Диссертация (1145320), страница 27
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1968. Т. 39. № 12. С. 5651–5658.99. Fisher A.J., Hayes W., Stoneham A.M. Structure of the self-trapped exciton inquartz // Phys. Rev. Lett. 1990. Т. 64. № 22. С. 2667–2670.100. Lushchik C.B., Vitol I.K., Élango M.A. Decay of electronic excitations intoradiation defects in ionic crystals // Uspekhi Fiz. Nauk. 1977. Т. 122. № 6. С. 223.101. Streltsov A.M., Borrelli N.F. Study of femtosecond-laser-written waveguides inglasses // J.
Opt. Soc. Am. B. 2002. Т. 19. № 10. С. 2496.102. Guo H. и др. The pulse duration dependence of femtosecond laser inducedrefractive index modulation in fused silica // J. Opt. A Pure Appl. Opt. 2004. Т. 6. № 8.198С. 787–790.103. Zhang J. и др. 157-nm laser-induced modification of fused-silica glasses // Proc.SPIE. 2001. Т. 4274. С.
125–132.104. Golant K.M., Tugushev V. V. A mechanism for photoinduced electronicreconstruction of the oxygen vacancy in doped quartz glass and its characteristics //Phys. Solid State. 1999. Т. 41. № 6. С. 928–933.105. Ponader C.W., Schroeder J.F., Streltsov A.M. Origin of the refractive-indexincrease in laser-written waveguides in glasses // J. Appl. Phys. 2008. Т. 103. № 6.
С.63516.106. Reichman W.J. и др. A spectroscopic comparison of femtosecond-laser-modifiedfused silica using kilohertz and megahertz laser systems // J. Appl. Phys. 2006. Т. 99. №12. С. 123112.107. Reichman W.J. и др. Spectroscopic characterization of different femtosecond lasermodification regimes in fused silica // J.
Opt. Soc. Am. B. 2007. Т. 24. № 7. С. 1627.108. Chan J.W. и др. Modification of the fused silica glass network associated withwaveguide fabrication using femtosecond laser pulses // Appl. Phys. A Mater. Sci.Process. 2003. Т. 76. № 3. С. 367–372.109. Bhardwaj V.R. и др. Optically Produced Arrays of Planar Nanostructures insideFused Silica // Phys.
Rev. Lett. 2006. Т. 96. № 5. С. 57404.110. Shimotsuma Y. и др. Self-Organized Nanogratings in Glass Irradiated byUltrashort Light Pulses // Phys. Rev. Lett. 2003. Т. 91. № 24. С. 247405.111. Guizard S. и др. Time-resolved studies of carriers dynamics in wide band gapmaterials // Nucl. Instruments Methods Phys.
Res. Sect. B Beam Interact. with Mater.Atoms. 1996. Т. 116. № 1–4. С. 43–48.112. Saeta P.N., Greene B.I. Primary relaxation processes at the band edge of <mathdisplay=“inline”> <mrow> <msub> <mrow> <mi mathvariant=“normal”>SiO</mi></mrow> <mrow> <mn>2</mn> </mrow> </msub> </mrow> </math> // Phys. Rev.Lett.
1993. Т. 70. № 23. С. 3588–3591.113. Tien A.-C. и др. Short-Pulse Laser Damage in Transparent Materials as a Functionof Pulse Duration // Phys. Rev. Lett. 1999. Т. 82. № 19. С. 3883–3886.199114. Lenzner M. и др. Femtosecond Optical Breakdown in Dielectrics // Phys. Rev.Lett. 1998.
Т. 80. № 18. С. 4076–4079.115. Stuart B.C. и др. Nanosecond-to-femtosecond laser-induced breakdown indielectrics // Phys. Rev. B. 1996. Т. 53. № 4. С. 1749–1761.116. Stathis J.H., Kastner M.A. Photoinduced paramagnetic defects in amorphoussilicon dioxide // Phys. Rev. B. 1984. Т. 29. № 12.
С. 7079–7081.117. Hirao K., Miura K. Writing waveguides and gratings in silica and related materialsby a femtosecond laser // J. Non. Cryst. Solids. 1998. Т. 239. № 1–3. С. 91–95.118. Ashcroft V.N.W., Mermin N.D. Solid State Physics // Phys. unserer Zeit. 1978. Т.9. № 1. С. 33.119. Kreibig U., Vollmer M. Optical Properties of Metal Clusters. Berlin, Heidelberg:Springer Berlin Heidelberg, 1995.120. Schaaff T.G. и др.
Isolation and Selected Properties of a 10.4 kDaGold:Glutathione Cluster Compound // J. Phys. Chem. B. 1998. Т. 102. № 52. С.10643–10646.121. Kubo R. Electronic Properties of Metallic Fine Particles. I. // J. Phys. Soc. Japan.1962. Т. 17. № 6. С. 975–986.122. Campbell C.T. The Effect of Size-Dependent Nanoparticle Energetics on CatalystSintering // Science (80-. ). 2002. Т. 298. № 5594. С. 811–814.123. Wallace W.T., Whetten R.L. Coadsorption of CO and O 2 on Selected GoldClusters: Evidence for Efficient Room-Temperature CO 2 Generation // J.
Am. Chem.Soc. 2002. Т. 124. № 25. С. 7499–7505.124. Sanchez A. и др. When Gold Is Not Noble: Nanoscale Gold Catalysts // J. Phys.Chem. A. 1999. Т. 103. № 48. С. 9573–9578.125. Zheng J. и др. Different sized luminescent gold nanoparticles // Nanoscale. 2012.Т. 4. № 14. С. 4073.126. Zheng J., Zhang C., Dickson R.M. Highly Fluorescent, Water-Soluble, SizeTunable Gold Quantum Dots // Phys. Rev.
Lett. 2004. Т. 93. № 7. С. 77402.127. Lindstrom C.D., Zhu X.-Y. Photoinduced Electron Transfer at Molecule−MetalInterfaces // Chem. Rev. 2006. Т. 106. № 10. С. 4281–4300.200128. Zhu X.-Y. Charge Transport at Metal−Molecule Interfaces: A Spectroscopic View// J. Phys. Chem. B. 2004. Т. 108. № 26. С.
8778–8793.129. Nitzan A. Electron Transport in Molecular Wire Junctions // Science (80-. ). 2003.Т. 300. № 5624. С. 1384–1389.130. Nitzan A. Electron transmission through molecules and molecular interfaces //Annu. Rev. Phys. Chem. 2001. Т. 52. № 1. С. 681–750.131. Zhao W. и др. Efficient Degradation of Toxic Organic Pollutants with Ni 2 O 3/TiO 2 - x B x under Visible Irradiation // J. Am.
Chem. Soc. 2004. Т. 126. № 15. С.4782–4783.132. Hirakawa T., Whitesell J.K., Fox M.A. Effect of Temperature and Pressure in thePhotocatalytic Oxidation of n -Octanol on Partially Desilanized Hydrophobic TiO 2Suspended in Aerated Supercritical CO 2 † // J. Phys. Chem. B.
2004. Т. 108. № 29. С.10213–10218.133. Lewis N.S. Frontiers of research in photoelectrochemical solar energy conversion// J. Electroanal. Chem. 2001. Т. 508. № 1–2. С. 1–10.134. Gould I.R. и др. Two-Electron Sensitization: A New Concept for Silver HalidePhotography // J. Am. Chem. Soc. 2000. Т. 122.
№ 48. С. 11934–11943.135. Liu D., Hug G.L., Kamat P. V. Photochemistry on Surfaces. Intermolecular Energyand Electron Transfer Processes between Excited Ru(bpy)32+ and H-Aggregates ofCresyl Violet on SiO2 and SnO2 Colloids // J. Phys. Chem. 1995. Т. 99. № 45. С.16768–16775.136. Katano S. и др.
Reversible Control of Hydrogenation of a Single Molecule //Science (80-. ). 2007. Т. 316. № 5833. С. 1883–1886.137. Hess W.P. и др. Laser Control of Desorption through Selective Surface Excitation// J. Phys. Chem. B. 2005. Т. 109. № 42. С. 19563–19578.138. Wang J. Real-Time Electrochemical Monitoring: Toward Green AnalyticalChemistry // Acc. Chem. Res. 2002.
Т. 35. № 9. С. 811–816.139. Pereverzev Y. V. и др. The Two-Pathway Model for the Catch-Slip Transition inBiological Adhesion // Biophys. J. 2005. Т. 89. № 3. С. 1446–1454.140. Kilin D.S. и др. Ab initio study of exciton transfer dynamics from a core–shell201semiconductor quantum dot to a porphyrin-sensitizer // J.
Photochem. Photobiol. AChem. 2007. Т. 190. № 2–3. С. 342–351.141. Prezhdo O. V., Duncan W.R., Prezhdo V. V. Photoinduced electron dynamics atthe chromophore–semiconductor interface: A time-domain ab initio perspective // Prog.Surf. Sci. 2009. Т. 84. № 1–2. С. 30–68.142. Grätzel M. Dye-sensitized solar cells // J. Photochem. Photobiol. C Photochem.Rev. 2003. Т. 4. № 2. С. 145–153.143. Memming R. Electrochemical Systems // Semiconductor Electrochemistry.Weinheim, Germany: Wiley-VCH Verlag GmbH, 2007. С.
46–60.144. Anderson N.A., Lian T. Ultrafast electron transfer at the molecule-semiconductornanoparticle interface // Annu. Rev. Phys. Chem. 2005. Т. 56. № 1. С. 491–519.145. Duncan W.R., Prezhdo O. V. Temperature Independence of the PhotoinducedElectron Injection in Dye-Sensitized TiO 2 Rationalized by Ab Initio Time-DomainDensity Functional Theory // J. Am. Chem.
Soc. 2008. Т. 130. № 30. С. 9756–9762.146. Kondov I., Wang H., Thoss M. Computational study of titanium (IV) complexeswith organic chromophores // Int. J. Quantum Chem. 2006. Т. 106. № 6. С. 1291–1303.147. Duncan W.R., Prezhdo O. V. Electronic Structure and Spectra of Catechol andAlizarin in the Gas Phase and Attached to Titanium // J. Phys. Chem. B. 2005.
Т. 109.№ 1. С. 365–373.148. Henry W. и др. The Early Picosecond Photophysics of Ru(II) PolypyridylComplexes: A Tale of Two Timescales // J. Phys. Chem. A. 2008. Т. 112. № 20. С.4537–4544.149. Asbury J.B. и др. Parameters Affecting Electron Injection Dynamics fromRuthenium Dyes to Titanium Dioxide Nanocrystalline Thin Film † // J. Phys. Chem. B.2003. Т.
107. № 30. С. 7376–7386.150. McCusker J.K. Femtosecond Absorption Spectroscopy of Transition MetalCharge-Transfer Complexes // Acc. Chem. Res. 2003. Т. 36. № 12. С. 876–887.151. Duncan W.R., Craig C.F., Prezhdo O. V. Time-Domain ab Initio Study of ChargeRelaxation and Recombination in Dye-Sensitized TiO 2 // J. Am. Chem. Soc. 2007.
Т.129. № 27. С. 8528–8543.202152. Parandekar P. V., Tully J.C. Mixed quantum-classical equilibrium // J. Chem.Phys. 2005. Т. 122. № 9. С. 94102.153. Duncan W.R., Stier W.M., Prezhdo O. V. Ab Initio Nonadiabatic MolecularDynamics of the Ultrafast Electron Injection across the Alizarin−TiO 2 Interface // J.Am. Chem. Soc. 2005. Т.