December 2016

Journal

Charge disproportionation and the pressure-induced insulator-metal transition in cubic perovskite PbCrO3

By:
Cheng, Jinguang; Kweon, K. E.; Larregola, S. A.; Ding, Yang; Shirako, Y.; Marshall, Luke; Li, Z-Y; Moreira dos Santos, Antonio F; Suchomel, M.R.; Matsubayashi, Kazuyuki; Uwatoko, Yoshiya; Hwang, Gyeong; Goodenough, J.; Zhou, Jianshi
Journal Name:
Proceedings of the National Academy of Sciences
Page Number:
1670-1674
Volume:
112
Issue Number:
6
Publication Date:
December 2, 2016
View DOI Listing:
https://doi.org/10.1073/pnas.1424431112

Abstract

The perovskite PbCrO3 is an antiferromagnetic insulator. However, the fundamental interactions leading to the insulating state in this single-valent perovskite are unclear. Moreover, the origin of the unprecedented volume drop observed at a modest pressure of P = 1.6 GPa remains an outstanding problem. We report a variety of in situ pressure measurements including electron transport properties, X-ray absorption spectrum, and crystal structure study by X-ray and neutron diffraction. These studies reveal key information leading to the elucidation of the physics behind the insulating state and the pressure-induced transition. We argue that a charge disproportionation 3Cr(4+) -> 2Cr(3+) + Cr6+ in association with the 6s-p hybridization on the Pb2+ is responsible for the insulating ground state of PbCrO3 at ambient pressure and the charge disproportionation phase is suppressed under pressure to give rise to a metallic phase at high pressure. The model is well supported by density function theory plus the correlation energy U (DFT + U) calculations.