A Low‐Dosage Flame‐Retardant Inorganic Polymer Binder for High‐Energy‐Density and High‐Safety Lithium‐Sulfur Batteries

Author:

Chen Zhuzuan12,Chen Tingjie1,Wang Junwen1,Li Pengxian3,Liu Ju2,Chen Wenyan4,Yang Zhuohong2,Deng Yonghong4,Chang Jian34ORCID,Yang Yu12

Affiliation:

1. College of Materials Science and Engineering Key Laboratory of Polymer Materials and Products of Universities in Fujian Fujian University of Technology Fuzhou 350118 China

2. Key Laboratory for Biobased Materials and Energy of Ministry of Education College of Materials and Energy South China Agricultural University Guangzhou 510642 China

3. 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

4. Department of Materials Science and Engineering School of Innovation and Entrepreneurship Key University Laboratory of Highly Efficient Utilization of Solar Energy and Sustainable Development of Guangdong Southern University of Science and Technology Shenzhen 518055 China

Abstract

AbstractThe developing electric vehicles and portable electronics urgently require rechargeable lithium batteries with high energy density and high safety. Lithium‐sulfur (Li‐S) batteries have shown significant advantages in their high energy density. However, the use of traditional polymer binders faces significant challenges, such as soluble polysulfides, large volume changes, and electrode flammability, resulting in performance degradation and safety hazards. Here, a polymeric aluminophosphate (AP) is for the first time proposed as an inorganic polymer binder to simultaneously realize high energy density, long cycling stability, and reliable safety of Li‐S batteries. Benefiting from the synergistic effect of polar P‐O and Al‐O chain segments, the AP binder provides strong mechanical adhesion, anchors polysulfides, and promotes the redox kinetics of sulfur electrodes. The AP binder also ensures high flame retardancy for sulfur electrodes at an extremely low dosage of 2 wt%. Consequently, the retardant sulfur electrode can be operated stably with high specific capacities (1190 mAh g−1), high capacity retention rates (>99.1%) during 500 cycles, and excellent rate capability (3 C). Based on the entire cell, the soft‐packaged Li‐S full battery provides high capacities (3.6 mAh cm−2), high cell energy density (415 Wh kg−1 and 297 Wh L−1), and high capacity retention rates (>99.8%).

Funder

National Natural Science Foundation of China

Science and Technology Planning Project of Guangdong Province

Shenzhen Science and Technology Innovation Program

Publisher

Wiley

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