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A Redox-Active Organic Salt for Safer Na-Ion Batteries

机译:用于更安全的Na离子电池的氧化还原活性有机盐

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Overcharge abuse can trigger thermal runaway when a device is left unattended. Redox shuttles, as economic and efficient electrolyte additives, have been proven to provide reliable and reversible protection for state-of-art Li-ion batteries (LIBs) against overcharge. Here, a functional organic salt, trisaminocyclopropenium perchlorate (TAC·ClO_4), is developed and employed as a redox shuttle for overcharge protection in a Na-ion battery system. This type of novel redox shuttle molecule is reported for the first time. As a unique ionic compound with the smallest aromatic ring structure, TAC·ClO_4 exhibits distinctive attributes of fast diffusion, high solubility, and ultrahigh chemical/electrochemical stability in both redox states. With merely 0.1 M TAC·ClO_4 in electrolyte, Na_3V_2(PO_4)_3 cathode can carry overcharge current even up to 10C or 400% SOC. Na_3V_2(PO_4)_3/hard carbon cells demonstrated strong anti-overcharging ability of 176 cycles at 0.5C rate and 54 cycles at 1C rate with 100% overcharge. Moreover, TAC·ClO_4 addition has little impact on the electrochemical performance of Na-ion batteries, especially on the rate performance and the initial Columbic efficiency. Interestingly, a unique and reversible electrochromic behavior of TAC·ClO_4 electrolyte can promptly provide the device an overcharge alarm under a designed potential to further enhance the safety level.
机译:过度充电滥用可以在无人看管的情况下触发热失控。被证明,氧化还原梭是经济和高效的电解质添加剂,可提供可靠且可逆的锂离子电池(LIBS)免受过充电的可靠和可逆的保护。这里,开发出官能有机盐,三氨基环丙烯烯鎓(TAC·CLO_4),并用作Na离子电池系统中的用于过充电保护的氧化还原梭。这类新型的氧化还原梭分子首次报道。作为具有最小芳环结构的独特离子化合物,TAC·CLO_4在氧化还原态中表现出快速扩散,高溶解度和超高化学/电化学稳定性的独特属性。用电解质中的仅0.1M TAC·CLO_4,NA_3V_2(PO_4)_3阴极即使高达10℃或400%SOC也可以携带过充电电流。 NA_3V_2(PO_4)_3 /硬碳电池显示出强烈的抗过充电能力为0.5℃速率为0.5℃次数,54个循环以100%过充电。此外,TAC·CLO_4添加对Na离子电池的电化学性能几乎没有影响,特别是对速率性能和初始牙牙效率。有趣的是,TAC·CLO_4电解质的独特和可逆的电致变色行为可以及时地提供在设计的电位下的过充电警报,以进一步提高安全水平。

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