Electrical Double Layer Formation at Intercalation Cathode–Organic Electrolyte Interfaces During Initial Lithium‐Ion Battery Reactions

Author:

Nakayama Junpei1,Zhou Huangkai1ORCID,Izumi Jun1,Watanabe Kenta1ORCID,Suzuki Kota2ORCID,Nemoto Fumiya34ORCID,Yamada Norifumi L.3ORCID,Kanno Ryoji2ORCID,Hirayama Masaaki12ORCID

Affiliation:

1. Department of Chemical Science and Engineering School of Materials and Chemical Technology Tokyo Institute of Technology 4259 Nagatsuta, Midori Yokohama 226–8501 Japan

2. Research Center for All‐Solid‐State Battery Institute of Innovative Research Tokyo Institute of Technology 4259 Nagatsuta, Midori‐ku Yokohama 226–8501 Japan

3. Institute of Materials Structure Science High Energy Accelerator Research Organization 1‐1 Oho Tsukuba Ibaraki 305–0801 Japan

4. Department of Materials Science and Engineering National Defense Academy 1‐10‐20 Hashirimizu Yokosuka Kanagawa 239–8686 Japan

Abstract

AbstractInformation on the cathode/organic–electrolyte interface structure provides clues regarding the rate and reversibility of lithium intercalation reactions in lithium‐ion batteries. Herein, structural changes within the LiCoO2 electrode, throughout the interphase region, and in the LiPF6/propylene carbonate electrolyte are observed concurrently by in situ neutron reflectometry. The formation of an electrical double layer (EDL) during the early stages of charging and discharging is investigated and compared with that at an intercalation‐inactive Nb:SrTiO3 electrode. At the intercalation‐inactive interface between Nb:SrTiO3 and the electrolyte, a voltage‐dependent ionic distribution corresponding to the EDL forms on the electrolyte side without the formation of a cathode/electrolyte interphase (CEI) layer. In contrast, at the intercalation‐active LiCoO2/electrolyte interface, a CEI layer forms immediately after cell construction, and the ionic distribution in the electrolyte formed outside the CEI layer scarcely changes upon voltage application. The CEI/electrolyte interface is shielded from potential changes by the electronically insulating CEI; therefore, structural changes in the EDL are restricted. This supports the prevailing understanding that the CEI layer defines the rates of solvation/de‐solvation and adsorption/desorption reactions of lithium ions.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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