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Chemical pressure-induced anion order–disorder transition in LnHO enabled by hydride size flexibility

Abstract:
While cation order–disorder transitions have been achieved in a wide range of materials and provide crucial effects in various physical and chemical properties, anion analogues are scarce. Here we have expanded the number of known lanthanide oxyhydrides, LnHO (Ln = La, Ce, Pr, Nd), to include Ln = Sm, Gd, Tb, Dy, Ho, and Er, which has allowed the observation of an anion order–disorder transition from the anion-ordered fluorite structure (P4/nmm) for larger Ln3+ ions (La–Nd) to a disordered arrangement (Fm3̅m) for smaller Ln3+ (Sm–Er). Structural analysis reveals that with the increase of Ln3+ radius (application of negative chemical pressure), the oxide anion in the disordered phase becomes too under-bonded, which drives a change to an anion-ordered structure, with smaller OLn4 and larger HLn4 tetrahedra, demonstrating that the size flexibility of hydride anions drives this transition. Such anion ordering control is crucial regarding applications that involve hydride diffusion such as catalysis and electrochemical solid devices.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1021/jacs.8b06187

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Role:
Author
ORCID:
0000-0001-9839-5669



Publisher:
American Chemical Society
Journal:
Journal of the American Chemical Society More from this journal
Volume:
140
Issue:
36
Pages:
11170–11173
Publication date:
2018-08-20
Acceptance date:
2018-07-18
DOI:
EISSN:
1520-5126
ISSN:
0002-7863
Pmid:
30126273


Language:
English
Pubs id:
pubs:911975
UUID:
uuid:f8bbf26f-0613-4850-b4fb-955cecc45909
Local pid:
pubs:911975
Source identifiers:
911975
Deposit date:
2018-09-26

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