Sim Sangjun, Jeong Min Yong, Lee Hyunggeun, Lee Dong Hyun David, Han Myung Joon
Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Korea.
Phys Chem Chem Phys. 2024 Apr 17;26(15):11715-11721. doi: 10.1039/d4cp00517a.
To understand the alkali-metal-dependent material properties of recently discovered AVSb (A = K, Rb, and Cs), we conducted a detailed electronic structure analysis based on first-principles density functional theory calculations. Contrary to the case of A = K and Rb, the energetic positions of the low-lying Van Hove singularities are reversed in CsVSb, and the characteristic higher-order Van Hove point gets closer to the Fermi level. We found that this notable difference can be attributed to the chemical effect, apart from structural differences. Due to their different orbital compositions, Van Hove points show qualitatively different responses to the structure changes. A previously unnoticed highest lying point can be lowered, locating close to or even below the other ones in response to a reasonable range of bi- and uni-axial strain. Our results can be useful in better understanding the material-dependent features reported in this family and in realizing experimental control of exotic quantum phases.
为了理解最近发现的AVSb(A = K、Rb和Cs)中碱金属依赖的材料特性,我们基于第一性原理密度泛函理论计算进行了详细的电子结构分析。与A = K和Rb的情况相反,在CsVSb中低能范霍夫奇点的能量位置发生了反转,并且特征高阶范霍夫点更接近费米能级。我们发现,除了结构差异外,这种显著差异可归因于化学效应。由于它们不同的轨道组成,范霍夫点对结构变化表现出定性不同的响应。一个先前未被注意到的最高能级点可以被降低,在合理范围的双轴和单轴应变作用下,其位置接近甚至低于其他点。我们的结果有助于更好地理解该家族中报道的材料相关特征,并实现对奇异量子相的实验控制。