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Updated: May 9, 2025

Evaluating the Electrochemical Properties of Supercapacitors using the Three-Electrode System
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Superconducting Lithium Hydride in a Chemical Capacitor Setup: A Theoretical Study
Wojciech Grochala1, Piotr Szkudlarek2, Christopher Renskers2
1Center of New Technologies, University of Warsaw, Zwirki i Wigury 93, 02089, Warsaw, Poland.
Abstract:
Metallization of the ionic hydride LiH has never been achieved experimentally, even under high external pressure. Herein, a novel "chemical capacitor" setup to facilitate its metallization under ambient pressure conditions is applied. The findings reveal that a single layer of this material can withstand doping levels up to an impressive 0.61 holes per H atom without structural collapse, as demonstrated in the ZrC | LiH | ZrC system. Additionally, the electron-phonon coupling strength (λ) reaches a remarkable value of 2.1 in the TiO | LiH | TiO system, indicative of the strong coupling regime. Superconductivity calculations further predict a maximum critical temperature ( ) of 17.5 K for 0.31-hole-doped LiH with (LiBaF3)2 as surrounding support layers in the absence of external pressure.
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