Journal of Synthetic Crystals, Volume. 49, Issue 7, 1308(2020)
Review of Growth Method for Typical Nonlinear Optical Crystal
[1] [1] Guo S P, Chi Y, Guo G C. Recent achievements on middle and far-infrared second-order nonlinear optical materials[J].Coordination Chemistry Reviews,2017,335: 44-57.
[2] [2] Kang L, Liang F, Jiang X X, et al. First-principles design and simulations promote the development of nonlinear optical crystals[J].Accounts of Chemical Research,2020,53(1): 209-217.
[3] [3] Luo X Y, Li Z, Guo Y W, et al. Recent progress on new infrared nonlinear optical materials with application prospect[J].Journal of Solid State Chemistry,2019,270: 674-687.
[4] [4] Brian P. Crystal Growth: Chapter 1-Introduction to crystal growth methods[M]. Second Edition. Oxford: Pergamon,1980: 1-21.
[5] [5] Shah J S. Crystal Growth: Chapter 4-Environment for crystal growth[M]. Second Edition. Oxford: Pergamon,1980: 105-180.
[6] [6] Byrappa K. Hydrothermal growth of polyscale crystals[M].Part C Solution Growth of Crystals,2010: 599-653.
[7] [7] Zhang C L, Huang L X, Zhou W N, et al. Growth of KTP crystals with high damage threshold by hydrothermal method[J].Journal of Crystal Growth,2006,292(2): 364-367.
[9] [9] Zumsteg F C, Bierlin J D, Gier T E. KxRb1-xTiOPO4: A new nonlinear optical material[J].Journal of Applied Physics,1976,47(11): 4980-4985.
[10] [10] Laudise R A, Cava R J, Caporaso A J. Phase relations, solubility and growth of potassium titanyl phosphate, KTP[J].Journal of Crystal Growth,1986,74(2): 275-280.
[11] [11] Laudise R A, Sunder W A, Belt R F, et al. Solubility and P-V-T relations and the growth of potassium titanyl phosphate[J].Journal of Crystal Growth,1990,102(3): 427-433.
[12] [12] Shao M C, Liang L, Yu H H, et al. Pushing periodic-disorder-induced phase matching into the deep-ultraviolet spectral region: theory and demonstration[J].Light-Science & Applications,2020,9(1): 1-8.
[13] [13] Byrappa K, Keerthiraj N, Byrappa S M. Hydrothermal growth of crystals-design and processing[J].Handbook of Crystal Growth,2015,2: 535-575.
[14] [14] Hooper R M, Mcardle B J, Narang R S, et al. Chapter 10-Crystallization from solution at low temperatures[M].Crystal Growth (Second Edition),1980: 395-420.
[15] [15] Ren X E, Sun C T, Li K Y, et al. Chemical bonding and single crystal growth of ADP crystals[J].Materials Focus,2013,2(4): 309-315.
[16] [16] Zhuang X X, Ye L W, Zheng G Z, et al. The rapid growth of large-scale KDP single crystal in brief procedure[J].Journal of Crystal Growth,2011,318(1): 700-702.
[17] [17] Lian Y F, Xu M X, Zhang L S, et al. Rapid growth of ADP crystal in a defined crystallographic direction[J].CrystEngComm,2018,20: 917-923.
[18] [18] Lian Y F, Zhu L L, Huang J, et al. Nonlinear optical characteristics of DADP crystals with different deuterium[J].Optical Materials,2019,91: 17-22.
[19] [19] Carvalho J F, Hernandes A C, Nunes F D, et al. LAP single crystal growth free of microorganisms by an accurately controlled solvent evaporation technique[J].Journal of CrystalGrowth,1997,173(3): 487-491.
[20] [20] Liu B A, Yin X, Sun X, et al. Growth and electro-elastic properties of K(H1-xDx)2PO4 single crystals[J].Journal of Applied Crystallography,2012,45: 439-443.
[21] [21] Li G H. Rapid Z-plate seed regeneration of large size KDP crystal from solution[J].Journal of Crystal Growth,2008,310(1): 36-39.
[22] [22] Balamurugan N, Ramasamy P. Investigation of the growth rate formula and bulk laser damage threshold KDP crystal growth from aqueous solution by the sankaranarayanan-ramasamy (SR) method[J].Crystal Growth & Design,2006,6(7): 1642-1644.
[23] [23] Zhu S J, Wang S L, Ding J X, et al. Improvement of growth rate and optical performances of rapidly grown KDP crystal by adding cyclohexane diamine tetraacetic acid in growth solution[J].Journal of Crystal Growth,2014,388: 98-102.
[24] [24] Sun Z H, Chen T L, Luo J H, et al. Nucleation kinetics and growth of high-quality DAST crystals with the aid of activated carbon as the adsorbent to micro-crystals in solutions[J].Journal of Crystal Growth,2011,328(1): 89-94.
[25] [25] Ruiz B, Jazbinsek M, Gunter P. Crystal Growth of DAST[J].Crystal Growth and Design,2008,8(11): 4173-4184.
[26] [26] Cao L F, Teng B, Xu D G, et al. Growth, transmission, raman spectrum and THz generation of DAST crystal[J].RSC Advances,2016,6(103): 101389-101394.
[27] [27] Wen X, Xu X D, Zhou H X, et al. Growth of 4-N,N-dimethylamino-4-N-methylstilbazolium tosylate (DAST) organic single crystals controlled by oleic acid[J].Crystals,2019,9(10): 494-501.
[30] [30] Carvajal J J, Pujol M C, Diaz F. High-temperature solution growth: application to laser and nonlinear optical crystals[M].Part C Solution Growth of Crystals,2010: 725-757.
[31] [31] Nikogosyan D N. Nonlinear optical crystals: a complete survey[M].Springer Science Business Media,Inc.,New York,2005: 19-35.
[32] [32] Tu H, Hu Z G, Zhao Y, et al. Growth of large aperture LBO crystal applied in high power OPCPA schemes[J].Journal of Crystal Growth, 2020, 546(15): 125728.
[33] [33] Kokh A, Kononova N, Mennerat G, et al. Growth of high quality large size LBO crystals for high energy second harmonic generation[J].Journal of Crystal Growth,2010,312(10): 1774-1778.
[34] [34] Hu Z G, Zhao Y, Yue Y C, et al. Large LBO crystal growth at 2 kg-level[J].Journal of Crystal Growth,2011,335(1): 133-137.
[35] [35] Lu Q H, Long X F, Hu Y H. Top-seeded solution growth and characterization of PMN-0.31PT piezoelectric single crystals[J].CrystEngComm,2010,12,4317-4320.
[36] [36] Liu S S, Zhang G C, Li X M, et al. Growth and characterization of CsB3O5 crystals without scattering centers[J].CrystEngComm,2012,14(14): 4738-4744.
[37] [37] Wang Z M, Rajesh D, Yoshimura M, et al. Enhancement of the CsB3O5(CBO) crystal quality by fast cooling after crystal growth[J].Journal of Crystal Growth,2011,318(1): 625-628.
[38] [38] Liu S S, Zhang G C, Feng K, et al. Growth, thermophysical and dielectric properties of the nonlinear optical crystal CsB3O5[J].Journal of Crystal Growth,2013,364: 46-50.
[39] [39] Tsvetkov E G. Some reasons for the formation of grain boundaries and melt inclusions in growing large BBO crystals by TSSG technique[J].Journal of Crystal Growth,2006,297(1): 259-263.
[40] [40] Perlov D,Livneh S, Czechowicz P, et al. Progress in growth of large β-BaB2O4 single crystals[J].Crystal Research Technology,2011,46(7): 651-654.
[41] [41] Liu L J, Xu T, Wang X L, et al. Defects in flux grown KBe2BO3F2 crystals[J].Journal of Crystal Growth,2014,401: 824-827.
[42] [42] Xia Y N, Chen C T, Tang D Y, et al. New Nonlinear Optical Crystals for UV and VUV Harmonic Generation[J].Advanced Materials,1995,7(1): 79-81.
[43] [43] Zhai N X, Wang L R, Liu L J, et al. Measurement of thermal refractive index coefficients of nonlinear optical crystal RbBe2BO3F2[J].Optical Materials,2013,36(2): 333-336.
[44] [44] Wu H X, Wang G L, Wang X Y, et al. Sellmeier equations and phase-matching characteristics of the nonlinear optical crystal RbBe2BO3F2[J].Applied Optics,2009,48(21): 4118-4123.
[45] [45] Chen C T, Luo S Y, Wang X Y, et al. Deep UV nonlinear optical crystal: RbBe2(BO3)F2[J].Journal of the Optical Society of America B,2009,26(8): 1519-1525.
[46] [46] Bao C C, Wang L, Sun R. Properties analysis of novel nonlinear crystal: CsBe2BO3F2 by frequency doubling[J].Journal of Optical Microsystems,2012,8554: 855418-855424.
[47] [47] Huang H W, Chen C T, Wang X Y, et al. Ultraviolet nonlinear optical crystal: CsBe2BO3F2[J].Journal of the Optical Society of America B,2011,28(9): 2186-2190.
[48] [48] Yap Y K, Inagaki M, Nakajima S, et al. High-power fourth- and fifth-harmonic generation of a Nd: YAG laser by means of a CsLiB6O10[J].Optics Letters,1996,21(17): 1348-1350.
[49] [49] Yuan X, Shen G Q, Wang X Q, et al. Growth and characterization of large CLBO crystals[J].Journal of Crystal Growth,2006,293(1): 97-101.
[52] [52] Sasakia Y, Yuri Avetisyan, Kawase K, et al. Terahertz-wave surface-emitted difference frequency generation in slant-stripe-type periodically poled LiNbO3 crystal[J].Applied Physics Letters,2002,81(18): 3323-3325.
[53] [53] Sun J, Kong Y F, Zhang L, et al. Growth of large-diameter nearly stoichiometric lithium niobate crystals by continuous melt supplying system[J].Journal of Crystal Growth,2006,292(2): 351-354.
[54] [54] Wang S, Ji C, Dai P, et al. The growth and characterization of six inch lithium niobate crystals with high homogeneity[J].CrystEngComm,2020,22: 794-801.
[55] [55] Zawilski K T, Schunemann P G, Pollak T C, et al. Growth and characterization of large CdSiP2 single crystals[J].Journal of Crystal Growth,2010,312(8): 1127-1132.
[56] [56] Zhang G D, Wei L, Zhang L Z, et al. Growth and polarized raman spectroscopy investigations of single crystal CdSiP2: Experimental measurements and ab initio calculations[J].Journal of Crystal Growth,2017,473: 28-33.
[59] [59] Zawilski K T, Schunemann P G, Setzler S D, et al. Large aperture single crystal ZnGeP2 for high-energy applications[J].Journal of Crystal Growth,2008,310(7): 1891-1896.
[61] [61] Lei Z T, Zhu C Q, Xu C, et al. Growth of crack-free ZnGeP2 large single crystals for high-powermid-infrared OPO applications[J].Journal of Crystal Growth,2014,389: 23-29.
[62] [62] Huang C B, Wu H X, Xiao R C, et al. High pressure assisted synthesis of high volume ZnGeP2 polycrystalline[J].Journal of Crystal Growth,2018,492: 24-28.
[63] [63] Zhang G D, Tao X T, Wang S P, et al. Growth improvement and quality evaluation of ZnGeP2 single crystals using vertical Bridgman method[J].Journal of Crystal Growth,2012,352(1): 67-71.
[64] [64] Guo Y W, Li Z, Lei Z T, et al. Synthesis, growth of crack-free large-size BaGa4Se7 crystal, and annealing studies[J].Crystal Growth & Design,2019,19(2): 1282-1287.
[65] [65] Yao J Y, Yin W L, Feng K, et al. Growth and characterization of BaGa4Se7 crystal[J].Journal of Crystal Growth,2012,346(1): 1-4.
[66] [66] Xu W T, Xu D G, Wang Y Y. Review of a new IR nonlinear optical BaGa4Se7 crystal[J].Journal of Electronic Science and Technology,2016,14(1): 6-11.
[67] [67] Guo Y F, Zhou Y Q, Lin X S, et al. Growth and characterizations of BaGa4S7 crystal[J].Optical Materials,2014,36(12): 2007-2011.
[68] [68] Jia N, Xiong X X, Wang S P, et al. Optimized oriented seed growth and optical properties of high-quality LiInSe2 crystals[J].CrystEngComm,2018,20: 7802-7803.
[69] [69] Magesh M, Arunkumar A, Vijayakumar P, et al. Investigation of optical property in LiInSe2 single crystal grown by Bridgman Stockbarger method using stepper translations for mid IR laser application[J].Optics & Laser Technology,2014,56: 177-181.
[70] [70] Wu J, Huang W, Liu H G, et al. Investigation of the thermal properties and crystal growth of the nonlinear optical crystals AgGaS2 and AgGaGeS4[J].Crystal Growth & Design,2020,20: 3140-3153.
[71] [71] Post E, Kramer V. Crystal growth of AgGaS2 by the bridgman stockbarger and travelling heater methods[J].Journal of Crystal Growth,1993,129: 485-490.
[72] [72] Babu A G, Karunagaran N, Ramasamy R P, et al. Growth improvement of AgGaSe2 single crystal using the vertical bridgman technique with steady ampoule rotation and its characterization[J].Journal of Crystal Growth,2012,338(1): 42-46.
[73] [73] Zhao B J, Zhu S F, Fu S S, et al. New way of preparation and orientation processing of AgGaSe2 crystals[J].Materials Research Bulletin,2000,35(9): 1525-1532.
Get Citation
Copy Citation Text
DANG Junhui, MEI Dajiang, WU Yuandong. Review of Growth Method for Typical Nonlinear Optical Crystal[J]. Journal of Synthetic Crystals, 2020, 49(7): 1308
Category:
Received: --
Accepted: --
Published Online: Aug. 18, 2020
The Author Email: Junhui DANG (2310278287@qq.com)
CSTR:32186.14.