TY - JOUR
T1 - Electronic Structure and Superconductivity of Compressed Metal Tetrahydrides
AU - Bi, Tiange
AU - Zurek, Eva
N1 - Publisher Copyright:
© 2021 Wiley-VCH GmbH
PY - 2021/10/25
Y1 - 2021/10/25
N2 - Tetrahydrides crystallizing in the ThCr2Si2 structure type have been predicted to become stable for a plethora of metals under pressure, and some have recently been synthesized. Through detailed first-principles investigations we show that the metal atoms within these (Formula presented.) symmetry MH4 compounds may be divalent, trivalent or tetravalent. The valence of the metal atom and its radius govern the bonding and electronic structure of these phases, and their evolution under pressure. The factors important for enhancing superconductivity include a large number of hydrogenic states at the Fermi level, and the presence of quasi-molecular H (Formula presented.) units whose bonds have been stretched and weakened (but not broken) via electron transfer from the electropositive metal, and via a Kubas-like interaction with the metal. Analysis of the microscopic mechanism of superconductivity in MgH4, ScH4 and ZrH4 reveals that phonon modes involving a coupled libration and stretch of the H (Formula presented.) units leading to the formation of more complex hydrogenic motifs are important contributors towards the electron phonon coupling mechanism. In the divalent hydride MgH4, modes associated with motions of the hydridic hydrogen atoms are also key contributors, and soften substantially at lower pressures.
AB - Tetrahydrides crystallizing in the ThCr2Si2 structure type have been predicted to become stable for a plethora of metals under pressure, and some have recently been synthesized. Through detailed first-principles investigations we show that the metal atoms within these (Formula presented.) symmetry MH4 compounds may be divalent, trivalent or tetravalent. The valence of the metal atom and its radius govern the bonding and electronic structure of these phases, and their evolution under pressure. The factors important for enhancing superconductivity include a large number of hydrogenic states at the Fermi level, and the presence of quasi-molecular H (Formula presented.) units whose bonds have been stretched and weakened (but not broken) via electron transfer from the electropositive metal, and via a Kubas-like interaction with the metal. Analysis of the microscopic mechanism of superconductivity in MgH4, ScH4 and ZrH4 reveals that phonon modes involving a coupled libration and stretch of the H (Formula presented.) units leading to the formation of more complex hydrogenic motifs are important contributors towards the electron phonon coupling mechanism. In the divalent hydride MgH4, modes associated with motions of the hydridic hydrogen atoms are also key contributors, and soften substantially at lower pressures.
KW - density functional calculations
KW - electronic structure
KW - high pressure chemistry
KW - solid-state structures
KW - superconductors
UR - https://www.scopus.com/pages/publications/85115435935
U2 - 10.1002/chem.202102679
DO - 10.1002/chem.202102679
M3 - Article
C2 - 34469606
AN - SCOPUS:85115435935
SN - 0947-6539
VL - 27
SP - 14858
EP - 14870
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 60
ER -