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R 1 REFERENCES [1] Bloembergen, N., Nonlinear Optics, fourth ed., World Scientific, Singapore, New Jersey, London, Hong Kong, 1996. [2] Franken, P.A., Hill, A.E., Peters, C.W., Weinreich, G., Generation of optical harmonics, Phys. Rev. Lett., 7 (1961) 118-119. [3] Williams, D. J., Large optical nonlinearities, Angew. Chem. Int. Ed. Engl., 23 (1984) 690-703. [4] Boyd, R.W., Nonlinear Optics: Academic press, New York, 1992. [5] Franken, P.A., Ward, J.F., Optical Harmonics and nonlinear phenomena, Rev. Mol. Phys. 35 (1963) 23- 39. [6] Shen, Y.R., The Principles of Nonlinear Optics: Wiley, New York, 1984. [7] Bergman, J. G., Boyd, A., Ashkin, S., Kurtz, K., New nonlinear optical materials: Metal oxides with nonbonded electrons, J. Appl. Phys., 40 (1969) 2860- 2862. [8] Prasad, P. N. Reinhardt, B. A., Is there a role for organic materials chemistry? Chem. Mater., 2 (1990) 660-669. [9] Zernike, F. Midwinter, Applied Nonlinear Optics: Wiley, New York, 1973. [10] Prasad, P.N. Williams, D.J., Introduction to Nonlinear Optical Effects in Molecules and Polymers: Wiley, New York, 1990. [11] Yariv, A., Quantum Electronics: Wiley, New York, 1975, pp. 419. [12] Brown, F., Matstuoka, M., Effect of adsorbed surface layers on second - harmonic generation from silver, Phys. Rev., 185 (1969) 985-987. [13] Brown, F., Parks, R.E., Sleeper, A.M., Nonlinear optical reflection from a metallic boundary, Phys. Rev. Lett., 14 (1965) 1029-1031.

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REFERENCES

[1] Bloembergen, N., Nonlinear Optics, fourth ed., World Scientific,

Singapore, New Jersey, London, Hong Kong, 1996.

[2] Franken, P.A., Hill, A.E., Peters, C.W., Weinreich, G., Generation of

optical harmonics, Phys. Rev. Lett., 7 (1961) 118-119.

[3] Williams, D. J., Large optical nonlinearities, Angew. Chem. Int. Ed.

Engl., 23 (1984) 690-703.

[4] Boyd, R.W., Nonlinear Optics: Academic press, New York, 1992.

[5] Franken, P.A., Ward, J.F., Optical Harmonics and nonlinear phenomena,

Rev. Mol. Phys. 35 (1963) 23- 39.

[6] Shen, Y.R., The Principles of Nonlinear Optics: Wiley, New York,

1984.

[7] Bergman, J. G., Boyd, A., Ashkin, S., Kurtz, K., New nonlinear optical

materials: Metal oxides with nonbonded electrons, J. Appl. Phys., 40

(1969) 2860- 2862.

[8] Prasad, P. N. Reinhardt, B. A., Is there a role for organic materials

chemistry? Chem. Mater., 2 (1990) 660-669.

[9] Zernike, F. Midwinter, Applied Nonlinear Optics: Wiley, New York,

1973.

[10] Prasad, P.N. Williams, D.J., Introduction to Nonlinear Optical Effects

in Molecules and Polymers: Wiley, New York, 1990.

[11] Yariv, A., Quantum Electronics: Wiley, New York, 1975, pp. 419.

[12] Brown, F., Matstuoka, M., Effect of adsorbed surface layers on

second - harmonic generation from silver, Phys. Rev., 185 (1969)

985-987.

[13] Brown, F., Parks, R.E., Sleeper, A.M., Nonlinear optical reflection

from a metallic boundary, Phys. Rev. Lett., 14 (1965) 1029-1031.

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R 2

[14] Tarasov, L.V., Laser Age in Optics: Mir Publishers, Moscow, 1981.

[15] Laud, B.B., Lasers and Nonlinear Optics, New York: Wiley (1995).

[16] Squaldino, G., Vaccari, G., Aquilano, D., Rubbo, M., Growth Kinetics

of eposimate (MgSO4:7H2O), J. Cryst. Growth, 83 (1987) 523- 527.

[17] Armstrong, J.A., Bloembergen, N., Ducing, J., Pershan, P.S., Interactions

between light waves in nonlinear dielectric, Phys. Rev., 127 (1962)

1918-1939.

[18] Alfano, R.R., Shapiro, S.L., Emission in the region 4000 to 7000Å via

four - photon coupling in glass, Phys. Rev. Lett., 24 (1970) 584-587.

[19] Stolen, R.H., Bjoekholm, J.E., Ashkin, A., Phase - matched three wave

mixing in silica fiber optical wave guides, Appl. Phys. Lett., 24 (1974)

308-310.

[20] Agarwal, G.P., Nonlinear fiber optics, (Academic, San Diego), 1989.

[21] Levenson, M.D., Shelby, R.M., Aspect, A., Reid, M., Walls, D.F.,

Generation and detection of squeezed states of light by nondegenerate

four - wave mixing in an optical fibre, Phys. Rev., A32 (1985) 1550-1562.

[22] Shelby, R.M., Levenson, M.D., Perlmutter, S.H., DeVoe, R.G., Walls, D.F.,

Broad - band parametric deamplification of quantum noise in an

optical fiber, Phys. Rev. Lett., 57 (1986) 691- 694.

[23] Bar-Joseph, I., Friesem, A.A., Waarts, R.G., Yaffe, H.H., Parametric

interaction of a modulated wave in a single mode fiber, Opt. Lett.,

11 (1986) 534-536.

[24] Ohashi, M., Kitayame, K., Ishida, Y., Uchida, N., Phase- matched light

amplification by three - wave mixing process in a birefrigent fiber

due to externally applied stress, Appl. Phys. Lett., 41 (1982) 1111-1113.

[25] Bass, M., Fradin, D.W., Surface and bulk damage statistics and

identification of intense breakdown processes, IEEE J. Quant. Elect.,

9 (1973) 890-896.

Page 3: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 3

[26] Beaudin, A.M.R. Song, N.H., Bai, Y.W., Men, L.Q., Gao, J.P., Wang, Z.Y.,

Szablewski, M., Cross, G., Wenseleers, W., Campo, J., Goovaerts, E.,

Sythensis and properties of zwitterionic nonlinear optical

chromophores with large hyperpolarizability for poled polymer

applications, Chem. Mater., 18 (2006) 1079.

[27] Kitamura, K., Yamamoto, J.K., Iyi, N., Kimura, S., Hayashi, T.,

Stoichiometric LiNbO3 single crystal growth by double crucible

Czochralski method using automatic powder supply system, Japan J.

Appl. Phys., 13 (1974) 1362-1365.

[28] Robert, R., Justin Raj, C., Krishnan, S., Jerome Das, S., Growth,

Theoretical and Optical studies on Potassium dihydrogen phosphate

(KDP) single crystals by modified Sankaranaryanan Ramasamy

(MSR) method, Physica B, 405 (2010) 20-24.

[29] Becker, P., Borate materials in nonlinear optics, Adv. Mater.,

10 (1998) 979-992.

[30] Roth, M., Tseitlin, M., Growth of large size high optical quality KTP-

type crystals, J. Cryst. Growth, 3120 (2010) 1059-1064.

[31] Chen, C.T., Wu, Y.C., Jiang, A.D., Wu, B.C., You, G.M., Li, R.K.,

Lin, S.J., New nonlinear - Optical crystal LiB3O5, J. Opt. Soc. Am.,

B6 (1989) 616- 621.

[32] Wu, Y.C., Sasaki, T., Nakai, S., Yokotani, A., Tang, H., Chen, C.,

CsB3O5 – a new nonlinear optical crystal, Appl. Phy. Lett., 62 (1993)

2614-2615.

[33] Mori, Y., Kuroda, I., Nakajima, S., Sasaki, T., Nakai, S., Nonlinearoptical

properties of Cesium lithium borate, Jpn. J. Appl. Phys., 34 (1995)

296-298.

[34] Tu, J.M., Keszler, D.A., Cs LiB6O10: a noncentrosymmetric plyborate,

Mater. Res. Bull., 30 (1995) 209-215.

Page 4: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 4

[35] Chen, C.T., Wang, Y.B., Xia, Y.N., Wu, B.C., Tang, D.Y., Wu, K.C.,

Zeng, W.R., Yu, L.H., Mei, L.F., New development of nonlinear

optical crystals for the ultraviolet region with molecular engineering

approach, J. Appl. Phys., 77 (1995) 2268-2272.

[36] Chen, C.T., Luo, S.Y., Wang, X.Y., Wen, X.H., Wu, H.X., Zang, X.,

Xu, Z.Y., Deep UV nonlinear optical crystal: RbBe2(BO3)F2, J. Opt.

Soc. Am., B26 (2009) 1519-1525.

[37] Ashkin, A., Boyd, G.D., Dziedzic, J.M., Smith, R.G., Ballman, A.A.,

Levinstein, J.J., Nassau, K., Optically - Induced refractive index

inhomogeneities in LiNbO3 and LiTaO3, Appl. Phys. Lett., 9 (1966) 72-74.

[38] Chang, L.L., Ploog, K., Nijhoff, Molecular Beam Epitaxy and

Heterostructures, (Eds. Netherlands), 1985.

[39] Fan, Y.X., Eckardt, R.C., Byer, R.L., Route, R.K., Fiegeloon, R.S.,

AgGaS2 infrared parametric oscillator , Appl. Phys. Lett., 45 (1984)

313-315.

[40] Balu, W., Organic materials for nonlinear optical devices, Phys.

Technol., 18 (1987) 250-257.

[41] Dehu, C., Meyers, F., Bredas, J.L., Donor - acceptor diphenylacetylenes:

geometric structure, electronic structure and second - order nonlinear

optical properties, J. Amer. Chem. Soc., 115 (1993) 6198-6206.

[42] Prasad, P.N., Ulrich, D.R., Nonlinear optical and Electro active

polymer, (Eds., Plenum), New York, 1988.

[43] Khanarian, G., Nonlinear optical properties of organic molecules,

(Ed., SPIE, Bellingham, WA, USA), 1988.

[44] Messier, J., Kajar, F., Prasad, P., Ulrich, D.R., Nonlinear optical effects

in Organic Polymers, Kluwer Academic Publishers, Dordrecht, 1989.

[45] Chemla, D.S., Zyss, J., Nonlinear optical properties of organic

molecules and crystals, (Eds., Academic Press), New York, 1987.

Page 5: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 5

[46] Nalwa, H.S., Miyata, S., Nonlinear optics of organic molecules and

polymers, (Eds., CRC Press), Boca Raton, 1997.

[47] Lalama, S.J., Garito, A.F., Origin of the nonlinear second order

optical susceptibilities of organic system, Phy. Rev., A20 (1997)

1179-1194.

[48] Newman, P.R., Warren, L.F., Cunningham, P., Chang, T.Y., Copper, D.E.,

Burdge, G.L., Polak dingels, P., Lowe-Ma, C.K., Growth kinetics of

zinctris (thiourea) sulphate (ZTS) single crystals”, Materials

Research society symposium Proceedings, 173 (1990) 557-561.

[49] Xing, G., Jian, M., Shao, Z., Xu, D., Bis (thiourea) cadmium chloride

(BTCC) a novel nonlinear optical crystal of organometallic complex,

Chin. J. Lasers, 14 (1987) 302- 308.

[50] Velsko, S., Laser Program Annual Report, Lawrence UCRL-JL

1050000, Lawrence Livermore National Laboratory, Livermore, CA,

1990.

[51] Xu, D., Jiang, M., Tan, Z., A new phase matchable nonlinear optical

crystal L-arginine phosphate monohydrate, Acta. Chem. Sinica,

41 (1983) 570-573.

[52] Eimerl, D., Velsko, S., Davis, L., Wang, E., Loiacona, G., Kennedy, G.,

Deuterated L-arginine phosphate: a new efficient nonlinear crystal,

IEEE J. Quantum Electron. QE-25 (1989) 179-193.

[53] Min-hua Jiang, Qi Fang, Organic and semiorganic nonlinear optical

materials, Adv. Mater., 11 (1999) 1147-1151.

[54] Wang, X.Q., Xu, D., Lu, M.K., Yuan, D.R., Huang, J., Lu, G.W.,

Zhang, G.H., Guo, S.Y., Ning, H.X., Duan, X.L., Chen, Y., Zhou, Y.Q.,

A systematic spectroscopic study of four bimetallic thiocyanates of

chemical formula AB (SCN)4 and A Hg (SCN)4 (A= Zn, Cd, Mn) as

UV nonlinear optical crystal materials, Optical Materials, 23 (2003)

335-341.

Page 6: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 6

[55] Aggarwal, M.D., Choi, J., Wang, W.S., Bhat, K., Lal, R.B., Angela

Shield, D., Benjamin, G. Penn, Donald O. Frazier, Solution growth of a

novel nonlinear optical material: L-Histidine tetrafluoroborate,

J. Cryst. Growth, 204 (1999) 179-182.

[56] Pricilla Jeyakumari, A., Ramajothi, J., Dhanuskodi, S., Structural and

microhardness studies of a NLO material - bisthiourea cadmium

chloride, J. Cryst. Growth, 269 (2004) 558-564.

[57] Marcy, H.O., Warren, L.F., Webb, M.S., Ebbers, C.A., Velsko, S.P.,

Kennedy, G.C. Catella, G.C., Second - harmonic generation in zinc

tris (thiourea) sulphate, Appl. Opt., 31 (1992) 5051-5060.

[58] Giordmaine, J.A., Miller, R.C., Tunable coherent parametric

oscillation in LiNbO3 at optical frequencies, Phys. Rev. Lett.,

14 (1965) 973-976.

[59] Yariv, A., Quantum electronics, Wiley, New York, 1989.

[60] Wilson, J., Hawkes, J.F.B., Opto electronics: An introduction,

Prentice Hall of India Pvt. Lim., New Delhi, 1999.

[61] Schunemann, P.G., Schepler, K.L., Budni, P.A., Nonlinear frequency

conversion performance of AgGaSe2, ZnGeP and CdGeAS2, MRS

Bulletin 23 (1998) pp. 45.

[62] Margulis, W., Osterberg, U., Four - Photon fiber laser, Opt. Lett.,

12 (1987) 519-521.

[63] Mersmann, A., Crystal growth from solution, Trans. I Chem. E.,

74 (1996) A812-A820.

[64] Weissbuch, I., Lahav, M., Leiserowitz, L., Toward stereochemical

control, Monitoring and understanding of crystal Nucleation,

Crystal Growth & Design, 3 (2003) 125-150.

[65] Boistelle, R., Astier, J.P., Crystallization mechanism in solution,

J. Cryst. Growth, 90 (1988) 14-30.

Page 7: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 7

[66] Auer, S., Frenkel, D., Supression of crystal nucleation in polydisperse

colloids due to increase of the surface free energy, Nature,

413 (2001) 711-713.

[67] Sangwal, K., Growth kinetics and surface morphology of crystals

grown from solutions: recent observations and their interpretations,

Prog. Cryst. Growth and Charact., 36 (1998) 163-248.

[68] Johnston, M.B., Hertz, L.M., et al., Low - energy vibrational modes in

phenylene oligomers studied by THz time - domain spectroscopy,

Chem. Phys. Lett., 377 (2003) 256-262.

[69] Monaco, S.B., Davis, L.E., Velsko, S.P., Wang, F.T., Eimerl, D.,

Zalkin, A.J., Synthesis and characterization of chemical analogs of

L-arginine phosphate, J. Cryst. Growth, 85 (1987) 252-255.

[70] Bradley Ferguson, Xi-Cheng Zhang, Materials for terahertz science

and technology, Nat. Mater., 1 (2002) 26-33.

[71] Misogati, L., Varela, A.T., Nunes, F.D., Bagnato, V.S., Melo, F.E.A.,

Mendes Filho, J., Zilio, C., Optical properties of L-Valine organic

crystals, Opt. Mater., 6 (1996) 147-152.

[72] Wang, W.S., Aggarwal, M.D., Choi, J., Gebri, T., Shields, A.D.,

Penn, B.G., Frazier, D.O., Solvent effects and polyglutamic acid in

solution growth processes: I. Solvent effects and growth morphology,

J. Cryst. Growth, 198-199 (1999) 578-582.

[73] Kitazawa, M., Hifuchi, R., Takahashi, M., Ultraviolet generation at

266 nm in a novel organic nonlinear optical crystal: L-Pyrrolidone-

2-carboxylic acid, Appl. Phys. Lett., 64 (1994) 2477-2479.

[74] Narayan Bhat, M., Dharmaprakash, S.M., Growth of nonlinear optical

γ-glycine crystals, J. Cryst. Growth, 236 (2002) 376-380.

[75] Rodrigues, J.J.Jr., Misoguti, L., Nunes, F.D., Mendonea, C.R., Zilio, S.C.,

Optical properties of L-threonine crystals, Opt. Mater., 22 (2003)

235-240.

Page 8: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 8

[76] Mallik, T., Kar, T., Growth and characterization of nonlinear optical

L-arginine dihydrate single crystals, J. Cryst. Growth, 285 (2005)

178-182.

[77] Razzetti, C., Ardoini, M., Zanotti, L., Zha, M., Paorici, C., Solution

growth and characterisation of L-alanine single crystals, Cryst. Res.

Technol., 37 (2002) 456-465.

[78] Ambujam, K., Rajarajan, K., Selvakumar, S., Vetha Potheher, I.,

Ginson P. Joseph, Sagayaraj, P., Growth and characterization of a

novel NLO crystal bis-glycine hydrogen chloride, J. Cryst. Growth,

286 (2006) 440-444.

[79] Gokul Raj, S., Ramesh Kumar, G., Mohan, R. Pandi, S., Jayavel, R.,

Structural, optical and dielectric studies on solution - grown semi

organic L-stidinetetrafluoroborate single crystal, Mater. Chem.

Phys., 90 (2005) 144-147.

[80] Selvaraju, K., Valluvan, R., Kumararaman, S., New nonlinear optical

material: Glycine hydrofluride , Mater. Lett. 60 (2006) 2848-2850.

[81] Legros, J.P., Kvick, A., Deformation electron density of α-glycine at

120 K, Acta Crystallogr., B36 (1980) 3052-3059.

[82] Ambujam, K., Selvakumar, S., Prem Anand, D., Mohammad, G.,

Sagayaraj, P., Crystal growth, optical, mechanincal and electrical

properties of organic NLO material γ-glycine, Cryst. Res. Tech.,

41 (2006) 671-677.

[83] Nagaraja, H.S., Upadhyaya,V., Mohan Rao, P., Sreeramana Aithal, P.,

Bhat A.P., Organic nonlinear optical crystals of benzoyl glycine,

J. Cryst. Growth, 193 (1998) 674-678.

[84] Mohd. Shakir, Kushwaha, S.K., Maurya, K.K., Manju Arorra,

Bhagavannarayana, G., Growth and characterization of glycine

picrate - Remarkable second - harmonic generation in centrosymmetric

crystal, J. Cryst. Growth, 311 (2009) 3871-3875.

Page 9: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 9

[85] Mythili, P., Kanagasekaran, T., Gopalakrishnanm, R., Growth and

characterization of glycinium oxalate (GOX) single crystals,

Materials Lett., 62 (2008) 2185-2188.

[86] Jiang, M., Qi. Fang, Organic and semiorganic nonlinear optical

materials, Adv. Mater., 11 (1999) 1147-1151.

[87] Gupte, S.S., Pradhan, R.D., Mareano, O.A., Melikechi, N., Desai, C.F.,

Laser damage studies in zinc (tris) thiourea sulphate: Nonlinear

opticalcrystal, J. Appl. Phys., 91 (2002) 3125-3128.

[88] Balakrishnan, T., Ramamurthi, K., Structural, thermal and optical

properties of a semiorganic nonlinear optical single crystal: Glycine

zinc sulphate, Spectrochim. Acta 68 (2007) 360-363.

[89] Balakrishnan, T., Ramamurthi, K., Growth and characterization of

glycine lithium sulphate single crystal, Cryst. Res. Technol., 41 (2006)

1184-1188.

[90] Narayan Bhat, M., Dharmaprakash, S.M., New nonlinear optical

material: glycine sodium nitrate, J. Cryst. Growth, 235 (2002) 511-516.

[91] Pepinsky, R., Okaya, Y., Eastman, D.P., Mitsui, T., Ferroelectricity in

glycine silver nitrate, Phys. Rev., 107 (1957) 1538-1539.

[92] Deepthy, A., Bhat, H.L., Growth and characterization of ferroelectric

glycine phosphate single crystals, J. Cryst. Growth, 226 (2001) 287-293.

[93] Hoshino, S., Mitsui, T., Jona, F., Pepinsky, R., Dielectric and thermal

study of triglycine sulfate and tri glycine fluoberyllate, Phy. Rev.,

107 (1957) 1255-1258.

[94] Van der Helm, D., Willoughby, T.V., The crystal structure of CaCl2.

glyclglyclglycine. 3H2O, Acta Crystallogr., 25 (1969) 2317-2326.

[95] Heinz, T.F., Chen, C.K., Richard, D., Shen, Y.R.., Spectroscopy of

Molecular Monolayers by Resonant second - Harmonic Generation,

Phys. Rev. Lett., 48 (1982) 478-481.

Page 10: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 10

[96] Mohan Rao, J.K., Natarajan, S., Structure of tris (glycine) calcium (II)

dibromide, Acta Crystallogr., B36 (1980) 1058-1061.

[97] Ravikumar, K., Rajan, S., Natarajan, S., Ponnuswamy, S., Trotter, M.N.,

Crystal structure of tris (glycine) calcium (II) dichloride, Z. Kristallogr.,

171 (1985) 201-207.

[98] Natarajan, S., Ravikumar, K., Rajan, S.S., Crystal structure of diaqua

nitrato glycine calcium (II) nitrate , Z. Kristallogr., 168 (1984) 75-82.

[99] Papavinasam, E., Crystal structure of [(bis (glycinato) copper (II)

dibromide) [(bis (Glycine) dilithium (I)) dihydrate )], Z. Kristallogr.,

197 (1991) 217-222.

[100] Lal, R.B., Bratra, A. K., Growth and properties of trisglycine

sulphate (TGS) crystals, Ferroelectrics 142 (1993) 51-82.

[101] Londolt-Bornstein, Group III , Vol. 166. Springer, New York, 1982.

[102] Pfeiffer, P., Klossmann, M., Angern, O., The salting out of Amino

acids, Z. Physiol. Chem., 133 (1924) 229-246.

[103] Greenwald, I., Some new complexes of zinf and glycine, J. Phys.

Chem., B47 (1943) 607-622.

[104] Fleck, P. Becker, Bayarjargal, L., Ochrombel, R., Bohaty, L., Crystal

growth, crystal structure and physical properties of polar orthorhombic

tris (glycine) zinc chloride, Cryst. Res. Technol., 43 (2008) 127-134.

[105] Hariharan, M., Rajan, S.S., Srinivasan, R., Natarajan, S., Crystal structure

of a complex of glycine with zinc chloride, Z. Kristallogr., 188 (1989)

217-222.

[106] Kaminski, A.A., Bohaty, L., Becker, P., Eichler, H.J., Rhee, H., Hanuza, J.,

Orthorhombic tris (glycine) zinc chloride Gly3. zncl2 - a new semi

organic many-photon SRS crystal manifesting different nonlinear -

laser (X(3) + X(2)interactions under one - micron picoseconds pumping,

J. Laser Phys. Lett., 6 (2009) 872-885.

Page 11: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 11

[107] Sugandhi, K., Dinakaran, S., Jose, M., Uthrakumar, R., Jeya Rajendran, A.,

Bhagavannarayana, G., Joseph, V., Jerome Das, S., Crystalline perfection,

spectroscopic investigations and transport properties of trisglycine

zinc chloride NLO single crystal, Physica B 405 (2010) 3929-3935.

[108] Baraniraj, T., Philominathan, P., Growth and characterization of NLO

based L-arginine maleate dehydrate single crystal, Spectrochim.

Acta 75A (2010) 74-76.

[109] Mallik, T., Kar, T., Synthesis, growth and characterization of a new

nonlinear optical crystal: L-arginine maleate dihydrate, Cryst. Res.

Technol., 40 (2005) 778-781.

[110] Anbuchezhiyan, M., Ponnusamy, S., Muthamizhchelvan, C., Synthesis

and characterization of a new organic nonlinear optical crystal:

L-Phenylalaninium maleate, Spectrochim. Acta 74A (2009) 917-923.

[111] Natarajan, S., Martin Britto, S.A., Ramachandran, E., Growth, Thermal,

Spectroscopic and optical studies of L-Alaninium Maleate, a new

organic nonlinear optical material, Cryst. Growth & Design, 6 (2006)

137-140.

[112] Mallik, T., Kar, T., Crystallization and characterization of nonlinear

optical material L-arginine formomaleate, Materials Lett., 61 (2007)

3826-3828.

[113] Anandha babu, G., Ramasamy, P., Studies on the growth and

characterization of 2-aminopyridinium maleate - A novel nonlinear

optical crystal, J. Cryst. Growth, 311 (2009) 1185-1189.

[114] Rajagopal, K., Krishnakumar, R.V., Mostad, A., Natarajan, S.,

Glycinium maleate, Acta Cryst., E57 (2001) o751-o753.

[115] Balasubramanian, D., Murugakoothan, P., Jayavel, R., Synthesis, growth

and characterization of organic nonlinear optical bis-glycine maleate

(BGM) single crystal, J. Cryst. Growth, 312 (2010) 1855-1859.

Page 12: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 12

[116] Haussuhl, S., Chrosch, J., Gnanam, F., Fiorentini, E., Recker, K.,

Wallrefen, F., Crystal growth and physical properties of monoclinic

L-arginine hydrochloride monohydrate, C6H14O2N4HCl.H 2O, and

L-arginine hydrobromide monohydrate, C6H14O2N4HBr.H 2O, Cryst.

Res. Technol., 25 (1990) 617-623.

[117] Sethuraman, K., Ramesh babu, R., Gopalakrishnan, R., Ramasamy, P.,

Synthesis, growth and characterization of a new semiorganic

nonlinear optical ctystal: L-alanine sodium nitrate (LASN), Cryst.

Growth Des., 8 (2008) 1863-1869.

[118] Henryk Ratajczak Dongfeng Xue, Effect of hydrogen bonds on

physical properties of ammonium dihydrogen phosphate, J. Mol.

Struct: Theochem., 716 (2005) 207-210.

[119] Siyuan Zhang, Dongfeng Xue, Structure - property relationships in

Li 1-xHxIO3 type complex crystals, J. Solid state Chem. 135 (1998) 121-126.

[120] Srinivasan, N., Rajaram, R.K., Jebaraj, D.D., Crystal structure of

hexaammonium dicosaoxodiperoxohepta molybdate (VI) - water (1/6),

Z. Kristallogr., 212 (1997) 311-312.

[121] Parthasarathy, R., The structure of L-Valine hydrochloride, Acta

Cryst., 21 (1966) 422-426.

[122] Srinivasan, P., Kanagasekaran, T., Gopalakrishnan, R., A highly efficient

organic nonlinear optical donor - acceptor single crystal: L-Valinium

picrate, Cryst. Growth & Des., 8 (2008) 2340-2345.

[123] Amalanathan, M., Hubert Joe, I., Rastogi, V.K., Molecular structure,

vibrational spectra and nonlinear optical properties of L-Valine

hydrobromide; DFT study, J. Mol. Struct., 985 (2011) 48-56.

[124] Kirubavathi, K., Selvaraju, K., Valluvan, R., Vijayan, N., Kumararaman, S.,

Synthesis, growth, structural, spectroscopic and opticalstudies of a

new semiorganic nonlinear optical crystal: L-Valine hydrochloride,

Spectrochim. Acta 69A (2008) 1283-1286.

Page 13: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 13

[125] Moitra, S., Kar, T., A study on the growth and characteristic

properties of ZTS single crystal, Mater. Chem. Phys., 106 (2007) 8-10.

[126] Mohan Kumar, R., Rajan Babu, D., Jayaraman, D., Jayavel, R..,

Kitamura, K., Studies on the growth aspects of semi-organic L- alanine

acetate: A promising NLO crystal, J. Cryst. Growth, 275 (2005)

e1935-e1939.

[127] Venkataramanan, V., Maheswaran, S., Sherwood, J.N., Bhat, H.L.,

Crystal growth and physical characterization of the semiorganic bis

(thiourea) cadmium chloride, J. Cryst. Growth, 179 (1997) 605-610.

[128] Vijayan, N., Ramesh Babu, R., Gopalakrishnan, R., Ramasamy, P.,

Some studies on the growth and characterization of organic

nonlinear optical Acetoacetanilide single crystals, J. Cryst. Growth,

267 (2004) 646-653.

[129] El-Bahy, G.M.S., El-Sayed, B.A., Shabana, A.A., Vibrational and

electronic studies on some metal thiourea complexes, Vib. Spectrosc.

31 (2003) 101-107.

[130] Yamaguchi, A., Penland, R.B., Mizushima, S., Lane, T.J., Curran, C.,

Qualiano, J.V., Infrared absorption spectra of inorganic coordination

complexes. XIV, Infrared studies of some metal thiourea complexes,

J. Am. Chem. Soc., 80 (1958) 527-529.

[131] Selvakumar, S., Ravikumar, S.M., Joseph, G.P., Rajarajan, K., Madhavan, J.,

Rajasekar, S.A., Sagayaraj, P., Growth and characterization of pure

and doped bis thiourea) cadmium acetate single crystals, Mater.

Chem. Phys., 103 (2007) 153-157.

[132] Lopes, J.G.S., de oliveira, L.F.C., Edwards, H.G.M., Santos, P.S., The

Raman spectrum of thiourea- oxocarbon adducts, J. Raman Spectrosc.,

35 (2004) 131-139.

Page 14: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 14

[133] Krishnakumar, V., Nagalakshmi, R., Crystal growth and vibrational

spectroscopic studies of the semiorganic nonlinear optical crystal-

bisthiourea zinc chloride, Spectrochim. Acta 61A (2005) 499-507.

[134] Alia, J.M., Edwards, H.G.M., Stoev, M.D., A systematic FT-Raman

spectroscopic study of twelve bis-thiourea complexes, A(tu)2B2

(A = Zn, Cd, Hg; B = Cl, Br, I, SCN), Spectrochim. Acta 55A (1999)

2423-2435.

[135] Ushasree, P.M., Muralidahran, R., Jayavel, R., Ramasamy, P., Growth

of bis (thiourea) cadmium chloride single crystals - a potential NLO

material of organometallic complex, J. Cryst. Growth, 218 (2000)

365-371.

[136] Dhandapani, M., Kandhasamy, M.A., Srinivasan, V., Synthesis,

structural and thermal studies of tetrathiourea copper (I) chloride

crystals, Cryst. Res. Technol., 40 (2005) 805-809.

[137] Ushasree, P.M., Jayavel, R., Subramanian, C., Ramasamy, P., Growth

of Zinc thiourea sulfate (ZTS) single crystals: a potential

semiorganic NLO Material, J. Cryst. Growth, 197 (1999) 216-220.

[138] Venkataramanan, V., Subramanian, C.K., Bhat, H.L., Laser induced

damage in Zinctris (thiourea) sulphate and bis (thiourea) cadmium

chloride, J. Appl. Phy., 77 (1995) 6049-6051.

[139] Pasupathy, G., Philominathan, P., Grystal growth, Thermal, Optical

and microhardness studies of Tris (thiourea) magnesium sulphate:

A semiorganic NLO material, Modern Phy. Lett., 23B (2009) 3035-3043.

[140] Kirubavathi, K., Selvaraju, K., Kumararaman, S. Growth and

characterization of a new metal - organic nonlinear optical bis

(thiourea) Cadmium Zinc chloride single crystals, Spectrochim. Acta

71A (2008) 1-4.

Page 15: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 15

[141] Zhang, N., Jian, M.H., Yuan, D.R., Xu, D., Tao, X.T., Shao, Z.S., The

quality and performance of the organometallic complex nonlinear

optical material tri-allythiourea Cadmium chloride (ATCC) , J. Cryst.

Growth 102 (1990) 581-584.

[142] Venkataramanan, V., Dhanaraj, C., Wadhawan, V.K., Sherwood, J.N.,

Bhat, H.L., Crystal growth and defects characterization of Zinc tris

(thiourea) sulfate: a novel metalorganic nonlinear optical crystal,

J. Cryst. Growth, 154 (1995) 92-97.

[143] Quassaid, M., Becker, P., Carabatos Nedelec, C., Raman and infrared

spectra of Bis(thiourea) Zinc chloride Zn[cs(NH2)]2Cl2 single crystal,

Phys. Stat. Sol., 207(b) (1998) 499-507.

[144] Selvaraju, K., Valluvan, R., Kumararaman, S., Growth and characterization

of a new metal-organic crystal: Potassium thiourea iodide, Mater.

Lett., 60 (2006) 3130-3132.

[145] Ambujam, K., Thomas, P.C., Aruna, S., Prem Anand D., Sagayaraj, P.,

Growth and characterization of dichloro tetrakis thiourea nickel

single crystals, Cryst. Res. Technol., 41 (2006) 1082-1088.

[146] Azaroff, V., Introduction to solid , Leonid Tata McGraw Hill Publishing

Company, Bombay - New Delhi, 1977.

[147] Gupta, S.C., Optoelectronic Devices and system, Prentice Hall India

Ltd., Delhi, 2005, pp. 1761.

[148] Brice, J.C., Crystal Growth Process, John Wiley and Sons, New York,

1986.

[149] Buckley, H.E., Crystal Growth , John Wiley and Sons, New York,

1951.

[150] Mullin, J.W., Industrial Crystallization 78, Plenum Press, New York,

1976.

Page 16: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 16

[151] String fellow, G.B., In Crystal Growth: A Tutorial Approach ,

Bardsley, W., Hurle, D.T.J., Mullin, J.B., North-Holland: Amsterdam,

1979.

[152] Laudise, R.A., Ueda, R., Mullin, J.B., Crystal growth and characterization

proceedings of ISSCG2, Spring School, Japan, Amsterdam: North-

Holland Pun. Co., 1975, pp. 255.

[153] Gilman, J.J., The Art and Science of growing crystals, John Wiley,

USA, 1963.

[154] Hooper, R.M., Naranes, R.S., Hearole, B.J. Sherwood, J.N., Crystal

growth second Edition, Pergamon Press, New York, 1980.

[155] Chernov, A.A. Modern Crystallography, III - Crystal Growth ,

Springer - Verlog, Solid State series, Berlin, Vol. 36, 1984.

[156] Petrov, T.G., Growing crystals from solution, New York, Consultanta

Bureau, 1969.

[157] Christian, R., Solvents and solvent effects in Organic Chemistry,

VCH, New York, 1990.

[158] Collins, A.N., Sheldrake, G.N., Crosby, J., Chirality in Industry II ,

Wiley, New York, 1977.

[159] Ushasree, P.M., Muralidharan, R., Jayavel, R., Ramasamy, P., Metastable

zone width, induction period and interfacial energy of Zinc tris

(thiourea) sulfate, J. Cryst. Growth, 210 (2000) 741-745.

[160] Moitra, S., Kar, T., Growth and characterization of L-Valine -

nonlinear optical crystal, Cryst. Res. Technol., 45 (2010) 70-74.

[161] Ramachandraraja, C., Sundararajan, R.S., Krishnakumar, V., FTIR,

FT-Raman and thermal studies of bisthiourea manganese chloride -

An organo metallic crystal, Spectrochim. Acta 71A (2009) 1634-1637.

[162] Srinivasan, K., Crystal growth of α and γ glycine polymorphs and

their polymorphic phase transformations, J. Cryst. Growth, 311

(2008) 156-162.

Page 17: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 17

[163] Krishnakumar, V., Guru Prasad, L., Growth and spectroscopic analysis

of semi-organic bisthiourea sodium fluoride crystal, Mater Lett.,

63 (2009) 687-690.

[164] Woodward, A., Introduction to the theory of Molecular Vibrations

and vibrational Spectroscopy, Oxford University Press, London, 1972.

[165] Nakamoto, K., Infrared and Raman Spectra of Inorganic and

coordination compounds, fifth Edition, Part A, John Wiley & Sons

Inc., New York, 1997.

[166] Srivasta, G.P., Mohan, S., Jain, Y.S., Laser Raman and Infrared

Spectra of di-potassium tartrate hemi-hydrate, J. Raman Spectroscopy,

13 (1982) 25-29.

[167] Dalhus, B., Gorbitz, C.H., Crystal structures of hydrophobic amino

acids1. Redeterminations of L-Methionine and L-Valine at 120 K,

Acta. Chem. Scand., 50 (1996) 544-548.

[168] John Coates, Interpretation of Infrared spectra, A Practical App roach

in Encyclopedia of Analytical Chemistry, Meyers, R.A., (Ed.) (John

Wiley & Sons Ltd., Chichester (2000) pp.10815-10837.

[169] Ramachandran, E., Natarajan, S., Synthesis of L-Valine crystals, Cryst.

Res. Technol., 44 (2009) 641-646.

[170] Baran, J., Barnes, A.J., Ratajczak, H., Polarized infrared and Raman

spectra of diglycine nitrate single crystal, Spectrochim. Acta 51A

(1995) 197-214.

[171] Colthup, N.B., Daly, L.H., Wiberley, S.E., Introduction to Infrared

and Raman Spectroscopy, Academic Press, New York, 1990.

[172] Hubert Joe, I., Aruldhas, G., Anbukumar, S., Ramasamy, P., Vibrational

spectra and phase transition in triglycine sulpho - Phosphate, J.

Cryst. Res. Technol., 29 (1994) 685-692.

[173] Smith, B., Infrared Spectral Interpretation: A systematic Appr oach,

CRC Press, Washington, DC, 1999.

Page 18: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 18

[174] Kettle, S.F.A., Lugwisha, E., Eckert, J., Mcguire, N.K., Intermolecular

vibrational coupling in glycine, Spectrochim. Acta 54A (1989) 533-539.

[175] Mary Navis Priya, S., Varghese, B., Mary Linet, J., Bhagavannarayana, G.,

Justin Raj, C., Krishnan, S., Dinakaran, S., Jerome Das, S., Synthesis,

Growth and characterization of Novel nonlinear optical active

dichloridodiglycine zinc dihydrate single crystals, Cryst. Growth &

Design, 8 (2008) 1663-1667.

[176] Diem, M., Polavarapu, P.L., Obodi, M., Nafie, L.A., Vibrational

circular dichroism in amino acids and peptides. 4. Vibrational

analysis, assignments and solution - Phase Raman spectra of

deuterated isotopes of alanine, J. Am. Chem. Soc., 104 (1982) 3329-3336.

[177] Krishnakumar, V., Sivakumar, S., Nagalakshmi, R., Bhuvaneswari, S.,

Rajaboopathi, M., Effect of doping an organic molecule ligand on

TGS single crystals, Spectrochim. Acta 71A (2008) 480-485.

[178] Padmaja, L., Ravikumar, C., James, C., Jayakumar, V.S., Hubert Joe, I.,

Analysis of vibrational spectra of L-alanylglycine based on density

functional theory calculations, Spectrochim. Acta 71A (2008) 252-262.

[179] Sankar, R., Ragahvan, C. M., Mohan Kumar, R., Jayavel, R., Growth

and characterization of bis- glycine sodium nitrate (BGSN), a novel

semi organic nonlinearoptical crystal, J. Cryst. Growth, 309 (2007)

30-36.

[180] Brain S. Furniss, Anthony J. Hamaford Smith, Tatchell, Vogel’s

Textbook of Practical Organic Chemistry, 5th ed. Longman group UK

Ltd., 1989.

[181] Jayalakshmi, D., Kumar, J., Growth and characterization of

bisthiourea zinc acetate, Cryst. Res. Technol., 41 (2006) 37-40.

[182] Krishnakumar, V., Sivakumar, S., Nagalakshmi, R., Investigations on

the physiochemical properties of the nonlinear optical crystal for

blue green laser generation, Spectrochim. Acta 71A (2008) 119-124.

Page 19: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 19

[183] Parimala Devi, R., Sekar, C., Crystal growth and spectral studies of

nonlinear optical γ-glycine single crystal grown from phosphoricacid,

Spectrochim. Acta, 76A (2010) 490-495.

[184] Swaminathan, K., Irving, H.M.N.H., Infra-red absorption spectra of

complexes of thiourea, J. Inorg. Nucl. Chem., 26 (1964) 1291-1294.

[185] Miyazawa, T., Shimanouchi, T., Mizushima, S., Characteristics infrared

bands of monosubstituted amides, J. Chem. Phys., 24 (1956) 408-417.

[186] Anie Roshan, S., Roshan Anie, S., Cyriac Joseph, Ittyachen, M.A.,

Growth and characterization of a new metal- organic crystal:

potassium thiourea bromide, Mater Lett., 49 (2001) 299-302.

[187] Thomas Joseph Prakash, J., Vijayan, N., Kumararaman, S., Growth of

tetrakis thiourea potassium iodide as new second order optical

material, Cryst. Res. Technol., 43 (2008) 423-427.

[188] Bhaskaran, A., Arjunan, S., Raghavan, C. M., Mohankumar, R., Jayavel, R.,

Investigation on synthesis, growth, structural, optical, thermal and

dielectric properties of organometallic nonlinear optical tetrathiourea

cadmium tetrathiocyanato zincate (TCTZ) single crystals”, J. Cryst.

Growth, 310 (2008) 4549-4553.

[189] Ushasree, P.M., Jayavel, R., Ramasamy, P., Growth and characterization

of phosphate mixed ZTS single crystals, Mater. Sci. Eng. B 65 (1999)

153-158.

[190] Selvasekarapandian, S., Vivekanandan, K., Kolandaivel, P., Gundurao,

T.K., Vibrational studies of bis (thiourea) cadmium chloride and tris

(thiourea)Zinc sulphate semiorganic Non-linear optical crystals,

Cryst. Res. Technol., 32 (1997) 299-309.

[191] Nakamoto, K., IR Spectra of Inorganic and coordination compounds

2nd ed. (Wiley & Sons, New York, 1978).

Page 20: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 20

[192] Rajasekaran, R., Mohan Kumar, R. Jayavel, R., Ramasamy. P., Influence

of pH on the growth and characteristics of nonlinear optical Zinc

thiourea chloride (ZTC) single crystals, J. Cryst. Growth, 252 (2003)

317-327.

[193] Ramjothi, R., Dhanushkodi, S., Nagarajan, K., Crystal growth, thermal,

optical and microhardness studies of tris (thiourea) Zinc sulphate -

a semiorganic NLO material, Cryst. Res. Technol., 39 (2004) 414-420.

[194] Sankar, R., Ragahvan, C.M., Mohan Kumar, R., Jayavel, R., Growth

and characterization of bis- glycine sodium nitrate (BGSN), a novel

semi-organic nonlinearoptical crystal, J. Cryst. Growth, 309 (2007)

30-36.

[195] Parimaladevi, R., Sekar, C., Krishnakumar, V., Growth, spectral

studies, thermal and dielectric aspects of L-lysine doped triglycine

sulpho phosphate (TGSP), Spectrochim. Acta 74A (2009) 248-252.

[196] Norbert Adolph Lange, Lange’s Handbook of Chemistry, 11th ed.,

McGraw Hill, New Delhi (1976).

[197] Ramachandraraja, C., Antony Joseph, A., Sundararajan, R.S., Siva

Shankar, V., Murugakoothan, P., Growth, spectral, optical and

thermal characterization of new metallorganic crystal - Bisthiourea

nickel chloride, Spectrochim. Acta 74A (2009) 1005-1009.

[198] Rajesh, N.P., Kannan, V., Ashok, M., Sivaji, K., Santhana Raghavan, P.,

Ramasamy, P., A new nonlinear optical semi-organic material:

cadmium thiourea acetate, J. Cryst. Growth, 262 (2004) 561-566.

[199] Venkataraman, V., Dhanraj, G., Wadhawan, V.K., Sherwood, J.N.,

Bhat, H.L., Crystal growth and defects characterization of zinc tris

(thiourea) suophate: a novel metalorganic nonlinearoptical crystal,

J. Cryst. Growth, 154 (1995) 92-97.

[200] Neil, H.O., Hardness Measurement of Metals and Alloys, London,

Chapman and Hall (1967).

Page 21: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 21

[201] Mott, B.W., Micro Indentation Hardness Testing, Butterworth,

London, 1956.

[202] Sangwal, K., On the reverse indentation size effect and microhardness

measurement of solids, Mat. Chem. and Phys., 63 (2000) 145-152.

[203] Tabor, D., The Hardness of Materials, (Oxford University Press,

Oxford), 1951.

[204] Onitsch, E.M., Micro-hardness Testing, Mikroskopie 95 (1950) 12-14.

[205] Rani Christu Dhas, Benet Charles, J., Gnanam, F.D., Growth and

microhardness studies on NH4Sb3F10 single crystals, J. Cryst. Growth,

137 (1994) 295-298.

[206] Wooster, W.A., Physical properties and atomic arrangements in

crystals, Rep. Progr. Phys., 16 (1953) 62-82.

[207] Hougham, G., Tesoro, G., Viehbeck, A., Chapper-Sokol, J.D., Polarization

effects of Flourine on the relative permittivity in polyimides,

Macromolecules, 27 (1994) 5964-5971.

[208] Tareev, B., Physics of Dielectric Materials, Mir Publishers, Moscow,

1979.

[209] Jonscher, A.K., Dielectric Relaxation in solids, Chelsea Dielectric

Press, London, 1983.

[210] Gorur G. Raju, Dielectrics in Electric Fields, Marcel Dekkev, New

York, 2003.

[211] Mano, J.F., Modelling of thermally stimulated depolarization

current peaks obtained by global and thermal cleaning experiments,

J. Phys. D: Appl. Phys. 31 (1998) 2898-2907.

[212] Laidler, K.J., The world of physical chemistry, Oxford University

Press, 1993.

[213] Wang, X.Q., et al., Crystal growth and physical properties of UV

nonlinear optical crystal Zinc Cadmium thiocyanate ZnCd(SCN)4,

Chem. Phys. Lett., 346 (2001) 393-406.

Page 22: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 22

[214] Senthil Murugan, G., Ramasamy, P., Growth and characterization of

metal organic crystal: Tetra thiourea Cobalt chloride, J. Cryst.

Growth 311 (2009) 585-588.

[215] Prasad, N.V., Prasad, G., Bhimasankaran, T., Suryanarayana, S.V.,

Kumar, G.S., Studies in (NH4)2xCd1-xC2O4H2O single crystals grown

by gel technique, Ind. J. Pure. Appl. Phys., 34 (1996) 834-836.

[216] Zukiswski, P.W., Kantorow, S.B., Mackza, D., Stelmakh, V.F., Process

of Radiation defect interaction and Amorphisation of Silicon at

large implantation Doses, Phys. Status Solidi., A 112 (1989) 695-698.

[217] S.K. Arora, Vipul Patel, Brijesh Amin, Anjana Kothari, Dielectric

behaviour of Strontium tartrate single crystals, Bull Mater. Sci., 27

(2004) 141-148.

[218] Pan, J.S., Zhang, X.W., Structure and dielectric behavior of

Pb(Mg1/3Nb2/3)O3-Pb(Ni1/3Nb2/3)O3-Pb(Zn1/3Nb2/3)O3-PbTiO3 ferroelectric

ceramics near the morphotropic phase boundary, Acta Mater., 54

(2006) 1343-1348.

[219] Sabari Girisun, T. C., Dhanuskodi, S., Tuning the dielectric properties

of thiourea analog crystals for efficient nonlinear optical

applications, Mater. Res. Bull., 45 (2010) 88-91.

[220] Angadi, B., Victor, P., Jali, V.M., Lagare, M.T., Kumar, R., Krupanidhi,

AC conductivity studies on the Li irradiated PZT and SBT

ferroelectric thin films , Mater Sci. and Eng: B 100 (2003) 93-101.

[221] Pankove, J.I., Optical Processes in Semiconductors, Prentice Hall,

New York, 1971.

[222] Richard L. Sutherland, Hand book of Nonlinear Optics, Marcel

Decker Inc, New York, 2003.

[223] Denny, R.C., Sinclair, R., Visible and ultraviolet Spectroscopy,

Analytical Chemistry by open learning series, John Wiley and Sons,

USA.

Page 23: REFERENCESshodhganga.inflibnet.ac.in/bitstream/10603/30299/1... ·  · 2014-12-09A systematic spectroscopic study of four bimetallic thiocyanates of ... Zilio, C., Optical properties

R 23

[224] Bhuvana K. Periyasamy, Rabinson S. Jebas, Gopalakrishnan, N.,

Balasubramanian, T., Development of NLO tunable band gap organic

devices for optoelectronic applications, Mater. Lett., 61 (2007) 4246-4249.

[225] Krishnan, Justin Raj, C., Dinakaran, S., Jerome Das, S., Investigation of

optical bandgap in potassium acid phthalate single crystal, Cryst.

Res. Technol., 43 (2008) 670-673.

[226] Lee, P.A., Said, G., Davis, R., Lim, T.H., On the optical properties of

some layer compounds, J. Phys. and Chem. of Solids, 30 (2006) 121-124.

[227] Ishu, S., Tripathi, S.K., Barman, P.B., Influence of composition on the

optical band gap in A-Ge20Se80-xIn x thin films , Chalcogenide Lett.,

3 (2006) 121-124.

[228] Ghosh, G., Hand book of Thermo - Optic coefficients of Optical

Materials with Applications , Academic Press, San Diego, 1988.

[229] Kurtz, S.K., Perry, T.T., A Powder technique for the evaluation of

nonlinear optical materials, J. Appl. Phys., 39 (1968) 3798-3813.

[230] Mansoor Sheik Bahae, David J. Hagan, Sensitive Measurement of

Optical Nonlinearities using a single Beam, IEEE LEOS NEWS

Letter, 21 (2007) 17-26.