Pressure-induced charge amorphisation in BiNiO3
Abstract
Abstract The order or disorder of electrons is fundamental to materials properties and also provides simple analogues to the different states of matter. A charge ordered (CO) insulating state, analogous to a crystalline solid, is observed in many mixed valence materials. On heating, this melts to a charge liquid (metallic) phase, often with interesting associated physics and functions such as the Verwey transition of Fe 3 O 4 , colossal magnetoresistances in manganites (e.g., La 0.5 Ca 0.5 MnO 3 ), and superconductivity in K-doped BaBiO 3 . Here we report the observation of pressure induced charge amorphisation in a crystalline material. BiNiO 3 has charge distribution Bi 3+ 0.5 Bi 5+ 0.5 Ni 2+ O 3 with long range order of the Bi 3+ and Bi 5+ states at ambient pressure, but adopts another, structurally crystalline, but charge glassy, insulating phase at pressures of 4–5 GPa and temperatures below 200 K, before metallization above 6 GPa. This is analogous to the much-studied pressure induced amorphisations of many crystalline materials and melting is even observed at accessible pressure/temperature. BiNiO 3 provides fundamental insights to the study of amorphisation using charge states rather than atoms or molecules.
Article Details
Authors (20)
Wei-Tin Chen
Center for Condensed Matter Sciences and Center of Atomic Initiative for New Materials
Takumi Nishikubo
Kanagawa Institute of Industrial Science and Technology, 705-1 Shimoimaizumi, Ebina, Kanagawa 243-0435, Japan
Yuki Sakai
Hena Das
Materials and Structures Laboratory, Institute of Integrated Research
Masayuki Fukuda
Zhao Pan
Beijing National Laboratory for Condensed Matter Physics
Naoki Ishimatsu
Masaichiro Mizumaki
Naomi Kawamura
Saori I. Kawaguchi
Olga Smirnova
Mathew G. Tucker
Tetsu Watanuki
Synchrotron Radiation Research Center, Kansai Institute for Photon Science, National Institutes for Quantum Science and Technology (QST), SPring-8, 1-1-1, Sayo-cho, Hyogo 679-5148, Japan
Akihiko Machida
Synchrotron Radiation Research Center, Kansai Institute for Photon Science, National Institutes for Quantum Science and Technology (QST), SPring-8, 1-1-1, Sayo-cho, Hyogo 679-5148, Japan
Shigehiro Takajo
Yoshiya Uwatoko
Yuichi Shimakawa
Mikio Takano
Masaki Azuma
Kanagawa Institute of Industrial Science and Technology, 705-1 Shimoimaizumi, Ebina, Kanagawa 243-0435, Japan
J. Paul Attfield