Electronic excitations and metallization of dense solid hydrogen

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Abstract

Theoretical calculations and an assessment of recent experimental results for dense solid hydrogen lead to a unique scenario for the metallization of hydrogen under pressure. The existence of layered structures based on graphene sheets gives rise to an electronic structure related to unique features found in graphene that are well studied in the carbon phase. The honeycombed layered structure for hydrogen at high density, first predicted in molecular calculations, produces a complex optical response. The metallization of hydrogen is very different fromthat originally proposed via a phase transition to a close-packedmonoatomic structure, and different from simple metallization recently used to interpret recent experimental data. These different mechanisms for metallization have very different experimental signatures. We show that the shift of the main visible absorption edge does not constrain the point of band gap closure, in contrast with recent claims. This conclusion is confirmed by measured optical spectra, including spectra obtained to low photon energies in the infrared region for phases III and IV of hydrogen.

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Cohen, R. E., Naumov, I. I., & Hemley, R. J. (2013). Electronic excitations and metallization of dense solid hydrogen. Proceedings of the National Academy of Sciences of the United States of America, 110(34), 13757–13762. https://doi.org/10.1073/pnas.1312256110

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