Interfacial phonon thermal transport properties of plasmonic-metal- semiconductor composite electrodes
ZC Zheng and ZK Li and LX Sang, ACTA PHYSICA SINICA, 74, 193101 (2025).
DOI: 10.7498/aps.74.20250683
Plasmonic solar water splitting is produced on the composite electrode
with plasmonic metal nanoparticles loaded on semiconductor, where the
localized heating generated by relaxation of the metal's localized
surface plasmon resonance (LSPR) under light excitation enhances
hydrogen production efficiency. To optimize composite photoanodes for
photoelectrochemical water splitting system, the non-equilibrium
molecular dynamics simulations are conducted to obtain the interfacial
thermal conductivity between plasmonic metals (Cu, Ag, Au) and
semiconductors (TiO2, ZnO, MoS2) at varying temperatures. The
relationship between interfacial thermal conductivity and phonons at
different frequencies is investigated via vibrational density of states
which is calculated from the velocity autocorrelation functions and
subsequent phonon participation ratio. The results indicate that as he
temperature increases, the interfacial thermal conductivity of all
composite electrode configurations is enhanced. When Cu and Ag are
combined with TiO2 into Cu-TiO2 and Ag-TiO2, respectively, the thermal
transport performances of Cu-TiO2 and Ag-TiO2 are superior to Au-TiO2,
and the interfacial thermal conductivity of Cu-TiO2 reaches 973.56
MW
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