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Chin. Phys. B, 2020, Vol. 29(9): 098103    DOI: 10.1088/1674-1056/ab99b9
INTERDISCIPLINARY PHYSICS AND RELATED AREAS OF SCIENCE AND TECHNOLOGY Prev   Next  

Crystallization and characteristics of {100}-oriented diamond with CH4N2S additive under high pressure and high temperature

Yong Li(李勇), Debing Tan(谭德斌), Qiang Wang(王强), Zhengguo Xiao(肖政国), Changhai Tian(田昌海), Lin Chen(陈琳)
Department of Physics and Electrical Engineering, Tongren University, Tongren 554300, China
Abstract  Diamond crystallization was carried out with CH4N2S additive in the FeNiCo-C system at pressure 6.0 GPa and temperature ranging from 1290 ℃ to 1300 ℃. The crystallization qualities of the synthetic crystals were characterized by Raman spectra and the Raman peaks located at 1331 cm-1. Fourier transform infrared (FTIR) results showed that the hydrogen-related absorption peak of the as-grown diamond was at 2920 cm-1, respectively. Interestingly, A-center nitrogen was observed in the obtained diamond and the characteristic absorption peaks located at 1095 cm-1 and 1282 cm-1. Especially, the absorption peak at 1426 cm-1 attributing to the aggregation B-center nitrogen defect was distinctly found when the CH4N2S content reached 0.3 mg in the synthesis system, which was extremely rare in synthetic diamond. Furthermore, optical color centers in the synthesized crystals were investigated by photoluminescence (PL).
Keywords:  high pressure and high temperature      diamond      crystallization      characteristics  
Received:  06 May 2020      Revised:  28 May 2020      Accepted manuscript online:  05 June 2020
PACS:  92.60.hv (Pressure, density, and temperature)  
  81.05.ug (Diamond)  
  81.10.-h (Methods of crystal growth; physics and chemistry of crystal growth, crystal morphology, and orientation)  
  61.72.jn (Color centers)  
Fund: Project supported by the National Natural Science Foundation of China (Grant No. 11604246), Natural Science Foundation of Guizhou Province Education Department of China (Grant Nos. KY2017053 and KY2018343), Natural Science Foundation of Guizhou Procince Science and Technology Agency of China (Grant Nos. 20181163 and LH 20177311), and Outstanding Young Science and Technology Talents of Guizhou Pronice of China (Grant No. 20195673).
Corresponding Authors:  Yong Li     E-mail:  likaiyong6@163.com

Cite this article: 

Yong Li(李勇), Debing Tan(谭德斌), Qiang Wang(王强), Zhengguo Xiao(肖政国), Changhai Tian(田昌海), Lin Chen(陈琳) Crystallization and characteristics of {100}-oriented diamond with CH4N2S additive under high pressure and high temperature 2020 Chin. Phys. B 29 098103

[1] Guo M M, Li S S, Hu M H, Su T C, Wang J Z, Gao G J, You Y and Nie Y 2020 Chin. Phys. B 29 018101
[2] Li Y, Li Y D, Wang Y, Zhang J, Song M S, She Y C and Chen X Z 2018 Cryst. Eng. Comm. 20 4127
[3] Angerer A, Streltsov K, Astner T, Putz S, Sumiya H, Onoda S, Isoya J, Munro W J, Nemoto K, Schmiedmayer J and Majer J 2018 Nat. Phys. 14 1168
[4] Dutt M V G, Childress L, Jiang L, Togan E, Maze J, Jelezko F, Zibrov A S, Hemmer P R and Lukin M D 2007 Science 316 1312
[5] Maze J R, Stanwix P L, Hodges J S, Hong S, Taylor J M, Cappellaro P, Jiang L, Zibrov A S, Yacoby A, Walsworth R L and Lukin M D 2008 Nature 455 644
[6] Zhang J F, Yang P Z, Ren Z Y, Zhang J C, Xu S R, Zhang C F, Xu L and Hao Y 2018 Acta Phys. Sin. 67 068101 (in Chinese)
[7] Xu H, Liu J J, Ye H T, Coathup D J, Khomich A V and Hu X J 2018 Chin. Phys. B 27 096104
[8] Hu M H, Bi N, Li S S, Su T C, Hu Q, Jia X P and Ma H A 2015 Chin. Phys. B 24 038101
[9] Wang J Z, Li S S, Hu M H, Su T C, Gao G J, Guo M M, You Y and Nie Y 2020 Int. J. Refract. Met. Hard Mater. 87 105150
[10] Briddon P R and Jones R 1993 Physica B 185 179
[11] Salustro S, Ferrari A M, Gentile F S, Denmarais J K and Rérat M 2018 J. Phys. Chem. A 122 594
[12] Sutherland G B B M, Blackwell D E and Simeral W G 1954 Nature 174 901
[13] Li Y, Jia X P, Hu M H, Yan B M, Zhou Z X, Fang C, Zhang Z F and Ma H A 2012 Int. J. Refract. Met. Hard Mater. 34 27
[14] Guo L S, Ma H A, Chen L C, Chen N, Miao X Y, Wang Y, Fang S, Yang Z Q, Fang C and Jia X P 2018 Cryst. Eng. Comm. 20 5457
[15] Li Y, Jia X P, Yan B M, Zhou Z X, Fang C, Zhang Z F, Sun S S and Ma H A 2012 Journal of Crystal Growth 359 49
[16] Pal'yanov Y N, Kupriyanov I N, Borzdov Y M, Sokol A G and Khokhryakov A F 2009 Cryst. Growth Des. 9 2922
[17] Meng Y F, Yan C S, Lai J, Krasnicki S, Shu H Y, Yu T, Liang Q, Mao H K and Hemley Russell J 2008 Proc. Acad. Natl. Sci. USA 105 17620
[18] Akaishi M, Handa H, Sato Y, Setaka N, Ohsawa T and Fukunaga O 1982 J. Mater. Sci. 17 193
[19] Fuchs F, Wild C, Schwarz K and Koidl P 1995 Diam. Relat. Mater. 4 652
[20] Li Y, Jia X P, Hu M H, Liu X B, Yan B M, Zhou Z X, Zhang Z F and Ma H A 2012 Chin. Phys. B 21 058101
[21] Huang G F, Jia X P, Yin J W, Ma H A and Zheng Y J 2013 Int. J. Refractory Metals and Hard Mater 41 517
[22] Liu X B, Jia X P, Fang C and Ma H A 2016 Cryst. Eng. Comm. 18 8506
[23] Chen N, Ma H A, Yan B M, Chen L C, Chen L X, Guo L S, Miao X Y, Fang C and Jia X P 2018 Cryst. Growth Des. 18 3870
[24] Mainwood A 1994 Phys. Rev. B 49 7934
[25] Li Y, Li S S, She Y C and Guan X M 2017 Journal of Synthetic Crystals 46 778 (in Chinese)
[26] Lindblom J, Hölsä J, Papunen H and Häkkänen H 2005 American Mineralogist 90 428
[27] Stanwix P L, Pham L M, Maze J R, Le Sage D, Yeung T K, Cappelllaro P, Hemmer P R, Yacoby, Lukin M D and Walsworth R L 2010 Phys. Rev. B 82 201201
[28] Chen L C, Miao X Y, Ma H A, Guo L S, Wang Z K, Yang Z Q, Fang C and Jia X P 2018 Cryst. Eng. Comm. 20 7164
[29] Rabeau J R, Chin Y L, Prawer S, Jelezko F, Gaebel T and Wrachtrup J 2005 Appl. Phys. Lett. 86 131926
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