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Local Vibrational Modes of Zn-H-P in GaP, InP and ZnTe

机译:GaP,InP和ZnTe中Zn-H-P的局部振动模式

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We have investigated the hydrogenation of the zinc acceptor in GaP and InP, and of the phosphorus acceptor in ZnTe, by computer modeling. We used a density-functional supercell code and pseudopotentials to deal with the core electrons. However zinc 3d electrons were explicitly taken to be valence electrons. We have determined the relaxed atomic geometry for seven hydrogen sites. We have found that, in the lowest total energy configuration, hydrogen sits in a bond centered position between zinc and arsenic atoms in all GaP, InP and ZnTe semiconductors and is bonded to the phosphorus atom. We found metastable states, by 0.4, 0.4 and 0.5 eV, for structures where H is antibonding to the phosphorus atom for GaP, InP and ZnTe, respectively. The calculated local vibrational modes (LVM) for the bond-centered configuration agree, within 1%, with the experimental values of 2379.0 cm"1 for GaP:Zn-H, 2287.7 cm"1 for InP:Zn-H and 2193 cm'1 for ZnTe:P-H. The isotopic shift due to the replacement of deuterium by hydrogen is reproduced by less than 2.5% using experimental data. The decrease in the LVM when going from GaP to ZnTe, as the perfect bond length increases, is also well-reproduced. A wag mode at 496 cm~(-1) and lower LVM, a doublet at 329 cm~(-1) and a singlet at 242 cm~(-1), are predicted for P-H in ZnTe.
机译:我们已经通过计算机建模研究了GaP和InP中锌受体的氢化以及ZnTe中磷受体的氢化。我们使用密度函数的超级电池代码和伪势来处理核心电子。然而,锌3d电子明确地被认为是价电子。我们确定了七个氢位的弛豫原子几何。我们发现,在最低的总能量配置中,氢位于所有GaP,InP和ZnTe半导体中的锌和砷原子之间的键中心位置,并且与磷原子键合。我们发现,对于H分别与GaP,InP和ZnTe的磷原子抗键合的结构,其亚稳态分别为0.4、0.4和0.5 eV。以键为中心的构型的计算局部振动模式(LVM)与GaP:Zn-H的2379.0 cm“ 1,InP:Zn-H的2287.7 cm” 1和2193 cm'的实验值一致,在1%以内ZnTe:PH为1。根据实验数据,由于氘被氢替代而引起的同位素迁移小于2.5%。当完美的键长增加时,从GaP变为ZnTe时LVM的降低也得到了很好的再现。预测ZnTe中的P-H在496 cm〜(-1)和较低的LVM摆动模式,329 cm〜(-1)的双峰和242 cm〜(-1)的单峰。

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