Literature DB >> 22296219

Giant magnetoelastic effect at the opening of a spin-gap in Ba3BiIr2O9.

Wojciech Miiller1, Maxim Avdeev, Qingdi Zhou, Brendan J Kennedy, Neeraj Sharma, Ramzi Kutteh, Gordon J Kearley, Siegber Schmid, Kevin S Knight, Peter E R Blanchard, Chris D Ling.   

Abstract

As compared to 3d (first-row) transition metals, the 4d and 5d transition metals have much more diffuse valence orbitals. Quantum cooperative phenomena that arise due to changes in the way these orbitals overlap and interact, such as magnetoelasticity, are correspondingly rare in 4d and 5d compounds. Here, we show that the 6H-perovskite Ba(3)BiIr(2)O(9), which contains 5d Ir(4+) (S = 1/2) dimerized into isolated face-sharing Ir(2)O(9) bioctahedra, exhibits a giant magnetoelastic effect, the largest of any known 5d compound, associated with the opening of a spin-gap at T* = 74 K. The resulting first-order transition is characterized by a remarkable 4% increase in Ir-Ir distance and 1% negative thermal volume expansion. The transition is driven by a dramatic change in the interactions among Ir 5d orbitals, and represents a crossover between two very different, competing, ground states: one that optimizes direct Ir-Ir bonding (at high temperature), and one that optimizes Ir-O-Ir magnetic superexchange (at low temperature).

Entities:  

Year:  2012        PMID: 22296219     DOI: 10.1021/ja211517h

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  1 in total

1.  Localized Spin Dimers and Structural Distortions in the Hexagonal Perovskite Ba3CaMo2O9.

Authors:  Struan Simpson; Michael Milton; Sacha Fop; Gavin B G Stenning; Harriet Alexandra Hopper; Clemens Ritter; Abbie C Mclaughlin
Journal:  Inorg Chem       Date:  2022-07-19       Impact factor: 5.436

  1 in total

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