蜘蛛网启发结构设计的能量耗散聚合物粘合剂,使稳定的硅阳极

IF 13.1 1区 化学 Q1 Energy
Xiangyu Lin , Danna Ma , Ziming Zhu , Shanshan Wang , He Liu , Xu Xu , Zhaoshuang Li
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引用次数: 0

摘要

硅(Si)因其超高的理论容量被认为是下一代锂离子电池最有前途的负极材料之一。然而,严重的体积膨胀严重限制了其应用,导致结构退化和循环稳定性差。聚合物粘合剂通过提供机械稳定性,在解决这些问题方面发挥了关键作用。受蜘蛛网的机械自适应结构的启发,刚性径向螺纹和可扩展螺旋螺纹协同作用,设计了一种双线结构聚合物粘合剂(PALT),通过集成刚性和柔性域来实现能量耗散能力。刚性聚丙烯酸锂(PAALi)段提供结构增强,而软段(聚硫辛酸-单宁酸),LT)引入动态共价键和多个氢键,作为可逆牺牲键,增强循环过程中的能量耗散。综合实验和计算分析表明,在长时间循环过程中,有效地降低了应力集中,提高了结构完整性,并保持了稳定的电化学性能。结合PALT粘结剂的硅阳极在3580 mA g - 1的条件下,在350次充放电循环中,每循环的容量损失为0.042%。这项工作强调了一种受生物启发的粘合剂设计策略,该策略结合了固有刚度和动态应力适应性,以提高硅阳极的机械和电化学稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Spider web-inspired structural design for an energy-dissipating polymer binder enabling stabilized silicon anodes

Spider web-inspired structural design for an energy-dissipating polymer binder enabling stabilized silicon anodes
Silicon (Si) is considered one of the most promising anode materials for next-generation lithium-ion batteries due to its ultrahigh theoretical capacity. However, its application is significantly limited by severe volume expansion, leading to structural degradation and poor cycling stability. Polymer binders play a critical role in addressing these issues by providing mechanical stabilization. Inspired by the mechanically adaptive architecture of spider webs, where stiff radial threads and extensible spiral threads act in synergy, a dual-thread architecture polymer binder (PALT) with energy dissipation ability enabled by integrating rigid and flexible domains is designed. The rigid poly (acrylic acid lithium) (PAALi) segments offer structural reinforcement, while the soft segments (poly (lipoic acid-tannic acid), LT) introduce dynamic covalent bonds and multiple hydrogen bonds that function as reversible sacrificial bonds, enhancing energy dissipation during cycling. Comprehensive experimental and computational analyses demonstrate effectively reduced stress concentration, improved structural integrity, and stable electrochemical performance over prolonged cycling. The silicon anode incorporating the PALT binder exhibits a satisfying capacity loss per cycle of 0.042% during 350 charge/discharge cycles at 3580 mA g−1. This work highlights a bioinspired binder design strategy that combines intrinsic rigidity with dynamic stress adaptability to advance the mechanical and electrochemical stability of silicon anodes.
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来源期刊
Journal of Energy Chemistry
Journal of Energy Chemistry CHEMISTRY, APPLIED-CHEMISTRY, PHYSICAL
CiteScore
19.10
自引率
8.40%
发文量
3631
审稿时长
15 days
期刊介绍: The Journal of Energy Chemistry, the official publication of Science Press and the Dalian Institute of Chemical Physics, Chinese Academy of Sciences, serves as a platform for reporting creative research and innovative applications in energy chemistry. It mainly reports on creative researches and innovative applications of chemical conversions of fossil energy, carbon dioxide, electrochemical energy and hydrogen energy, as well as the conversions of biomass and solar energy related with chemical issues to promote academic exchanges in the field of energy chemistry and to accelerate the exploration, research and development of energy science and technologies. This journal focuses on original research papers covering various topics within energy chemistry worldwide, including: Optimized utilization of fossil energy Hydrogen energy Conversion and storage of electrochemical energy Capture, storage, and chemical conversion of carbon dioxide Materials and nanotechnologies for energy conversion and storage Chemistry in biomass conversion Chemistry in the utilization of solar energy
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