Nishio Kazunori, Ichinokura Satoru, Nakanishi Akitaka, Shimizu Koji, Kobayashi Yasutaka, Nakamura Naoto, Imazeki Daisuke, Shimizu Ryota, Hirahara Toru, Watanabe Satoshi, Hitosugi Taro
School of Materials and Chemical Technology, Tokyo Institute of Technology, Tokyo 152-8552, Japan.
Department of Physics, Tokyo Institute of Technology, Tokyo 152-8550, Japan.
Nano Lett. 2021 Dec 8;21(23):10086-10091. doi: 10.1021/acs.nanolett.1c03872. Epub 2021 Nov 22.
In electrochemical devices, it is important to control the ionic transport between the electrodes and solid electrolytes. However, it is difficult to tune the transport without applying an electric field. This paper presents a method to modulate the transport via tuning of the electrochemical potential difference by controlling the electronic states at the interfaces. We fabricated thin-film solid-state Li batteries using LiTiO thin films as positive electrodes. The spontaneous Li-ion transport between the solid electrolyte and LiTiO is controlled by tuning the electrochemical potential difference via use of an electrically conducting Nb-doped SrTiO substrate. This study establishes the foundation for rectifying the ionic transport via electronic energy band alignment.
在电化学装置中,控制电极与固体电解质之间的离子传输非常重要。然而,在不施加电场的情况下很难调节传输。本文提出了一种通过控制界面处的电子态来调节电化学势差,从而调制传输的方法。我们使用LiTiO薄膜作为正极制备了薄膜固态锂电池。通过使用导电的Nb掺杂SrTiO衬底来调节电化学势差,从而控制固体电解质与LiTiO之间自发的锂离子传输。本研究为通过电子能带排列来矫正离子传输奠定了基础。