Watanabe Kenta, Horisawa Yuhei, Yoshimoto Masataka, Tamura Kazuhisa, Suzuki Kota, Kanno Ryoji, Hirayama Masaaki
Department of Chemical Science and Engineering, School of Materials and Chemical Technology, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama 226-8501, Japan.
Materials Sciences Research Center, Japan Atomic Energy Agency, 1-1-1 Koto, Sayo, Hyogo 679-5148, Japan.
Nano Lett. 2024 Feb 14;24(6):1916-1922. doi: 10.1021/acs.nanolett.3c03982. Epub 2024 Jan 12.
Electrochemistry has extended from reactions at solid/liquid interfaces to those at solid/solid interfaces. However, photoelectrochemistry at solid/solid interfaces has been hardly reported. In this study, we achieve a stable photoelectrochemical reaction at the semiconductor-electrode/solid-electrolyte interface in a Nb-doped anatase-TiO (a-TiO:Nb)/LiPO (LPO)/Li all-solid-state cell. The oxidative currents of a-TiO:Nb/LPO/Li increase upon light irradiation when a-TiO:Nb is located at a potential that is more positive than its flat-band potential. This is because the photoexcited electrons migrate to the current collector due to the bending of the conduction band minimum toward the negative potential. The photoelectrochemical reaction at the semiconductor/solid-electrolyte interface is driven by the same principle as those at semiconductor/liquid-electrolyte interfaces. Moreover, oxidation under light irradiation exhibits reversibility with reduction in the dark. Thus, we extend photoelectrochemistry to all-solid-state systems composed of solid/solid interfaces. This extension would enable us to investigate photoelectrochemical phenomena uncleared at solid/liquid interfaces because of low stability and durability.
电化学已从固/液界面的反应扩展到固/固界面的反应。然而,关于固/固界面的光电化学报道却很少。在本研究中,我们在掺铌锐钛矿型TiO₂(a-TiO₂:Nb)/Li₃PO₄(LPO)/Li全固态电池的半导体电极/固体电解质界面实现了稳定的光电化学反应。当a-TiO₂:Nb处于比其平带电位更正的电位时,光照下a-TiO₂:Nb/LPO/Li的氧化电流会增加。这是因为光激发电子由于导带最小值向负电位弯曲而迁移到集电器。半导体/固体电解质界面的光电化学反应与半导体/液体电解质界面的光电化学反应遵循相同的原理。此外,光照下的氧化反应与黑暗中的还原反应具有可逆性。因此,我们将光电化学扩展到了由固/固界面组成的全固态系统。这种扩展将使我们能够研究由于稳定性和耐久性低而在固/液界面尚未明确的光电化学现象。