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    Tuning the hysteresis of a metal-insulator transition via lattice compatibility

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    No. of downloads: 62

    External Link(s)
    https://doi.org/10.1038/s41467-020-17351-w
    Date
    2020-07-15
    Author
    Liang, Y. G.
    Lee, S.
    Yu, H. S.
    Zhang, H. R.
    Liang, Y. J.
    Zavalij, P. Y.
    Chen, X.
    James, R. D.
    Bendersky, L. A.
    Davydov, A. V.
    Zhang, X. H.
    Takeuchi, I.
    Citation
    Liang, Y.G., Lee, S., Yu, H.S. et al. Tuning the hysteresis of a metal-insulator transition via lattice compatibility. Nat Commun 11, 3539 (2020).
    DRUM DOI
    https://doi.org/10.13016/4asm-qlpv
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    Abstract
    Structural phase transitions serve as the basis for many functional applications including shape memory alloys (SMAs), switches based on metal-insulator transitions (MITs), etc. In such materials, lattice incompatibility between transformed and parent phases often results in a thermal hysteresis, which is intimately tied to degradation of reversibility of the transformation. The non-linear theory of martensite suggests that the hysteresis of a martensitic phase transformation is solely determined by the lattice constants, and the conditions proposed for geometrical compatibility have been successfully applied to minimizing the hysteresis in SMAs. Here, we apply the non-linear theory to a correlated oxide system (V1−xWxO2), and show that the hysteresis of the MIT in the system can be directly tuned by adjusting the lattice constants of the phases. The results underscore the profound influence structural compatibility has on intrinsic electronic properties, and indicate that the theory provides a universal guidance for optimizing phase transforming materials.
    Notes
    Partial funding for Open Access provided by the UMD Libraries' Open Access Publishing Fund.
    URI
    http://hdl.handle.net/1903/27526
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    DRUM is brought to you by the University of Maryland Libraries
    University of Maryland, College Park, MD 20742-7011 (301)314-1328.
    Please send us your comments.
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