Bipolar Textile Composite Electrodes Enabling Flexible Tandem Solid‐State Lithium Metal Batteries

Author:

Wei Zhenyao12,Luo Yufeng3,Yu Wancheng3,Zhang Yufei2,Cai Jiehua2,Xie Chuan3,Chang Jian4,Huang Qiyao25,Xu Xiaoxiong1,Deng Yonghong1,Zheng Zijian2356ORCID

Affiliation:

1. Department of Materials Science and Engineering, Guangdong Provincial Key Laboratory of Energy Materials for Electric Power Southern University of Science and Technology Shenzhen 518055 China

2. School of Fashion and Textiles The Hong Kong Polytechnic University Hong Kong SAR 999077 China

3. Department of Applied Biology and Chemical Technology The Hong Kong Polytechnic University Hong Kong SAR 999077 China

4. Dongguan Key Laboratory of Interdisciplinary Science for Advanced Materials and Large‐Scale Scientific Facilities School of Physical Sciences Great Bay University Dongguan Guangdong 523000 China

5. Research Institute for Intelligent Wearable Systems The Hong Kong Polytechnic University Hong Kong SAR 999077 China

6. Research Institute for Smart Energy The Hong Kong Polytechnic University Hong Kong SAR 999077 China

Abstract

AbstractA majority of flexible and wearable electronics require high operational voltage that is conventionally achieved by serial connection of battery unit cells using external wires. However, this inevitably decreases the energy density of the battery module and may cause additional safety hazards. Herein, a bipolar textile composite electrode (BTCE) that enables internal tandem‐stacking configuration to yield high‐voltage (6 to 12 V class) solid‐state lithium metal batteries (SSLMBs) is reported. BTCE is comprised of a nickel‐coated poly(ethylene terephthalate) fabric (NiPET) core layer, a cathode coated on one side of the NiPET, and a Li metal anode coated on the other side of the NiPET. Stacking BTCEs with solid‐state electrolytes alternatively leads to the extension of output voltage and decreased usage of inert package materials, which in turn significantly boosts the energy density of the battery. More importantly, the BTCE‐based SSLMB possesses remarkable capacity retention per cycle of over 99.98% over cycling. The composite structure of BTCE also enables outstanding flexibility; the battery keeps stable charge/discharge characteristics over thousands of bending and folding. BTCE shows great promise for future safe, high‐energy‐density, and flexible SSLMBs for a wide range of flexible and wearable electronics.

Funder

National Key Research and Development Program of China

Innovation and Technology Fund

Hong Kong Polytechnic University

Research Grants Council, University Grants Committee

Tip-top Scientific and Technical Innovative Youth Talents of Guangdong Special Support Program

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

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