Polymer‐Supported Graphene Sheet as a Vertically Conductive Anode of Lithium‐Ion Battery

Author:

Rahman Md Tareq1ORCID,Hossen Sarwar1,Jeong Kyoung‐Jin23ORCID,Bhuiyan Nabil H.1ORCID,Rahman M. Mahabubur1,Sarkar Bappa1,Jung Yongmin3,Shim Joon S.13ORCID

Affiliation:

1. Bio‐IT Convergence Laboratory Department of Electronic Convergence Engineering Kwangwoon University Seoul 01897 Republic of Korea

2. Graduate School of Materials Science & Engineering Chungnam National University 99 Daehak‐ro, Yuseong‐gu Daejeon 34134 Republic of Korea

3. Nano Genesis Inc. 20 Kwangwoon‐ro, Nowon‐gu Seoul 01897 Republic of Korea

Abstract

AbstractThe increasing demand for electric vehicles necessitates the development of cost‐effective, mass‐producible, long‐lasting, and highly conductive batteries. Making this kind of battery is exceedingly tricky. This study introduces an innovative fabrication technique utilizing a laser‐induced graphene (LIG) approach on commercial Kapton film to create hexagonal pores. These pores form vertical conduction paths for electron and ion transportation during lithiation and delithiation, significantly enhancing conductivity. The nongraphitized portion of the Kapton film makes it a binder‐less, free‐standing electrode, providing mechanical stability. Various analytical techniques, including scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), Raman spectroscopy, and atomic force microscopy (AFM) are utilized to confirm the transformation of a 3D porous graphene sheet from a commercial Kapton film. Cross‐sectional SEM images verify the vertical connections. The specific capacity of 581 mAh g−1 is maintained until the end, with 99% coulombic efficiency at 0.1C. This simple manufacturing method paves the pathway for future LIG‐based, cost‐effective, lightweight, mass‐producible, long‐lasting, vertically conductive electrodes for lithium‐ion batteries.

Funder

Korea Medical Device Development Fund

Korea Dementia Research Center

Kwangwoon University

Publisher

Wiley

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