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梯度氢键作用助力锂离子电池硅负极实现具有高离子电导率的高度可适应且快速自修复的复合粘结剂。

Gradient H-Bonding Supports Highly Adaptable and Rapidly Self-Healing Composite Binders with High Ionic Conductivity for Silicon Anodes in Lithium-Ion Batteries.

作者信息

Liu Lili, Luo Peng, Bai Haomin, Huang Yiwu, Lai Pengyuan, Yuan Yuan, Wen Jianwu, Xie Changqiong, Li Jing

机构信息

School of Material Science and Chemistry Southwest University of Science and Technology, Mianyang, 621010, P. R. China.

Material Technology Research Center, The Second Research Institute of Civil Aviation Administration of China, Chengdu, 610041, P. R. China.

出版信息

Macromol Rapid Commun. 2023 Mar;44(6):e2200822. doi: 10.1002/marc.202200822. Epub 2023 Jan 5.

Abstract

An ideal binder for high-energy-density lithium-ion batteries (LIBs) should effectively inhibit volume effects, exhibit specific functional properties (e.g., self-repair capabilities and high ionic conductivity), and require low-cost, environmentally friendly mass production processes. This study adopts a synergistic strategy involving gradient (strong-weak) hydrogen bonding to construct a hard/soft polymer composite binder with self-healing abilities and high battery cell environments adaptability in LIBs. The meticulously designed 3D network structure comprising continuous electron transport pathways buffers the mechanical stresses caused by changes in silicon volume and improves the overall stability of the solid electrolyte interphase film. The Si-based anode with a polymer composite binder poly(acrylic acid-g-ureido pyrimidinone )/polyethylene oxide (Si/PAA-UPy /PEO) achieves a reversible capacity of 1245 mAh g after 200 cycles at 0.5 C, which is 6.6 times higher than that of the Si/PAA anode. After 200 cycles at 0.2 A g , a half-cell comprising Si/C anode with a polymer composite binder (Si/C/PAA-UPy /PEO) has a remaining specific capacity of 420 mAh g and a capacity retention rate of 79%. The corresponding full cell with a Li-based cathode (LiFePO /Si/C/PAA-UPy /PEO) has an initial area capacity of 0.96 mAh cm and retains an area capacity of 0.90 mAh cm (capacity retention rate = 93%) after 100 cycles at 0.2 A g .

摘要

用于高能量密度锂离子电池(LIBs)的理想粘结剂应能有效抑制体积效应,具备特定功能特性(如自修复能力和高离子导电性),且需要低成本、环境友好的大规模生产工艺。本研究采用一种涉及梯度(强-弱)氢键的协同策略,构建一种具有自修复能力且在LIBs电池环境中适应性高的硬/软聚合物复合粘结剂。精心设计的包含连续电子传输路径的三维网络结构可缓冲由硅体积变化引起的机械应力,并提高固体电解质界面膜的整体稳定性。采用聚合物复合粘结剂聚(丙烯酸-g-脲嘧啶酮)/聚环氧乙烷(Si/PAA-UPy/PEO)的硅基负极在0.5 C下循环200次后,可逆容量达到1245 mAh g,比Si/PAA负极高6.6倍。在0.2 A g下循环200次后,采用聚合物复合粘结剂(Si/C/PAA-UPy/PEO)的Si/C负极半电池剩余比容量为420 mAh g,容量保持率为79%。相应的采用锂基正极(LiFePO/Si/C/PAA-UPy/PEO)的全电池初始面积容量为0.96 mAh cm,在0.2 A g下循环100次后,面积容量保持在0.90 mAh cm(容量保持率 = 93%)。

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