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An Exhaustive Symmetry Approach to Structure Determination: Phase Transitions in Bi2Sn2O7
Author(s) -
James W. Lewis,
Julia L. Payne,
Ivana Radosavljević Evans,
Harold T. Stokes,
Branton J. Campbell,
John S. O. Evans
Publication year - 2016
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.6b04947
Subject(s) - orthorhombic crystal system , symmetry (geometry) , chemistry , pyrochlore , phase transition , lone pair , monoclinic crystal system , crystallography , phase (matter) , condensed matter physics , crystal structure , physics , molecule , geometry , mathematics , organic chemistry
The exploitable properties of many materials are intimately linked to symmetry-lowering structural phase transitions. We present an automated and exhaustive symmetry-mode method for systematically exploring and solving such structures which will be widely applicable to a range of functional materials. We exemplify the method with an investigation of the Bi2Sn2O7 pyrochlore, which has been shown to undergo transitions from a parent γ cubic phase to β and α structures on cooling. The results include the first reliable structural model for β-Bi2Sn2O7 (orthorhombic Aba2, a = 7.571833(8), b = 21.41262(2), and c = 15.132459(14) Å) and a much simpler description of α-Bi2Sn2O7 (monoclinic Cc, a = 13.15493(6), b = 7.54118(4), and c = 15.07672(7) Å, β = 125.0120(3)°) than has been presented previously. We use the symmetry-mode basis to describe the phase transition in terms of coupled rotations of the Bi2O' anti-cristobalite framework, which allow Bi atoms to adopt low-symmetry coordination environments favored by lone-pair cations.

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