Analogous Design of a Microlayered Silicon Oxide‐Based Electrode to the General Electrode Structure for Thin‐Film Lithium‐Ion Batteries

Author:

Kim Jong Heon1ORCID,Song Aeran2,Park Ji‐Min34,Park Jun‐Seob3,Behera Subhashree34,Cho Eunmi2,Park Yun Chang5,Kim Na‐Yeong6,Jung Ji‐Won6ORCID,Lee Sang‐Jin2,Kim Hyun‐Suk34ORCID

Affiliation:

1. Texas Materials Institute and Materials Science and Engineering Program The University of Texas at Austin Austin TX 78712 USA

2. Chemical Materials Solutions Center Korea Research Institute of Chemical Technology (KRICT) Daejeon 34114 Republic of Korea

3. Department of Materials Science and Engineering Chungnam National University Daejeon 34134 Republic of Korea

4. Department of Energy and Materials Engineering Dongguk University Seoul 04620 Republic of Korea

5. National Nano Fab Centre Daejeon 305–806 Republic of Korea

6. School of Materials Science and Engineering University of Ulsan (UOU) Ulsan 44776 Republic of Korea

Abstract

AbstractDevelopment of miniaturized thin‐film lithium‐ion batteries (TF‐LIBs) using vacuum deposition techniques is crucial for low‐scale applications, but addressing low energy density remains a challenge. In this work, structures analogous to SiOx‐based thin‐film electrodes are designed with close resemblance to traditional LIB slurry formulations including active material, conductive agent, and binder. The thin‐film is produced using mid‐frequency sputtering with a single hybrid target consisting of SiOx nanoparticles, carbon nanotubes, and polytetrafluoroethylene. The thin‐film SiOx/PPFC (plasma‐polymerized fluorocarbon) involves a combination of SiOx and conductive carbon within the PPFC matrix. This results in enhanced electronic conductivity and superior elasticity and hardness in comparison to a conventional pure SiOx‐based thin‐film. The electrochemical performance of the half‐cell consisting of thin‐film SiOx/PPFC demonstrates remarkable cycling stability, with a capacity retention of 74.8% up to the 1000th cycle at 0.5 C. In addition, a full cell using the LiNi0.6Co0.2Mn0.2O2 thin‐film as the cathode material exhibits an exceptional initial capacity of ≈120 mAh g−1 at 0.1 C and cycle performance, marked by a capacity retention of 90.8% from the first cycle to the 500th cycle at a 1 C rate. This work will be a stepping stone for the AM/CB/B composite electrodes in TF‐LIBs.

Funder

National Research Foundation of Korea

Ministry of Education

National Research Council of Science and Technology

Korea Research Institute of Chemical Technology

Ministry of Science and ICT, South Korea

Natural Science Basic Research Program of Shaanxi Province

Korea Evaluation Institute of Industrial Technology

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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