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Structural Effects on Electronic Properties of Selected Materials

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Correlations in Condensed Matter under Extreme Conditions

Abstract

Tuning structural properties, e.g., by means of external pressure or applied uniaxial strain, can significantly modify the electronic properties of several solid systems, thereby influencing, or even inducing, several electronic instabilities. We specifically analyze the effect of pressure or strain on several superconducting materials, including the high-\(T_c\) cuprates , some organic salts, and magnesium diboride, on the light alkalis, where pressure can even destroy metallicity, and graphene , whose remarkable electronic and transport properties can be tailored by applied strain.

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Notes

  1. 1.

    Well before the Nobel Prize in Physics was awarded to Novoselov and Geim in 2010!

  2. 2.

    It is amusing to recollect that the authors of Ref. [98] anticipated that the psychedelic LDOS maps in momentum space (in false colors, of course!) might make them useful as tiles for a kitchen wall, say. And indeed three samples of such a tile were crafted, after that anticipation was rewarded by the Physical Review B, which selected that particular figure as the online cover of that issue! [100].

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Acknowledgements

It has been a privilege for the present author to have collaborated with Professor Renato Pucci since the early beginning of his own career. To him, Professor Pucci has been and continues to be a source of inspiration, scientific curiosity, stimulus, support, and is of course and above all an invaluable friend. It is also a pleasure to acknowledge all the collaborators of the works mentioned in this brief review, and especially (among the others) N.H. March, F.M.D. Pellegrino, F. Siringo, A. Sudbø, A.A. Varlamov.

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Angilella, G.G.N. (2017). Structural Effects on Electronic Properties of Selected Materials. In: Angilella, G., La Magna, A. (eds) Correlations in Condensed Matter under Extreme Conditions. Springer, Cham. https://doi.org/10.1007/978-3-319-53664-4_3

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