(1) Shirk, J. S.; Lindle, J. R.; Bartoli, F. J.; Hoffman, C. A.; Kafafi, Z. H.; Snow, A. W. Off-resonant third-order optical nonlinearities of metal-substituted phthalocyanines. Appl. Phys. Lett. 1989, 55, 1287-1288.
(2) Margulis,V. A.; Tomilin, O. B. Electronic structure and third-order nonlinear optical response of conjugated polymer chains bearing periodically
arranged side groups. Synth. Met. 1996, 79, 207-214.
(3) Gomes, A. S. L.; Demenicis, L.; Petrov D. V.; DeAraujo, C. B.; DeMelo, C. P.; Maior, R. S. Time-resolved picosecond optical nonlinearity and all-optical kerr gate in poly (3-hexadecylthiophene). Appl. Phys. Lett. 1996, 69, 2166-2168.
(4) Jia, J. H.; Tao, X. M.; Li, Y. J.; Sheng, W. J.; Han, L.; Gao, J. R.; Zheng, Y. F. Synthesis and third-order optical nonlinearities of ferrocenyl Schiff base. Chem. Phys. Lett. 2011, 514, 114-118.
(5) Tutt, L. W.; Kost, A. Optical limiting performance of C60 and C70 solutions. Nature 1992, 356, 225-226.
(6) Fan, G. Y.; Song, Y. L.; Wang, Y. X.; Zhang, X. R.; Zhang, C.; Xin, X. Q. Nonlinear optical and optical limiting properties of a novel cluster
[WS4-100.Cu4I2(py)6]. Opt. Commun. 2000, 181, 97
(7) Perry, J. W.; Mansour, K.; Lee, I. Y. S.; Wu, X. L.; Bedworth, P. V.; Chen, C. T.; Ng, D.; Marder, S. R.; Miles, P.; Wada, T.; Tian, M.; Sasabe, H.
Organic optical limiter with a strong nonlinear absorptive response. Science 1996, 273, 1533-1536.
(8) Philip, R.; Kumar, G. R.; Mathur, P.; Ghose, S. Nonlinear optical properties of mixed Mo/Fe, mixed chalcogen clusters Cp2Mo2Fe2STe(CO)7and
Cp2-475.Mo2Fe2(μ3-S)(μ3-Te)(μ2-SPh)(μ3-H)(CO)5. Opt. Commun. 2000, 178, 469
(9) Zhang, C.; Song, Y. L.; Kuhn, F. E.; Xu, Y.; Xin, X. Q.; Fun, H. K.; Herrmann, W. A. The first assembly of a nest-shaped heterothiometallic cluster and a polyoxometalate anion-synthesis, characterization, and strong third-order nonlinear optical response. Eur. J. Inorg. Chem. 2002, 55-64.
(10) Zhang, C.; Song, Y. L.; Kuhn, F. E.; Wang, Y. X.; Fun, H. K.; Xin, X. Q. Study on a series of pentanuclear planar ‘open’ clusters: synthesis, characterization, strong third-order optical nonlinearities and superior optical limiting properties. J. Mater. Chem. 2002, 12, 239-248.
(11) Zhang, C.; Song, Y. L.; Xu, Y.; Fun, H. K.; Fan, G. Y.; Wang, Y. X.; Xin, X. Q. Studies on two interesting microporous polymeric clusters
{[Et4N]2[MS4Cu4(CN)4]}n (M = Mo or W) with three-dimensional open frameworks: synthesis, structural characterization, strong optical
non-linearities and large optical limiting properties. J. Chem. Soc., Dalton Trans. 2000, 2823-2829.
(12) Ge, P.; Tang, S. H.; Ji, W.; Shi, S.; Hou, H. W.; Long, D. L.; Xin, X. Q.; Lu, S. F.; Wu, Q. J. Alteration of nonlinear refraction by mixing clusters
[WOS3Cu3I(py)5] and [MoOS3Cu3I(py)5]. J. Phys. Chem. B 1997, 101, 27-31.
(13) Ji, W.; Shi, S.; Du, H. J.; Ge, P.; Tang, S. H.; Xin, X. Q. Optical power limiting with solutions of hexagonal prism cage shaped transition-metal cluster Mo2Ag4S8(PPh3)4. J. Phys. Chem. B 1995, 99, 17297-17301.
(14) Holm, R. H. Centenary lecture, metal clusters in biology: quest for a synthetic representation of the catalytic site of nitrogenase. Chem. Soc. Rev.
1981, 10, 455-490.
(15) Zheng, F. K.; Huang, J. S.; Huang, X. Y.; Zhang, Q. E. A novel cluster [V2(AgPPh3)6S6O2]·2CH2Cl2 containing a cubane-like array of six silver and two vanadium atoms. Chin. J. Struct. Chem. 1996, 15, 102-105.
(16) Do, Y.; Simhon, E. D.; Holm, R. H. Derivatives of tetrathiovanadate (V): synthesis of the linear heterometallic Fe(μ2-S)2V(μ2-S)2Fe core and the
structures of tetrathiovanadate(3-) ion ([VS4]3-) and tetrachlorotetrathiodiferratevanadate(3-) ion ([VFe2S4Cl4]3-). J. Am. Chem. Soc. 1983, 105,
6731-6732.
(17) Chen, D. G.; Zhang, H. H.; Yu, X. F. Synthesis and crystal structure of VS4Cu6Py8I3. Chin. J. Struct. Chem. 2003, 22, 591-594.
(18) Liu, Q. T.; Yang, Y.; Huang, L. R.; Wu, D. X.; Kang, B. S.; Chen, C. N.; Deng, Y. H.; Lu, J. X. Study on an assembly system including
tetrathiovanadate. Syntheses and structural characterizations of V2Cu2S4 cubane-like clusters and VS4Cu4 bimetallic aggregates. Inorg. Chem.
1995, 34. 1884-1893.
(19) Muller, A.; Schimanski, J.; Bogger, H. (PPh3)4Cu3(VS4), ein neuartiger thiovanadato-komplex mit t-förmiger anordnung der metal-atome.
Z. Anorg. Allg. Chem. 1987, 544, 107-114.
(20) Zhang, H. H.; Yu, X. F.; Yang, R. R.; Zheng, F. K.; Huang, L. Y.; Zhuo, R. P. Structural studies of [V2S6O2(CuPPh3)4(CuMeCN)2]·2CH2Cl2·2PrOH.
Chin. J. Struct. Chem. 1996, 15, 353-357.
(21) Zhang, Y.; Tang, G. D.; Zhao, J. Y.; Jiang, Z. J. Hexakis(2-amino-4-methylpyridine-κN1)-dioxidohexa-μ4-sulfido-hexacopper(I)-divanadium(V).
Acta Cryst. E 2008, 64, m1217-m1217.
(22) Said, A. A.; Sherk-Bahae, M.; Hagan, D. J.; Wei, T. H.; Wang, J.; Young, J.; Stryland, E. W. V. Determination of bound-electronic and free-carrier
nonlinearities in ZnSe, GaAs, CdTe, and ZnTe. J. Opt. Soc. Am. B 1992, 9, 405-414.
(23) Sheldrick, G. M. SHELXTL-PC (version 5.1), Siemens Analytical Instruments, Inc., Madison, WI 1997.
(24) Sheik-Bahae, M.; Hutchings, D. C.; Hagan, D. J.; Stryland, E. W. V. Dispersion of bound electron nonlinear refraction in solids. IEEE J. Quantum
Electron. 1991, 27, 1296-1309.
(25) Zheng, F. K.; Cui, Y.; Huang, J. S.; Zhang, H. H.; Gao, R. P.; Yu, X. F. Syntheses of V-Cu-S clusters at low heating temperature crystal structure of
VS(CuPPh3)5X2 (X = Br, I). Chin. J. Struct. Chem. 1998, 17, 463-470.
(26) Sherk-Bahae, M.; Said, A. A.; Wei, T. H.; Hagan, D. J.; Stryland, E. W. V. Sensitive measurement of optical nonlinearities using a single beam.
J. Quantum Electron. 1990, 26, 760-769.
(27) Sherk-Bahae, M.; Said, A. A.; Stryland, E. W. V. High-sensitivity, single-beam n2 measurements. Opt. Lett. 1989, 14, 955-957.
(28) Zhang, C.; Song, Y. L.; Fung, B. M.; Xue, Z. L.; Xin, X. Q. A new approach to superior optical limiting materials-planar ‘open’
heterothiometallicclusters. Chem. Commun. 2001, 843-844. |