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高压下γ-Ca_3N_2晶体的结构,电子和光学性质的第一性原理研究 被引量:2

First Principles Study of the Structural,Electronic and Optical Properties of γ-Ca_3N_2 Crystal Under High Pressure
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摘要 采用广义梯度近似(GGA)框架下平面波超软赝势第一性原理方法,研究了γ-Ca_3N_2晶体在0~115GPa高压下的结构、电子和光学性质.晶体中两种不同类型的Ca—N键长随压强的变化表明八面体的Ca—N键长比十二面体的键长有轻微的压缩.随着压强增大,价带向高能区移动,而导带向低能扩展,晶体的带隙变窄.基于Mulliken布局分析,γ-Ca_3N_2晶体随着压强增大,共价性增强.同时,在高压下晶体的吸收光谱显示出红移的趋势. A plane wave ultrasoft pseudopotential implementation of first principles in the framework of the generalized gradient approximation(GGA)is utilized to calculate the structural,electronic and optical properties of the γ-Ca3N2 crystal under a hydrostatic pressure of 0-115 GPa.The change of bond lengths of two different types of Ca—N bond with pressure demonstrates that the octahedral Ca—N bond is slightly compressible compared to the dodecahedral Ca—N.As the pressure increases,the valence band moves toward the high energy region,while the conduction band extends toward the low energy region,and the band gap of the crystal becomes narrower.Based on the Mulliken population analysis,the crystal displays a much higher covalent character with increasing pressure.In addition,the absorption spectra of γ-Ca3N2 crystal show a trend of red shift under high pressure.
出处 《西南大学学报(自然科学版)》 CAS CSCD 北大核心 2018年第2期78-84,共7页 Journal of Southwest University(Natural Science Edition)
基金 国家自然科学基金项目(11504153) 贵州省科技厅联合基金项目(黔科合LH[2014]7525) 贵州工程应用技术学院自然科学基金项目(20112025)
关键词 γ-Ca3N2晶体 高压 结构变化 电子性质 γ-Ca3N2 crystal high pressure structural alteration electronic property
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  • 1ZHONG J G, JIN J, WU K Z, et al. Measurement of Optically Induced Refractive Index Damage of Lithium Niobate Doped with Different Concentration of MgO [C]//11^th International Quantum Electronics Coference, NewYork: IEEE catalog, No. 80, CH1561 -0, 1980: 631--637. 被引量:1
  • 2VOLK T R, PRYALKIN V I, RUBININA N M, et al. Optical-Damage Resistant LiNbO3 : Zn Crystal [J]. Optics Let- ters, 1990, 15(18): 996--998. 被引量:1
  • 3VOLK T R, RUBININA N M, WOHELCKE M, et al. Optical-Damage Resistant Impurities in Lithium Niobate [J]. Journal of the Optical Society of America B: Optical Physics, 1994, 11(9): 1681--1687. 被引量:1
  • 4YAMAMOTO J K, YANAZAKI T, YAMAGISHI K, et al. Noncritical Phase Mateching and Photorefractive Damage in Sc2O3 : LiNbO3 [J]. Applied Physics Letters, 1994, 64(24): 3228--3230. 被引量:1
  • 5HAMANN D R, SCHLUTER M, CHIANG C. Norm-Conserving Pseudopotentials [J]. Physical Review Letters, 1979, 43:1494 -1497. 被引量:1
  • 6PERDEW J P, ZUNGER A. Self Interaction Correction to Density Functional Approximations for Many Electron Sys- tems [J]. Physical ReviewB, 1981, 23: 5048--5079. 被引量:1
  • 7SAHA S, SINHA T P, MOOKERJEE A. Electronic Structure, Chemical Bonding, and Optical Properties of Paraelec tric BaTiO3[J]. Physical Review B, 2000, 62.. 8828--8834. 被引量:1
  • 8POURGHAZI A, DADSETANI M. Electronic and Optical Properties of BaTe, BaSe and BaS from Frst Principles [J]. Physica B, 2005, 370: 35--45. 被引量:1
  • 9BARONI S, GIRONCOLI S DE, CORSO A D, et al. Perturbation Theory [J]. Reviews of Modern Physics, Phonons and Related Crystal Properties from Density-Functional 2001, 73(2): 515--562. 被引量:1
  • 10BURSHTEIN A I, SIVACHENKO A Y. Discrimination of Impact Approximations for Velocity and Velocity Sing Auto correlation Functions [J]. Journal of Chemical Physics, 1996, 210(3) : 427--433. 被引量:1

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