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Tuning dimensionality in van-der-Waals antiferromagnetic Mott insulators <i>TM</i> PS <sub>3</sub>

Matthew CoakDepartment of Physics, University of Warwick, Gibbet Hill Road, Coventry CV4 7AL, United KingdomDavid M. JarvisCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomH. HamidovCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomCharles R. S. HainesDepartment of Earth Sciences, Cambridge University, Downing Street, Cambridge CB2 3EQ, United KingdomPatricia AlirezaCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomCheng LiuCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomSuhan SonCenter for Correlated Electron Systems, Institute for Basic Science, Seoul 08826, Republic of KoreaInho HwangCenter for Correlated Electron Systems, Institute for Basic Science, Seoul 08826, Republic of KoreaGiulio LamprontiDepartment of Earth Sciences, Cambridge University, Downing Street, Cambridge CB2 3EQ, United KingdomDominik DaisenbergerDiamond Light Source, Chilton, Didcot OX11 0DE, United KingdomP Nahai-WilliamsonCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomAndrew WildesInstitut Laue-Langevin, 6 rue Jules Horowitz, BP 156, 38042 Grenoble Cedex 9, FranceSiddharth SaxenaCavendish Laboratory, Cambridge University, J.J. Thomson Ave, Cambridge CB3 0HE, United KingdomJe-Geun ParkCenter for Correlated Electron Systems, Institute for Basic Science, Seoul 08826, Republic of Korea
ABI

Аннотация

. Low-dimensional magnetic systems such as these provide rich opportunities for studying new physics and the evolution of established behaviours with changing dimensionality. These materials can be exfoliated to monolayer thickness and easily stacked and combined into functional heterostructures. Alternatively, the application of hydrostatic pressure can be used to controllably close the van-der-Waals interplanar gap and tune the crystal structure and electron exchange paths towards a 3D nature. We collect and discuss trends and contrasts in our data from electrical transport, Raman scattering and synchrotron x-ray measurements, as well as insight from theoretical calculations and other results from the literature. We discuss structural transitions with pressure common to all materials measured, and link these to Mott insulator-transitions in these compounds at high pressures. Key new results include magnetotransport and resistivity data in the high-pressure metallic states, which show potentially interesting qualities for a new direction of future work focussed on low temperature transport and quantum critical physics.

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