金属间化合物
亚稳态
凝聚态物理
过渡金属
相变
锰
自旋态
格子(音乐)
自旋跃迁
化学
材料科学
旋转交叉
化学物理
结晶学
物理
冶金
有机化学
催化作用
生物化学
合金
声学
作者
Yonggang Wang,Ligang Bai,Ting Wen,Liuxiang Yang,Huiyang Gou,Yuming Xiao,Paul Chow,Michael Pravica,Wenge Yang,Yusheng Zhao
标识
DOI:10.1002/anie.201605410
摘要
Materials with an abrupt volume collapse of more than 20 % during a pressure-induced phase transition are rarely reported. In such an intriguing phenomenon, the lattice may be coupled with dramatic changes of orbital and/or the spin-state of the transition metal. A combined in situ crystallography and electron spin-state study to probe the mechanism of the pressure-driven lattice collapse in MnS and MnSe is presented. Both materials exhibit a rocksalt-to-MnP phase transition under compression with ca. 22 % unit-cell volume changes, which was found to be coupled with the Mn2+(d5) spin-state transition from S=5/2 to S=1/2 and the formation of Mn−Mn intermetallic bonds as supported by the metallic transport behavior of their high-pressure phases. Our results reveal the mutual relationship between pressure-driven lattice collapse and the orbital/spin-state of Mn2+ in manganese chalcogenides and also provide deeper insights toward the exploration of new metastable phases with exceptional functionalities.
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