Isotropic Low Thermal Expansion over a Wide Temperature Range in Ti1–xZrxF3+x (0.1 ≤ x ≤ 0.5) Solid Solutions
Author(s) -
Cheng Yang,
Yugang Zhang,
Jianming Bai,
Peng Tong,
Jianchao Lin,
Haiyun Tong,
Lei Zhang,
Wen Wen,
Xingmin Zhang,
Yuping Sun
Publication year - 2018
Publication title -
inorganic chemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.348
H-Index - 233
eISSN - 1520-510X
pISSN - 0020-1669
DOI - 10.1021/acs.inorgchem.8b02593
Subject(s) - chemistry , thermal expansion , isotropy , atmospheric temperature range , range (aeronautics) , thermal , negative thermal expansion , crystallography , x ray crystallography , mineralogy , condensed matter physics , thermodynamics , composite material , diffraction , optics , physics , materials science
TiF 3 exhibits a rhombohedral to ReO 3 -type cubic phase transformation at ∼340 K. Here we report that, by introducing ZrF 4 into TiF 3 , the cubic phase is stabilized at least down to 123 K in the Ti 1- x Zr x F 3+ x compounds. All compounds exhibit low thermal expansion (LTE) between 123 and 623 K, and a nearly zero thermal expansion (ZTE) was obtained in Ti 0.7 Zr 0.3 F 3.3 (α L = 0.91 ppm/K). The analysis of pair distribution function reveals that the cation-centered octahedra are partially changed to pentagonal bipyramids in Ti 1- x Zr x F 3+ x due to the excess fluorines relative to the case of TiF 3 . Therefore, the cooperative rotation of the polyhedra tends to be restricted, and the cubic phase is thus stabilized. The restrained polyhedral rotations compete against the lattice softening caused by the introduction of Zr 4+ , giving rise to the LTE. Our present strategy is applicable to other rhombohedral metal trifluorides for the design of new isotropic ZTE materials.
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