增加钠离子电池和电容器中可逆离子的新兴预沉淀策略的工业途径

Jianjia Mu, Zhaoguo Liu, Qing-Song Lai, Da Wang, Xuanwen Gao, Dong-Run Yang, Hong Chen, Wen‐Bin Luo
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引用次数: 7

摘要

近年来,钠离子电池(sib)和电容器(sic)引起了相当大的兴趣,被认为是储能行业中下一代电池技术最有前途的两种候选材料。因此,有必要探索可行的策略来提高这些技术的能量密度和循环寿命,以实现其未来的商业化。然而,相对较低的库仑效率严重限制了钠离子电池的能量密度,特别是在初始循环中,这逐渐减少了可回收离子的数量。预沉淀技术被认为是抵消初始循环中不可逆容量和提高sib和sic能量密度的有效方法。它们的循环稳定性也可以通过在循环过程中添加钠和高含量可回收离子的缓慢释放来增强。本文综述了国内外对高库仑效率全电池钠离子损失途径和预沉淀过程的研究进展。从安全性、可操作性和效率的角度,评价了各种预处理技术的优缺点。本文旨在为促进SIBs和sic的工业发展提供一个基本的预酸化原理和策略。
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An industrial pathway to emerging presodiation strategies for increasing the reversible ions in sodium-ion batteries and capacitors
Sodium-ion batteries (SIBs) and capacitors (SICs) have been drawing considerable interest in recent years and are considered two of the most promising candidates for next-generation battery technologies in the energy storage industry. Therefore, it is essential to explore feasible strategies to increase the energy density and cycling lifespan of these technologies for their future commercialization. However, relatively low Coulombic efficiency severely limits the energy density of sodium-ion full cells, particularly in the initial cycle, which gradually decreases the number of recyclable ions. Presodiation techniques are regarded as effective approaches to counteract the irreversible capacity in the initial cycle and boost the energy density of SIBs and SICs. Their cyclic stability can also be enhanced by the slow release of supplemental sodium and high-content recyclable ions during cycling. In this review, a general understanding of the sodium-ion loss pathways and presodiation process towards full cells with high Coulombic efficiency is summarized. From the perspectives of safety, operability and efficiency, the merits and drawbacks of various presodiation techniques are evaluated. This review attempts to provide a fundamental understanding of presodiation principles and strategies to promote the industrial development of SIBs and SICs.
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