carbonyl, carboxyl, and ester groups; a nitrogen atom in groups such as amines, amides, alkylamines, arylamines, and alkylarylamines, and nitriles; and other heteroatoms in various other groups. In other embodiments, the linker precursor comprises a substituted or unsubstituted alkene and the functional group is a vinyl group. By vinyl group, it is meant a -CH=CH2 group.
[0020] Non-limiting examples of suitable substituted and unsubstituted alkenes, including those having a vinyl group, include the following: 10-aminodec-l-ene, 11-undecenoate methyl ester, 1-dodecene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 3-buten-2-one, 3 -methyl- 1-butene, 3-buten-l-ol, 4- pentenenitrile, 1,4-hexadiene, 3 -methyl- 1,4-pentadiene, 3-penten-2-one, 3,3-dimethyl-l- butene, 4-methyl-l-pentene, 2-methyl-l-pentene, 2,3-dimethyl-l-butene, 4-penten-l-ol, 2-methyl-3-buten-l-ol, 4-penten-2-ol, 3-methyl-3-buten-l-ol, 2-methyl-3-buten-2-ol, l-penten-3-ol, 5-hexenenitrile, 2-methyl-l,5-hexadiene, vinylcyclopentane, 5-hexen-2- one, 3-methyl-l-hexene, 4-methyl-l-hexene, 2-methyl-l-hexene, 5-hexen-l-ol, 1-hexen- 3-ol, 4-vinyl-l-cyclohexene, 3-butene-l,2-diol, and 3-chloro-l -butene. Substituted alkenes may be protected with a variety of protecting groups, including, but not limited to trifluoroacetic acid and tert-butyloxycarbamate. By way of example only, substituted alkenes include tert-butyloxycarbamate protected 10-aminodec-l-ene and trifluoroacetic acid protected 10-aminodec-l-ene. Structures of these substituted alkenes as well as unsubstituted 1-dodecene are shown in FIG. IA.
[0021] In other embodiments, the linker precursor comprises a substituted or unsubstituted alkyne and the first functional group comprises a carbon-carbon triple bond. The phrase "unsubstituted alkyne" refers to straight, branched, and cyclic alkynes which do not contain heteroatoms. The number of carbon atoms in the alkyne may vary as for the alkenes described above. The phrase "substituted alkyne" has the same meaning with respect to unsubstituted alkyne groups that substituted alkene has with respect to unsubstituted alkenes. However, substituted alkyne also refers to an alkyne in which one or more carbon atoms are bonded to a substituted or unsubstituted alkane, a substituted or unsubstituted alkene, or a substituted or unsubstituted aryl. The phrase unsubstituted alkane refers to straight, branched, and cyclic alkanes which do not contain heteroatoms. The number of carbon atoms in the alkane may vary as for the alkenes described above. The phrase "substituted alkane" has the same meaning with respect to unsubstituted alkane groups that substituted alkene has with respect to unsubstituted alkenes. The phrase "unsubstituted aryl" refers to aryl groups that are not substituted and includes groups containing condensed rings such as naphthalene. The phrase "substituted aryl" has the same meaning with respect to unsubstituted aryl groups that substituted alkene has with respect to unsubstituted alkenes. In other embodiments, the linker precursor comprises a substituted or unsubstituted alkyne and the functional group is a ethynyl group. By ethynyl group, it is meant a -C=CH group.
[0022] Non-limiting examples of suitable substituted and unsubstituted alkenes, including those having a ethynyl group, include the following: 1-butyne, 1-pentyne, 1-hexyne, 1-heptyne, 1-octyne, 1-nonyne, 1-decyne, 1-dodecyne, 2-ethynylanisole, 3-ethynylanisole, 4-ethynylanisole, 2-ethynylbenzyl alcohol, lethynyl-3,5- bis(trifluoromethyl)benzene, 1-ethynylcyclohexene, 1-ethynylcyclopentanol, 2-ethynyl- 2,4-difluorobenzene, l-ethynyl-3,5-difluorobenzene, l-ethynyl-2-fluorobenzene, 1- ethynyl-3-fluorobenzene, l-ethynyl-4-fluorobenzene, 1-ethynylnaphthalene, 9- ethynylphenanthrene, 2-ethynylpyridine, 3-ethynylpyridine, 2-ethynyltoluene, 2-ethynyl- trifluorotoluene, l-ethynyl-2,4,5-trimethylbenzene. Substituted alkynes may be protected with a variety of protecting groups as described above.
[0023] The UV-induced reaction of the first functional group on the linker precursor with the metal oxide covalently binds the linker precursor to the surface of the metal oxide. As used herein, the phrase "linker molecule" refers to the reaction product of the linker precursor and the metal oxide. These linker molecules comprise an anchoring group. The phrase "anchoring group," refers to the atomic or molecular group that becomes covalently bound to the metal oxide via the UV light induced reaction described above. The anchoring group will vary, depending upon the identity of the first functional group on the linker precursor. The anchoring group may comprise a carbon, a CH group, or a CH2 group. By way of example only, if the first functional group is a vinyl group, the anchoring group may comprise a CH2 group. However, if the first functional group is a non-terminal carbon-carbon double bond, the anchoring group may comprise a carbon. This carbon may be bonded to a single hydrogen, another carbon, a heteroatom atom, or combinations thereof. By way of another example, if the first functional group is a ethynyl group, the anchoring group may comprise a CH group. However, if the first functional group is a non-terminal carbon-carbon triple bond, the anchoring group may comprise a carbon. This carbon atom may be bonded to another carbon or a heteroatom. Depending upon the type of molecule used for the linker precursor, the linker molecules themselves may comprise a substituted or unsubstituted alkane, a substituted or unsubstituted alkene, or a substituted or unsubstituted alkyne.
[0024] The disclosed anchoring groups are distinguished from the conventional anchoring groups provided by conventional schemes for functionalizing metal oxides. As discussed above, in conventional schemes, conventional linker precursors comprising any of the following groups may be reacted with metal oxide surfaces: phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, and salicylate. Thus, the resulting conventional anchoring groups will include phosphonic acid or a derivative thereof, carboxylic acid or a derivative thereof, ester or a derivative thereof, acid chloride or a derivative thereof, carboxylate salt or a derivative thereof, amide or a derivative thereof, silane or a derivative thereof, ether or a derivative thereof, acetylacetonate or a derivative thereof, and salicylate or a derivative thereof. The phrase "derivative thereof refers to the molecular group that is directly bound (either covalently or noncovalently) to the metal oxide after reacting any of disclosed conventional linker precursors with a metal oxide. Thus, in all embodiments of the disclosed methods, the first functional group of the linker precursor is not a phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, or salicylate. Similarly, in some embodiments, the anchoring group of the linker molecule is not a phosphonic acid, carboxylic acid, ester, acid chloride, carboxylate salt, amide, silane, ether, acetylacetonate, salicylate or a derivative of any of these groups.
[0025] An embodiment of the disclosed method is illustrated in FIG. IB. As shown in the figure, a substituted alkene 100 having a vinyl group is exposed to a metal oxide 104. The substituted alkene is exposed to UV light at 254 nm. The UV light induces a reaction between the metal oxide and the vinyl group on the substituted alkene 100, thereby providing a covalently bound linker molecule 108 on the surface of the metal oxide 104.
[0026] In some embodiments of the disclosed methods, the linker precursor is bifunctional and comprises a second functional group. As described above, covalently bound linker precursors are referred to as linker molecules. Thus, the linker molecules themselves may include this second functional group. The second functional group may be used to couple a variety of desirable molecules to the linker precursor or the linker molecule, as further discussed below. Such molecules may be coupled to the linker precursor before it is covalently bound to the metal oxide or after the linker precursor is covalently bound to the metal oxide (i.e., to the linker molecule). A variety of second functional groups may be used, including, but not limited to an amine group and a carboxyl group. The second functional groups may be protected or unprotected with any of the protecting groups described above.
[0027] A variety of metal oxides may be used with the disclosed methods. In some embodiments, the metal oxide comprises TiO2, ZnO, ZrO2, or SnO2. Any of these metal oxides may be doped with other atoms or compounds. By way of example only, the metal oxide may comprise fluorine-doped SnO2 (FTO). In other examples, the metal oxide may comprise indium tin oxide (ITO), a mixture of In2O3 and SnO2, or antimony tin oxide (ATO), a mixture of Sb2O3 and SnO2. The metal oxide TiO2 provides a particularly useful metal oxide due to its low fluorescence quenching. TiO2 may be used in a variety of crystal forms, including rutile and anatase.
[0028] The characteristics of the metal oxide may vary. In some embodiments, the metal oxide provides a non-porous structure. In some such embodiments, the metal oxide is single-crystalline. In other such embodiments, the metal oxide is polycrystalline. In still other embodiments, the metal oxide provides a nanocrystalline porous structure. The nanocrystalline porous structures provide a greater surface area for attaching linker precursors as compared to non-porous structures having similar dimensions and thicknesses.
[0029] The metal oxide may take the form of a film disposed on the surface of a substrate. In such embodiments, the functionalized metal oxide provides a coating for the substrate. A variety of substrates may be used. In some embodiments, the substrate is transparent. In other embodiments, the substrate is glass or plastic. A variety of plastics may be used, including, but not limited to polycarbonates and polyacrylics. The thickness of the metal oxide film may vary.
[0030] The disclosed methods may further comprise additional steps. In some embodiments, the linker precursor or linker molecule includes any of the second functional groups disclosed above and the methods further include reacting a dye molecule or a biomolecule with the second functional group. A variety of dye molecules and biomolecules may be used. By way of example only, dye molecules suitable for use in dye sensitized solar cells may be used. Such dyes are known. Non-limiting examples of biomolecules include DNA molecules, RNA molecules, synthetic oligonucleotides, peptides, polypeptides, proteins, enzymes, antibodies, receptors, polysaccharides, and viruses. Synthetic methods for coupling dye molecules and biomolecules to the disclosed second functional groups are well-known. In addition, Example 3 describes a synthetic method for coupling an oligonucleotide to an amine group. [0031] The disclosed functionalized metal oxides may be used in a variety of devices, either alone or as coatings on a substrate. In some embodiments, the functionalized metal oxides may be used in dye-sensitized solar cells. A basic dye- sensitized solar cell includes a transparent anode, an electrolyte, and a counter electrode. By way of example only, any of the disclosed functionalized metal oxides comprising a dye molecule may be used as a coating on a transparent substrate. The coated transparent substrate may form the anode in a dye-sensitized solar cell. Appropriate electrolytes and materials for counter electrodes are well-known. In other embodiments, the functionalized metal oxides may be used in biosensors. By way of example only, any of the disclosed functionalized metal oxides comprising a biomolecule may be used as a coating on a substrate. The binding of analyte molecules to the immobilized biomolecules may be detected by appropriate imaging techniques. Example 3, below, describes a metal oxide functionalized with oligonucleotides used as a coating over a glass substrate. The fluorescence from fluorescently-tagged complimentary oligonucleotides is used to detect the hybridization of the complimentary oligonucleotide to the immobilized oligonucleotide. Surface plasmon resonance is another imaging technique may be used to detect the binding of analyte molecules to substrates coated with the appropriate functionalized metal oxide and the appropriate metal films.
[0032] The present invention, thus generally described, will be understood more readily by reference to the following examples, which are provided by way of illustration and are not intended to be limiting of the present invention.
EXAMPLES
Example 1: Photochemical grafting of alkenes on anatase and rutile TiO? surfaces
[0033] Sample Preparation. Single crystalline rutile (001) and ( 110) TiO2 samples were purchased from MTI Corporation and a natural single crystalline anatase sample was obtained from Hardangervidda, Norway; natural crystals are typically acute dipyramids with large (101) faces and smaller (001) faces exposed. Epitaxial single crystalline anatase (001) films were grown by oxide-assisted molecular beam epitaxy on SrTiO3 substrate at Pacific Northwest National Laboratories. Nanocrystalline anatase samples were prepared using a previously published method similar to that of Gnanasekar et. al., /. Mater. Res. (2002), 1507. Titanium isopropoxide in 2-propanol was slowly hydrolyzed with the addition of water, then heated to 85 °C for 4 hours before being dried in an oven at 85 0C overnight. Agglomerated particles were dispersed using a Sonics VCX- 130 sonicator, and films were formed by drying aqueous suspensions of the particles on planar substrates. Single crystalline rutile samples and synthetic single crystalline anatase sample were cleaned by ultrasonication in acetone and methanol for 5 minutes and then exposed to ultraviolet light from a low-pressure mercury vapor quartz grid lamp (λ=254nm, 15 mW/cm2) for 15 min to remove any organic contamination. The natural single crystalline anatase sample was soaked in chloroform for 24 hours without sonication, followed by exposure to UV light in air to remove organic contamination.
[0034] Photochemical grafting of alkene molecules to TiO2 surfaces was accomplished by placing the TiO2 sample in a nitrogen-purged reaction chamber and adding ~5 μl of neat alkene, which wets the surface with a thin, liquid film. The samples were covered with a UV-transparent fused quartz window and illuminated with a low- pressure mercury vapor quartz grid lamp (λ=254nm, 15 mW/cm2) for the time periods mentioned below. After the photochemical reaction, single crystal TiO2 samples (except for natural single crystalline anatase) were ultra-sonicated in chloroform (5 min) and methanol (5 min) to remove any physisorbed reactants and dried with N2 gas before analysis. The natural single crystalline anatase TiO2 sample was rinsed in chloroform (30 min) and methanol (30 min), and nanocrystalline samples were rinsed in alternating portions of chloroform and methanol for 1 hour.
[0035] A number of alkenes were photochemically grafted onto the TiO2 samples, including the ω-unsaturated amine, 10-aminodec-l-ene, that had been protected with a trifluoroacetamide functional group. This alkene is referred to as "TFAAD." TFAAD has a vinyl group at one end for linking to the surface and a protected amine group at the other end that can be deprotected after surface attachment, yielding primary amine groups that can then be used for further functionalization, as further shown in Example 3 below. Other alkenes tested were another ω-unsaturated amine, J-butyloxycarbonyl (/-BOC) protected 10-aminodec-l-ene (referred to as t-BOCAAD), and 1-dodecene. FIG. 1 shows the structures of the three alkenes and illustrates the photochemical grafting of the alkenes on TiO2 surfaces. [0036] Characterization. The crystal structure of the nanocrystalline TiO2 was analyzed using X-ray Diffraction, (Scintag PAD V). The surface monolayers of all TiO2 samples were characterized using X-ray photoelectron spectroscopy (XPS) with a monochromatic Al Ka source (nominal 1486.6 eV photon energy). XPS spectra were recorded with an analyzer resolution of 0.1-0.2 eV, collecting electrons emitted at 45° from the surface normal. Atomic area ratios were determined by fitting raw data to Voigt functions after a baseline correction, and normalizing the peak area ratios by the corresponding atomic sensitivity factors (C = 0.296; F = 1.000; N = 0.477;O = 0.711; Ti(2p) = 1.798). Infrared reflection-absorption spectra were collected on a Bruker Vector 33 FTIR spectrometer equipped with a VeeMaxII variable angle specular reflectance accessory and a wire grid polarizer. Single crystal spectra were collected using s- polarized light at 30° incidence from the surface normal and nanocrystalline spectra were collected using p-polarized light at 60° incidence from the surface; 500 or 100 scans at 4 cm"1 resolution were collected for both background and sample. The spectra were baseline corrected for clarity.
[0037] UPS (ultraviolet photoemission spectroscopy) characterization was carried out using a He(I) emission lamp (21.2 eV) as an excitation source and an analyzer resolution of 0.05-0.1 eV. Samples were collected at a takeoff angle of 75° (from the surface plane) and biased -5.00 to -6.50 V with respect to the spectrometer to ensure that the vacuum level of the sample was higher in energy than that of the analyzer. Spectra at progressively higher biases were collected until the high binding energy cutoff was observed to converge; the spectrum obtained at the bias at which convergence was observed was used for the work function calculations. Energies were referenced to the sample Fermi level, which was determined by measurement of Ta clips directly in contact with the sample.
[0038] Photochemical Functionalization of Single Crystalline Rutile TiO2
Surfaces with TFAAD. FIG. 2A shows XPS spectra for the C(Is), O(ls) and Ti(2p) areas before and after functionalization of a single crystalline rutile (001) TiO2 surface with TFAAD. The cleaned rutile TiO2 surface shows only a small C(Is) peak at 284.6 eV, demonstrating that carbon contamination levels are low. The O(ls) spectrum shows a strong peak at 529.7 eV and a shoulder at 531.2 eV. The peak at 529.7 eV corresponds to the chemically distinct lattice oxygen and the shoulder at 531.2 eV arises from the absorbate oxygen atoms including carboxyl acid and hydroxyl groups. Since chemical shifts associated with changes in surface chemistry are of primary interest (rather than changes in band-bending), this lattice oxygen Is peak at 529.7 eV was used as a reference for other peaks. The titanium peaks at 458.4 eV and 464.4 eV are attributed to the 2p3/2 and 2pi/2 peaks of lattice titanium, respectively. After the photochemical functionalization step, the C(Is) spectrum shows a strong peak at 284.7 eV, a weak shoulder near 286.1 eV, and two smaller peaks at 288.6 and 293 eV. The peak at 284.7 eV comes from the alkyl chain of TFAAD. The peaks at 288.6 and 293 eV are attributed to the C atoms of the carbonyl (C=O) group and the -CF3 group, respectively, while the small shoulder at 286.1 eV is from the C atom adjacent to the N atom. The O(ls) spectrum shows a peak at 532.3 eV from the oxygen atoms of the trifluoroacetamide functional groups of TFAAD monolayers and a peak at 529.7 eV from the lattice oxygen attenuated by the TFAAD layer. The absolute Ti(2p) signals are also attenuated to approximately 5% of their original values by the grafted TFAAD layer.
[0039] The organic films were also characterized using Infrared Reflection
Absorption Spectroscopy (IRRAS). FIG. 2B shows the spectrum of a single-crystal rutile (001) TiO2 sample after grafting of TFAAD for 18 hours. The spectrum displays the C=O amide stretching peak at 1701 cm"1 and the three C-F stretching peaks of the trifluoroacetamide functional group at 1167, 1182 and 1205 cm"1. It also shows the symmetric and asymmetric CH2 stretching peaks of alkyl chain at 2858 and 2924 cm4, respectively.
[0040] Taken together, both XPS and FTIR data show successful grafting of
TFAAD onto a single crystalline rutile (001) TiO2 surface.
[0041] To determine whether the photochemical reaction with TFAAD depends on the crystal orientation of a single crystalline rutile TiO2 samples, a single-crystal rutile (110) TiO2 surface was functionalized with TFAAD for 6.5 hours and characterized using XPS. The XPS spectra (not shown) yielded an area ratio AF(ls/Aτi(2p), of 5.3, which is higher than the value of 2.1 observed on the single-crystal rutile (001) TiO2 surface functionalized with TFAAD for 7.5 hours. Thus, grafting occurs more readily on the (110) surface. The rutile (110) surface has both 5-fold coordinated and 6-fold coordinated Ti atoms; the six-coordinate Ti atoms are capped with bridging oxygens that link adjacent Ti sites. In contrast, the (001) surface is composed of the 4-fold coordinated Ti cations with two oxygens within the surface plane and the other two in the plane below. Because the bridging oxygens are only weakly bound to the surface, the (001) surface is calculated to be lower in energy than the (110) surface. Regarding the differences in reactivity between the surfaces, it is possible that UV illumination creates some in-plane oxygen vacancies on the (001) face, which in turn assists in the photoemission process.
[0042] Photochemical Functionalization of Single Crystalline and
Nanocrystalline Anatase TiO2 Surfaces with TFAAD. The anatase form of titanium dioxide is of interest because while less stable than rutile, this crystal structure shows increased performance for photovoltaic energy conversion and photocatalysis. To compare the reaction efficiency of anatase TiO2 samples with rutile ones, TFAAD molecules were grafted onto synthetic single crystal anatase (001) TiO2 thin films grown on SrTiO3 substrates, a natural single anatase (101) crystal, and nanocrystalline TiO2RImS prepared by dispersing anatase nanocrystals onto a substrate consisting of a glass suface with a thin coating of fluorinated tin oxide.
[0043] FIG. 3 A shows the C( 1 s), O( 1 s) and Ti(2p) XPS spectra for the synthetic single-crystal anatase (001) TiO2 thin film before and after photochemical grafting of TFAAD (data shown after 39 hours). XPS spectra (not shown) obtained on the natural single-crystal anatase (101) sample was qualitatively similar to the spectra obtained on rutile TiO2- However, a comparison of the XPS peak areas shows that the extent of reaction is significantly different on (001) and (101) crystal faces. The AF(is/Aτi(2p) ratio after a grafting time of 7 hours is 4.6 on the anatase (101) sample, but only AF(1S)/Aτi(2p) of 0.94 on the anatase (001) surface. Regarding these differences in reactivity, it is known that the most stable anatase (101) surface shows the highest concentration of oxygen- vacancy defects, while the anatase (001) surface typically shows a much lower concentration of oxygen vacancies. See Thomas, A.G.; Flavell, W.R.; Mallick, A.K.; Kumarasinghe, A.R.; Tsoutsou, D.; Khan, N.; Chatwin, C; Rayner, S.; Smith, G.C.; Stockbauer, R.L.; Warren, S.; Johal, T.K.; Patel, S.; Holland, D.; Taleb, A.; Wiame, F. Phys. Rev. B 2007, 75, 035105; Thomas, A.G.; Flavell, W.R.; Kumarasinghe, A.R.; Mallick, A.K.; Tsoutsou, D.; Smith, G.C.; Stockbauer, R.L.; Patel, S.; Gratzel, M.; Hengerer, R. Phys. Rev. B 2003, 67, 035110; and Herman, G.S.; Sievers, M.R.; Gao, Y. Phys. Rev. Lett. 2000, 84, 3354. This trend matches the photochemical reactivity of TFAAD on anatase (001) and (101) surfaces.
[0044] The XPS data and FTIR data (not shown) for the nanocrystalline TiO2 samples were nearly identical to those observed after grafting of TFAAD monolayers onto a single-crystal rutile (001) TiO2. FIG. 3B shows the O(ls) spectrum of nanocrystalline anatase TiO2 samples functionalized with TFAAD at three different illumination times (6, 24 and 29.5 hours). As the illumination time increases, the peak at 529.7 eV from the lattice oxygen decreases because of attenuation by the TFAAD monolayer, while the peak at 532.3 eV from the oxygen atoms of the trifluoroacetamide functional group increased.
[0045] Kinetic Studies of Photochemical Functionalization. To characterize the dependence of functionalization rate on the crystal structure (rutile vs. anatase), the reaction of TFAAD with the rutile (001) and anatase (001) single crystals was monitored, along with a nanocrystalline TiO2 film. The AF(iS)Mτi(2p) ratio was used as a measure of the extent of surface reaction. As shown in FIG. 4A, the AF(ls/Aτi(2p) ratio (circles) for the single-crystal rutile (001) TiO2 sample increased slowly at first and then reached a limiting value of 24.8 after 25 hours. The AF(IS)/ATΪ(2P) ratio obtained from the anatase (001) sample (squares) saturates at 15.3 after 30 hours. The fact that the limiting peak area ratio is obtained under conditions where XPS intensity from the underlying bulk TiO2 is still clearly observed proves that the photochemical surface functionalization self- terminates. Molecules react with the surface until some maximum coverage is reached, and then reaction with the surface stops. Single crystalline rutile (001) sample reaches this limiting coverage faster than single crystalline anatase (001). The difference in limiting values between these two samples suggests that the maximum density may also be slightly different. Both samples show an induction period at the beginning of the reaction, which may be related to the UV-induced formation of surface defects, such as oxygen vacancies.
[0046] FIGs. 4A and 4B show the reaction extent for nanocrystalline TiO2 samples (diamonds) exposed to TFAAD. FIG. 4B is an enlarged version of the region enclosed by the dotted rectangle in FIG. 4 A. The AF(is/Aτi(2P) ratio obtained from nanocrystalline anatase samples saturates at 3.0 after 35 hours, which is lower than the single crystalline rutile (001) and single crystalline anatase (001) samples. The nanocrystalline sample also shows an induction period for approximately 1 hour at the beginning of the reaction.
[0047] Photochemical Functionalization with Other Terminal Alkenes. Rutile
(001) and anatase (001) TiO2 samples were prepared and reacted with 1-dodecene, t- BOCAAD and TFAAD using 254 nm illumination for 22 hours. XPS spectra (not shown) indicated that all three molecules clearly graft to the respective surfaces. However, grafting of TFAAD led to a clear decrease in the O(ls) intensity due to scattering. Table 1 shows the Ac(ls>/Aτi(2p) ratio Of TiO2 (001) samples functionalized with these three molecules after correction with the atomic sensitivity factors.
Table 1. C(ls)/Ti(2p) area ratios of single crystalline rutile (001) and anatase (001) TiO2 samples functionalized with 1-dodecene, t-BOCAAD and TFAAD.
Figure imgf000018_0001
[0048] These data show that 1-dodecene has slightly lower reactivity than t-
BOCAAD, while TFAAD yields an anomalously high coverage that is consistent with multilayer formation. From a mechanistic standpoint, however, it is important to note that while a simple exciton-mediated reaction with the organic olefin group would predict that all three molecules would have similar reactivity, it is clear from these data that the terminal functional group (i.e., t-BOC and TFA) influences reactivity. Notably, density functional calculations showed that the three alkenes have quite different electron affinities. See Colavita, P.E.; Sun, B.; Tse, K. Y.; Hamers, RJ. /. Am. Chem. Soc. 2007, 129, 13554. The data presented here show that reactivity increases as electron affinity increases. TFAAD has the lowest-lying acceptor level (largest electron affinity) and yielded the highest reactivity, t-BOCAAD has a higher-lying acceptor level (smaller electron affinity) and yielded lower reactivity, while 1-dodecene has the highest-lying acceptor level and was the least reactive.
[0049] It is notable that even 1-dodecene, which does not contain any oxygen atoms, leads to a pronounced change in the O(ls) spectrum. A more detailed analysis of the O(ls) and Ti(2p) areas shows that grafting of 1-dodecene to the surface decreases the total integrated Ti(2p) and O(ls) intensities by nearly the same ratio. Thus, grafting of 1- dodecene does not significantly change the total amount of oxygen present, but does lead to a pronounced increase in the high-BE peak. This peak has often been attributed to titanol groups on the surface (Ti-OH), but a peak at nearly the same energy should be produced by Ti-O-C linkages, due to the similarity in electronegativity of hydrogen (Pauling electronegativity= 2.20) and carbon (electronegativity =2.55) .
[0050] The experiments described above show that single crystalline rutile and anatase TiO2 and nanocrystalline anatase TiO2 surfaces can be photochemically functionalized with organic alkenes by illumination with ultraviolet (UV) light at 254 nm (photon energy = 4.9 eV).
Example 2: Photochemical grafting of alkenes on TiOg coated glass substrates
[0051 ] Fluorinated tin oxide (FTO)-coated glass substrates with a resistivity of 15 ohm/sq were obtained from Hartford Glass Co. and were cleaned by rinsing with acetone and methanol. FTO-coated glass was used because of its electrical conductivity, but identical procedures would be expected to be work with uncoated (bare) glass. The substrates were coated with TiO2 by a two-step procedure. The samples were first immersed in a 5OmM aqueous TiCl4 solution for 30 min at 7O0C to prepare a dense layer of TiO2 on the surface.
[0052] To prepare nanoscrystalline TiO2 films, a paste containing 20nm TiO2 anatase particles (Ti-Nanoxide T20/SP, purchased from Solaronix, Inc.) was screen printed onto the glass through a 90 threads/cm polyester mesh and dried at 125°C for 5 min. The TiO2 was printed and dried two more times for a total of three layers, creating a 7-10 μm thick film. The films were then placed on a hot plate and heated to 3250C for 5 min, 3750C for 5 min, 4500C for 15 min, and finally to 5000C for 15 mins. before being allowed to cool to room temperature. A final UV-ozone cleaning was usually performed overnight before films were ready for use. This procedure produces glass surfaces coated with a nanocrystalline thin film of TiO2 particles. Such nanocrystalline films are porous and have a high internal surface area.
[0053] Non-porous TiO2 films were prepared by coating the glass surfaces with a thin film of titanium (by thermal or electron-beam evaporation) and subsequently oxidizing the Ti to TiO2 in air to produce flat TiO2 surfaces. [0054] To clean the samples, the TiO2 films on glass were exposed to UV light at
300 K for 1 h in air. The UV lamp generates ozone which oxidizes and removes any residual organic contamination.
[0055] Photochemical grafting of 1-dodecene was carried out as described in
Example 1. Briefly, ~ 5 μL of the alkene was dripped onto the TiO2-coated glass surface, covered with a quartz window, and illuminated using ultraviolet (UV) light (254 nm) from a low-pressure mercury lamp for 8-16 hours while maintaining a flow of nitrogen gas. Covalent attachment of the alkene to the TiO2 film was confirmed by infrared and Raman spectroscopy measurements. To test the thermal stability of the resulting molecular coating, samples were exposed to hot water for varying lengths of time, and the intensity of C-H stretching vibrations were monitored using IR spectroscopy. For the nanocrystalline TiO2 films, no degradation was detectable after more than 600 hours in water at 600C or after more than 180 minutes in water at 85°C.
Example 3: Biofunctionalization of alkenes grafted onto TiO? coated glass substrates
[0056] To link DNA to the TiO2-coated glass surfaces, TFAAD was grafted onto the surface using the procedure described in Example 2. The trifluoroacetamide (TFA) protecting group was removed by immersing the sample in a solution of 0.064 M NaBH4 in 10 ml anhydrous methanol at room temperature for 30 minutes, and then at 65°C for about 8 h. This procedure yielded a surface terminated with molecular monolayers bearing primary amine groups at the surface. To link DNA to the exposed amine groups, the amine-modified surfaces were exposed to a 1 mM solution of the heterobifunctional cross-linker sulfosuccinimidyl 4-(iV-maleimidomethyl) cyclohexane-l-carboxylate (SSMCC) in triethanolamine buffer solution (pH 7) for 2 hours. DNA oligonucleotides modified with a thiol group at the 5' end (DNAl) were then linked to this surface by applying 5 μL of 250 μM thio-oligonucleotide and keeping the sample in a humid reaction vessel for at least 6 h. Any remaining DNA was removed by thorough rinsing and soaking twice in HB (hybridization buffer) buffer for 10 min. The sequence of DNA oligonucleotide used to modify the surface was 5'-HS-GCT TAT CGA GCT TTC G-3' (DNAl). Next, the hybridization of the surface-bound strand was studied using single- stranded DNA oligonucleotides labeled with a fluorescein tag at the 5' end (5'-FAM-CG AAA GCT CGA TAA GC-3' (cDNAl)). cDNAl is a perfect complementary match to DNAl. All DNA strands were purchased from the Biotechnology Center of the University of Wisconsin-Madison.
[0057] The stability of the surface-bound oligonucleotides was evaluated by testing the amount of DNA that would hybridize to an DNAl -modified sample in 25 repeated cycles of hybridization and denaturation. In each cycle, the sample was exposed to the fluorescently labeled complement (cDNAl) for 5 min at room temperature in a humid chamber, rinsed in 2xSSPE buffer (0.2 M sodium phosphate buffer, pH ~ 7.4, with 0.3 M NaCl and 0.002 M EDTA) twice, 5 min each, and the intensity of fluorescence was measured. The sample was then denatured in an aqueous solution of 8.3 M urea for 4 min at 65°C, rinsed with distilled water, and rehybridized. This hybridization/denaturation process was repeated 25 times. The intensity was occasionally measured after denaturation, to ensure that this step removed all of the hybridized DNA between cycles. For the nanocrystalline TiO2 films, the resulting fluorescence measurements showed no significant loss of DNA even after 25 hybridization cycles. Similar results were obtained on non-porous TiO2 films.
Example 4: Photochemical grafting of alkenes on other metal oxide surfaces
[0058] Fluorine doped tin oxide (as a thin film on a glass substrate) and zinc oxide single crystal surfaces were used as purchased. Zinc oxide was purchased from MTI Corporation. Fluorine doped tin oxide coated glass was purchased from Hartford Glass, Inc. Zirconium oxide surfaces were fabricated by evaporating a thin film of zirconium (using electron-beam evaporation) onto a silicon wafer substrate and letter the Zr film oxidize at room temperature in air. Photochemical grafting of TFAAD on the metal oxide surfaces was conducted as described in Example 2. After completion of the reaction, the nonspecifϊcally bound alkene was removed by soaking the surfaces in organic solvents, typically methanol and chloroform.
[0059] FIG. 5 shows XPS spectra of TFAAD on three different zinc oxide crystal faces. The clean sample (i.e., control sample) shows the absence of fluorine and carbon peaks around 700 eV and 300 eV, respectively, while the three functionalized crystal faces show the growth of both fluorine and carbon peaks from covalently bound TFAAD.
[0060] FIG. 6 shows the IR spectrum of TFAAD on fluorine doped tin oxide. The spectrum includes the expected peaks for TFAAD, including the two peaks at -2900 cm"1 corresponding to CH2 stretching; the peak at 1800 cm"1 corresponding to C=O stretches; and the three peaks at -1200 cm"1 corresponding to the three C-F stretches.
[0061] FIG. 7 shows XPS spectra of TFAAD on zirconium oxide, bare zirconium oxide, and a sample exposed to TFAAD but no UV illumination ("dark control"). Only the functionalized surface shows a fluorine peak. In addition, the carbon peak is largest for the functionalized surface.
[0062] As will be understood by one skilled in the art, for any and all purposes, particularly in terms of providing a written description, all ranges disclosed herein also encompass any and all possible subranges and combinations of subranges thereof. Any listed range can be easily recognized as sufficiently describing and enabling the same range being broken down into at least equal halves, thirds, quarters, fifths, tenths, etc. As a non-limiting example, each range discussed herein can be readily broken down into a lower third, middle third and upper third, etc. As will also be understood by one skilled in the art all language such as "up to," "at least," "greater than," "less than," and the like include the number recited and refer to ranges which can be subsequently broken down into subranges as discussed above.
[0063] All publications, patent applications, issued patents, and other documents referred to in this specification are herein incorporated by reference as if each individual publication, patent application, issued patent, or other document were specifically and individually indicated to be incorporated by reference in its entirety. Definitions that are contained in text incorporated by reference are excluded to the extent that they contradict definitions in this disclosure.
[0064] For the purposes of this disclosure and unless otherwise specified, "a" or an means one or more.

Claims

WHAT IS CLAIMED IS:
1. A method of functionalizing a metal oxide, comprising: contacting at least one linker precursor comprising a first functional group to a metal oxide; and exposing the linker precursor change to UV light, wherein the first functional group covalently binds to the metal oxide via a UV light induced reaction.
2. The method of claim 1 , wherein the linker precursor comprises a substituted or unsubstituted alkene and the first functional group comprises a carbon- carbon double bond.
3. The method of claim 2, wherein the first functional group is a vinyl group.
4. The method of claim 1 , wherein the linker precursor comprises a substituted or unsubstituted alkyne and the first functional group comprises a carbon- carbon triple bond.
5. The method of claim 4, wherein the first functional group is a ethynyl group.
6. The method of claim 1, wherein the linker precursor further comprises a second functional group.
7. The method of claim 6, wherein the second functional group is selected from a protected or unprotected amine group or a protected or unprotected carboxyl group.
8. The method of claim 1, wherein the metal oxide comprises doped or undoped TiO2, ZnO, ZrO2, or SnO2.
9. The method of claim 1, wherein the metal oxide comprises doped or undoped TiO2.
10. The method of claim 1, wherein the metal oxide comprises a nanocrystalline, porous structure.
11. The method of claim 1 , wherein the metal oxide comprises a non-porous structure.
12. The method of claim 1, wherein the metal oxide is disposed over the surface of a substrate.
13. The method of claim 12, wherein the substrate is selected from glass or plastic.
14. The method of claim 6, further comprising reacting a dye molecule or a biomolecule with the second functional group.
15. The method of claim 14, comprising reacting a biomolecule with the second functional group, wherein the biomolecule is selected from DNA molecules, RNA molecules, synthetic oligonucleotides, peptides, polypeptides, proteins, enzymes, antibodies, receptors, polysaccharides, or viruses.
16. The method of claim 1, wherein the linker precursor comprises 1- dodecene, t-butyloxycarbonyl protected 10-aminodec-l-ene, or trifluoroacetic acid protected 10-aminodec-l-ene and the metal oxide comprises doped or undoped TiO2, SnO2, ZnO, or ZrO2.
17. A functionalized metal oxide comprising: a metal oxide; and at least one linker molecule covalently bound to the metal oxide, wherein the linker molecule comprises an anchoring group and the anchoring group is a carbon, a CH group, or a CH2 group.
18. The functionalized metal oxide of claim 17, wherein the linker molecule further comprises a functional group.
19. The functionalized metal oxide of claim 18, wherein the functional group is selected from a protected or unprotected carboxylic acid group or a protected or unprotected amine group.
20. The functionalized metal oxide of claim 17, wherein the linker molecule comprises a substituted or unsubstituted alkane, a substituted or unsubstituted alkene, or a substituted or unsubstituted alkyne.
21. The functionalized metal oxide of claim 17, wherein the metal oxide comprises doped or undoped TiO2, ZnO, ZrO2, or SnO2.
22. The functionalized metal oxide of claim 17, wherein the metal oxide comprises a nanocrystalline, porous structure.
23. The functionalized metal oxide of claim 17, wherein the metal oxide comprises a non-porous structure.
24. The functionalized metal oxide of claim 17, wherein the metal oxide is disposed over the surface of a substrate.
25. The functionalized metal oxide of claim 24, wherein the substrate is selected from glass or plastic.
26. The functionalized metal oxide of claim 18, further comprising a dye molecule covalently bound to the linker molecule via the functional group.
27. The functionalized metal oxide of claim 18, further comprising a biomolecule covalently bound to the linker molecule via the functional group, wherein the biomolecule is selected from DNA molecules, RNA molecules, synthetic oligonucleotides, peptides, polypeptides, proteins, enzymes, antibodies, receptors, polysaccharides, or viruses.
28. A dye-sensitized solar cell comprising the functionalized metal oxide of claim 26.
29. A biosensor comprising the functionalized metal oxide of claim 27.
30. The functionalized metal oxide of claim 17, wherein the linker molecule comprises 1-dodecane, t-butyloxycarbonyl protected 10-aminodec-l-ene, or trifluoroacetic acid protected 10-aminodec-l-ane, and the metal oxide comprises doped or undoped TiO2, SnO2, ZnO, or ZrO2.
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