Zurek Eva, Yao Yansun
Department of Chemistry, State University of New York at Buffalo , Buffalo, New York 14260-3000, United States.
Inorg Chem. 2015 Mar 16;54(6):2875-84. doi: 10.1021/ic5030235. Epub 2015 Mar 2.
A series of new superconducting binary silicides and germanides have recently been synthesized under high-pressure high-temperature conditions. A representative member of this group, BaGe3, was theoretically investigated using evolutionary structure searches coupled with structural analogies in the pressure range from 1 atm to 250 GPa, where three new phases were discovered. At 1 atm, in addition to the synthesized P63/mmc phase, we predicted two new phases, I4/mmm and Amm2, to be dynamically stable. The Amm2 structure comprises Ge clusters and triangular prisms intercalated with Ba and Ge atoms, a unique structural motif unknown to this group. The I4/mmm structure has been previously synthesized in binary silicides and is calculated to be thermodynamically stable in BaGe3 between 15.6 and 35.4 GPa. Above 35.4 GPa, two new phases of P6̅m2 and R3̅m symmetry become the global minima and remain so up to the highest pressure considered. These two phases have very similar enthalpies, and both feature layers of double Kagome nets of Ge intercalated with Ba-Ge layers. The predicted phases are suggested to be metallic with itinerant electrons and to be potentially superconducting from the considerable electron-phonon coupling strength. Density functional perturbation calculations combined with the Allen-Dynes-modified McMillan formula were used to estimate the superconducting critical temperatures (Tc) for these new phases, which, with slight pressure variations, are comparable to the experimental Tc measured for the P63/mmc phase.
最近在高压高温条件下合成了一系列新型超导二元硅化物和锗化物。该组的一个代表性成员BaGe3,在1个大气压至250 GPa的压力范围内,通过进化结构搜索结合结构类比进行了理论研究,发现了三个新相。在1个大气压下,除了合成的P63/mmc相外,我们预测了两个新相I4/mmm和Amm2是动态稳定的。Amm2结构由Ge簇和插入Ba和Ge原子的三角棱柱组成,这是该组未知的独特结构 motif。I4/mmm结构先前已在二元硅化物中合成,计算表明在15.6至35.4 GPa之间的BaGe3中是热力学稳定的。在35.4 GPa以上,P6̅m2和R3̅m对称的两个新相成为全局最小值,并在考虑的最高压力下保持如此。这两个相具有非常相似的焓,并且都具有插入Ba-Ge层的Ge双 Kagome 网层。预测的相被认为是具有巡游电子的金属,并且由于相当大的电子-声子耦合强度而可能是超导的。使用密度泛函微扰计算结合Allen-Dynes修正的McMillan公式来估计这些新相的超导临界温度(Tc),其在轻微的压力变化下与测量的P63/mmc相的实验Tc相当。