离子偶极相互作用诱导的刚柔耦合SEI用于微尺寸锡阳极的超稳定钠存储。

IF 16.9
Mingyue Li, Simi Sui, Xunzhu Zhou, Shenxu Chu, Qian Yang, Genliang Yu, Xuejie Bai, Tongtong Huo, Kai Liu, Jie Xu, Ting Lv, Xiaobo Zhang, Lin Li, Kaixiang Lei, Shijian Zheng
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引用次数: 0

摘要

锡阳极由于具有较高的理论容量和合适的工作电位而被认为是钠离子电池的理想阳极。然而,在充放电过程中,它们的体积变化很大,导致容量快速下降。在此,我们提出了一种策略,结合不同溶剂化能力的溶剂来调节离子偶极子相互作用,建立阴离子和溶剂共同主导的溶剂化化学。这种独特的溶剂化化学反应触发了阴离子和溶剂的协同分解,产生了一种机械坚固但化学稳定的有机-无机混合固体电解质界面(SEI),具有平衡的刚性和柔韧性。稳定的SEI有效地减轻了充放电过程中的体积变化,抑制了连续的电解质分解。因此,微尺寸的锡阳极表现出优异的循环稳定性(1000次循环后的高容量保持率为83.31%)和倍率性能(在4.0 A g-1时为270.4 mAh g-1)。更重要的是,Sn||Na3V2(PO4)3充满电池的能量密度达到了235.3 Wh kg-1。本研究证明了刚柔耦合SEI的可行性,为提高大体积变化阳极材料的储钠性能提供了一条途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ion-Dipole Interaction Induced Rigid-Flexible Coupling SEI for Ultrastable Sodium Storage of Microsized Sn Anode.

Ion-Dipole Interaction Induced Rigid-Flexible Coupling SEI for Ultrastable Sodium Storage of Microsized Sn Anode.

Tin (Sn) anode has been considered as a promising candidate for sodium-ion batteries due to its high theoretical capacity and suitable operating potential. However, they suffer from substantial volume variation during charge/discharge processes, which leads to fast capacity degradation. Herein, we propose a strategy combining solvents with different solvation abilities to regulate ion-dipole interactions, establishing an anion and solvent co-dominated solvation chemistry. This unique solvation chemistry triggers the cooperative decomposition of anions and solvents, generating a mechanically robust yet chemically stable organic-inorganic hybrid solid-electrolyte interphase (SEI) with balanced rigidity and flexibility. The stable SEI effectively mitigates volume variation during charge/discharge processes and suppresses successive electrolyte decomposition. Therefore, the microsized Sn anode exhibits superior cycling stability (high capacity retention of 83.31% after 1000 cycles) and rate performance (270.4 mAh g-1 at 4.0 A g-1). More importantly, the Sn||Na3V2(PO4)3 full cell achieves a remarkable energy density of 235.3 Wh kg-1. This study demonstrates the feasibility of rigid-flexible coupling SEI, providing a pathway to boost the sodium storage performance of anode materials with huge volume change.

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