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Calcium-based multi-element chemistry for grid-scale electrochemical energy storage

机译:钙基多元素化学用于网格规模的电化学储能

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摘要

Calcium is an attractive material for the negative electrode in a rechargeable battery due to its low electronegativity (high cell voltage), double valence, earth abundance and low cost; however, the use of calcium has historically eluded researchers due to its high melting temperature, high reactivity and unfavorably high solubility in molten salts. Here we demonstrate a long-cycle-life calcium-metal-based rechargeable battery for grid-scale energy storage. By deploying a multi-cation binary electrolyte in concert with an alloyed negative electrode, calcium solubility in the electrolyte is suppressed and operating temperature is reduced. These chemical mitigation strategies also engage another element in energy storage reactions resulting in a multi-element battery. These initial results demonstrate how the synergistic effects of deploying multiple chemical mitigation strategies coupled with the relaxation of the requirement of a single itinerant ion can unlock calcium-based chemistries and produce a battery with enhanced performance.
机译:钙由于其低电负性(高电池电压),双价,大地丰度和低成本而成为可再充电电池负极的诱人材料。然而,由于钙的高熔融温度,高反应性和在熔融盐中的不利高溶解度,历史上一直没有使用钙。在这里,我们演示了用于电网规模储能的长寿命钙金属基可充电电池。通过将多阳离子二元电解质与合金化负电极配合使用,可以抑制电解质中的钙溶解度并降低工作温度。这些化学缓解策略还使能量存储反应中的其他元素参与进来,从而形成了多元素电池。这些初步结果证明了部署多种化学缓解策略的协同效应以及放宽单个巡回离子的要求如何能够解锁基于钙的化学物质并生产出性能增强的电池。

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