Synthesis of Defect Perovskites (He2–x□x)(CaZr)F6 by Inserting Helium into the Negative Thermal Expansion Material CaZrF6
Author(s) -
Brett R. Hester,
António M. dos Santos,
Jamie J. Molaison,
Justin C. Hancock,
Angus P. Wilkinson
Publication year - 2017
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.7b07860
Subject(s) - helium , chemistry , thermal expansion , neutron diffraction , hydrogen , stoichiometry , negative thermal expansion , noble gas , solubility , diffraction , analytical chemistry (journal) , crystal structure , crystallography , thermodynamics , organic chemistry , physics , optics
Defect perovskites (He 2-x □ x )(CaZr)F 6 can be prepared by inserting helium into CaZrF 6 at high pressure. They can be recovered to ambient pressure at low temperature. There are no prior examples of perovskites with noble gases on the A-sites. The insertion of helium gas into CaZrF 6 both elastically stiffens the material and reduces the magnitude of its negative thermal expansion. It also suppresses the onset of structural disorder, which is seen on compression in other media. Measurements of the gas released on warming to room temperature and Rietveld analyses of neutron diffraction data at low temperature indicate that exposure to helium gas at 500 MPa leads to a stoichiometry close to (He 1 □ 1 )(CaZr)F 6 . Helium has a much higher solubility in CaZrF 6 han silica glass or crystobalite. An analogue with composition (H 2 ) 2 (CaZr)F 6 would have a volumetric hydrogen storage capacity greater than current US DOE targets. We anticipate that other hybrid perovskites with small neutral molecules on the A-site can also be prepared and that they will display a rich structural chemistry.
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