Hikima Kazuhiro, Sato Yusaku, Yokoi Atsushi, Tan Wai Kian, Muto Hiroyuki, Matsuda Atsunori
Department of Electrical and Electronic Information Engineering, Toyohashi University of Technology, 1-1 Hibarigaoka, Tempaku, Toyohashi, Aichi 441-8580, Japan.
Institute of Liberal Arts and Sciences, Toyohashi University of Technology, 1-1 Hibarigaoka, Tempaku, Toyohashi, Aichi 441-8580, Japan.
Heliyon. 2023 Jul 3;9(7):e17889. doi: 10.1016/j.heliyon.2023.e17889. eCollection 2023 Jul.
All-solid-state batteries, which use flame-resistant solid electrolytes, are regarded as safer alternatives to conventional lithium-ion batteries for various applications including electric vehicles. Herein, we report the fabrication of cathode composites for oxide-type all-solid-state batteries through an electrostatic assembly method. A polyelectrolyte is used to adjust the surface charge of the matrix particles to positive/negative, and the aggregation resulting from electrostatic interactions is utilized. Composites consisting of cathode active material particles (LiNiMnCoO (NMC) or LiNiMnO (LNMO)), solid electrolyte particles LiAlTi(PO) (LATP), and electron conductive one-dimensional carbon nanotubes (CNT) are formed via an electrostatic integrated assembly of colloidal suspensions. Electrostatic integration increases the electronic conductivity by two orders of magnitude in the NMC-LATP-CNT composite (6.5 × 10 S cm/3.2 × 10 S cm) and by six orders of magnitude in the LNMO-LATP-CNT composite (6.4 × 10 S cm/2.3 × 10 S cm). The dispersion of CNTs in the cathode composite is enhanced, resulting in percolation of e path even at 1 wt% (approximately 2.5 vol%) CNT. This study indicates that an integrated cathode composite can be fabricated with particles uniformly mixed by electrostatic interaction for oxide-type all-solid-state batteries.
全固态电池使用阻燃固体电解质,被认为是传统锂离子电池在包括电动汽车在内的各种应用中的更安全替代品。在此,我们报告了通过静电组装法制备氧化物型全固态电池的阴极复合材料。使用聚电解质将基体颗粒的表面电荷调节为正/负,并利用静电相互作用产生的聚集。由阴极活性材料颗粒(LiNiMnCoO(NMC)或LiNiMnO(LNMO))、固体电解质颗粒LiAlTi(PO)(LATP)和电子导电一维碳纳米管(CNT)组成的复合材料通过胶体悬浮液的静电集成组装形成。静电集成使NMC-LATP-CNT复合材料的电子电导率提高了两个数量级(6.5×10 S cm/3.2×10 S cm),使LNMO-LATP-CNT复合材料的电子电导率提高了六个数量级(6.4×10 S cm/2.3×10 S cm)。碳纳米管在阴极复合材料中的分散性得到增强,即使在1 wt%(约2.5 vol%)的碳纳米管含量下也能实现电子路径的渗流。这项研究表明,可以通过静电相互作用将颗粒均匀混合,为氧化物型全固态电池制备集成阴极复合材料。