| Literature DB >> 27461135 |
Yonggang Wang1,2, Ligang Bai3, Ting Wen4, Liuxiang Yang5,6, Huiyang Gou6, Yuming Xiao3, Paul Chow3, Michael Pravica7, Wenge Yang8,9, Yusheng Zhao10,11.
Abstract
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 Mn(2+) (d(5) ) 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 Mn(2+) in manganese chalcogenides and also provide deeper insights toward the exploration of new metastable phases with exceptional functionalities.Entities:
Keywords: high pressure; intermetallic bonding; lattice collapse; manganese chalcogenides; spin-state transitions
Year: 2016 PMID: 27461135 DOI: 10.1002/anie.201605410
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336