Nishio Kazunori, Shirasawa Tetsuroh, Shimizu Koji, Nakamura Naoto, Watanabe Satoshi, Shimizu Ryota, Hitosugi Taro
School of Materials and Chemical Technology, Tokyo Institute of Technology, Tokyo 152-8552, Japan.
National Metrology Institute of Japan (NMIJ), National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki 305-8565, Japan.
ACS Appl Mater Interfaces. 2021 Apr 7;13(13):15746-15754. doi: 10.1021/acsami.0c18656. Epub 2021 Mar 25.
Understanding electronic and ionic transport across interfaces is crucial for designing high-performance electric devices. The adjustment of work functions is critical for band alignment at the interfaces of metals and semiconductors. However, the electronic structures at the interfaces of metals and mixed conductors, which conduct both electrons and ions, remain poorly understood. This study reveals that a Schottky barrier is present at the interface of the Nb-doped SrTiO metal and a LiCoO mixed conductor and that the interfacial resistance can be tuned by inserting an electric dipole layer. The interfacial resistance significantly decreased (by more than 5 orders of magnitude) upon the insertion of a 1 nm thick insulating LaAlO layer at the interface. We apply these techniques to solid-state lithium batteries and demonstrate that tuning the electronic energy band alignment by interfacial engineering is applicable to the interfaces of metals and mixed conductors. These results highlight the importance of designing positive electrode and current collector interfaces for solid-state lithium batteries with high power density.
了解电子和离子在界面间的传输对于设计高性能电子器件至关重要。功函数的调整对于金属和半导体界面处的能带排列至关重要。然而,对于既能传导电子又能传导离子的金属与混合导体界面处的电子结构,人们仍然知之甚少。本研究表明,在掺铌的SrTiO金属与LiCoO混合导体的界面处存在肖特基势垒,并且可以通过插入电偶极层来调节界面电阻。在界面处插入1 nm厚的绝缘LaAlO层后,界面电阻显著降低(超过5个数量级)。我们将这些技术应用于固态锂电池,并证明通过界面工程调整电子能带排列适用于金属与混合导体的界面。这些结果突出了为高功率密度固态锂电池设计正极和集流体界面的重要性。