Dome-like pressure-temperature phase diagram of the cooperative Jahn-Teller distortion in NaNiO2.
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NaNiO2is a Ni3+-containing layered material consisting of alternating triangular networks of Ni and Na cations, separated by octahedrally-coordinated O anions. At ambient pressure, it features a collinear Jahn-Teller distortion belowTonsetJT≈480 K, which disappears in a first-order transition on heating toTendJT≈500 K, corresponding to the increase in symmetry from monoclinic to rhombohedral. It was previously studied by variable-pressure neutron diffraction (Nagle-Coccoet al2022ACS Inorg. Chem.614312) and found to exhibit an increasingTonsetJTwith pressure up to ∼5 GPa. In this work, powdered NaNiO2was studied via variable-pressure synchrotron x-ray diffraction up to pressures of ∼67 GPa at 294 K and 403 K. Suppression of the collinear Jahn-Teller ordering is observed via the emergence of a high-symmetry rhombohedral phase, with the onset pressure occurring at ∼18 GPa at both studied temperatures. Further, a discontinuous decrease in unit cell volume is observed on transitioning from the monoclinic to the rhombohedral phase. These results taken together suggest that in the vicinity of the transition, application of pressure causes the Jahn-Teller transition temperature,TonsetJT, to decrease rapidly. We conclude that the pressure-temperature phase diagram of the cooperative Jahn-Teller distortion in NaNiO2is dome-like.
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Acknowledgements: L A V N-C thanks George S Phillips and Farheen N Sayed at the University of Cambridge, Craig L Bull at ISIS Neutron and Muon Source, and Christopher J Ridley at Oak Ridge National Laboratory for useful discussions. The authors thank Diamond Light Source for access to the I15 instrument under beamtime provision CY31718. Crystal structure figures were prepared using Vesta-3 [70]. All other figures were prepared using Matplotlib [71] implemented in Python 3 [72].
Funder: Faraday Institution; doi: http://dx.doi.org/10.13039/100017146
Funder: Cambridge Philosophical Society; doi: http://dx.doi.org/10.13039/100013858
Funder: Cambridge Trust; doi: http://dx.doi.org/10.13039/501100003343
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1361-648X
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Faraday Institution (via University Of Sheffield) (FUTURECAT)
Engineering and Physical Sciences Research Council (EP/L015978/1)
EPSRC (EP/R513180/1)