TY - JOUR
T1 - Stabilization Factor of Anion-Excess Fluorite Phase for Fast Anion Conduction
AU - Fukui, Keiga
AU - Iimura, Soshi
AU - Wang, Junjie
AU - Tada, Tomofumi
AU - Honda, Takashi
AU - Ikeda, Kazutaka
AU - Otomo, Toshiya
AU - Hosono, Hideo
N1 - Funding Information:
This study was supported by MEXT Elements Strategy Initiative to form Core Research Center. A portion of this work was supported by JSPS KAKENHI Grant-in-Aid for Scientific Research on Innovative Areas “Hydrogenomics”, No. 19H05050 and JP18H05518. S.I. was also supported by the Japan Society for the Promotion of Science (JSPS) through the Grant-in-Aid for Early-Career Scientists (Grant No. 18K13499) and the PRESTO program (Grant Number: JPMJPR19T1) of the JST. J. W. was also supported by National Natural Science Foundation of China (Grants No. 51872242) and the Fundamental Research Funds for the Central Universities (No. D5000200142). The neutron scattering experiment at MLF of the J-PARC was approved by the Neutron Scattering Program Advisory Committee of IMSS, KEK (Proposal No. 2014S06).
Publisher Copyright:
© 2021 American Chemical Society.
PY - 2021/3/9
Y1 - 2021/3/9
N2 - Anion-excess fluorite is a unique structure type of inorganic crystals and is well known as an appropriate crystal structure for fast anion conduction. In particular, the introduction of excess anion and charged defect by chemical doping significantly enhances the conductivity. However, the clustering of dopants and defects is the main obstacle for further enhancement of conductivity. We investigated the pressure-chemical composition phase diagram of the LaHO-LaH3 system, in which the highly H- conducting LaH1+2xO1-x phase with the anion-excess fluorite structure appears. The sample at x = 0 crystallizes in a distorted fluorite structure with a monoclinic symmetry. For 0 < x ≤ 1, the fluorite lattice is maintained while H- and O2- ions are disordered at the regular anion position of fluorite, and an excess H- is distributed at the interstitial site. Comparing the phase diagram and crystal structure with those of the La-F-O, Y-H-O, and Y-F-O systems, we found that the large radius ratio of cations and anions in LaH1+2xO1-x alleviates the intrinsic Coulomb repulsion between the anions at regular positions in fluorite and the interstitial atoms. This is crucial in stabilizing the anion-excess fluorite structure without forming defect clustering and enabling fast anion conduction. These results provided guidelines for avoiding cluster formation and achieving higher conductivity in the fluorite structure.
AB - Anion-excess fluorite is a unique structure type of inorganic crystals and is well known as an appropriate crystal structure for fast anion conduction. In particular, the introduction of excess anion and charged defect by chemical doping significantly enhances the conductivity. However, the clustering of dopants and defects is the main obstacle for further enhancement of conductivity. We investigated the pressure-chemical composition phase diagram of the LaHO-LaH3 system, in which the highly H- conducting LaH1+2xO1-x phase with the anion-excess fluorite structure appears. The sample at x = 0 crystallizes in a distorted fluorite structure with a monoclinic symmetry. For 0 < x ≤ 1, the fluorite lattice is maintained while H- and O2- ions are disordered at the regular anion position of fluorite, and an excess H- is distributed at the interstitial site. Comparing the phase diagram and crystal structure with those of the La-F-O, Y-H-O, and Y-F-O systems, we found that the large radius ratio of cations and anions in LaH1+2xO1-x alleviates the intrinsic Coulomb repulsion between the anions at regular positions in fluorite and the interstitial atoms. This is crucial in stabilizing the anion-excess fluorite structure without forming defect clustering and enabling fast anion conduction. These results provided guidelines for avoiding cluster formation and achieving higher conductivity in the fluorite structure.
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U2 - 10.1021/acs.chemmater.1c00064
DO - 10.1021/acs.chemmater.1c00064
M3 - Article
AN - SCOPUS:85103495558
SN - 0897-4756
VL - 33
SP - 1867
EP - 1874
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 5
ER -