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[资源] John B. Goodenough在Acc. Chem. Res.上的最新综述-现代可充电电池的策略演化

本文为锂电大牛Goodenough在Acc. Chem. Res.上发表的题为Evolution of Strategies for Modern Rechargeable Batteries的最新综述,由Goodenough本人担纲唯一作者,其重要程度不言而喻。文章主要介绍了可充电电池的发展、电解液和几种电极材料。一共9页,引文53篇。


This Account provides perspective on the evolution of the rechargeable battery and summarizes innovations in the development of these devices. Initially, I describe the components of a conventional rechargeable battery along with the engineering parameters that define the figures of merit for a single cell. In 1967, researchers discovered fast Na+ conduction at 300 K in Na β,β′′-alumina. Since then battery technology has evolved from a strongly acidic or alkaline aqueous electrolyte with protons as the working ion to an organic liquid-carbonate electrolyte with Li+ as the working ion in a Li-ion battery. The invention of the sodium-sulfur and Zebra batteries stimulated consideration of framework structures as crystalline hosts for mobile guest alkali ions, and the jump in oil prices in the early 1970s prompted researchers to consider alternative room-temperature batteries with aprotic liquid electrolytes. With the existence of Li primary cells and ongoing research on the chemistry of reversible Li intercalation into layered chalcogenides, industry invested in the production of a Li/TiS2 rechargeable cell. However, on repeated recharge, dendrites grew across the electrolyte from the anode to the cathode, leading to dangerous short-circuits in the cell in the presence of the flammable organic liquid electrolyte. Because lowering the voltage of the anode would prevent cells with layered-chalcogenide cathodes from competing with cells that had an aqueous electrolyte, researchers quickly abandoned this effort. However, once it was realized that an oxide cathode could offer a larger voltage versus lithium, researchers considered the extraction of Li from the layered LiMO2 oxides with M = Co or Ni.

These oxide cathodes were fabricated in a discharged state, and battery manufacturers could not conceive of assembling a cell with a discharged cathode. Meanwhile, exploration of Li intercalation into graphite showed that reversible Li insertion into carbon occurred without dendrite formation. The SONY corporation used the LiCoO2/carbon battery to power their initial cellular telephone and launched the wireless revolution. As researchers developed 3D transition-metal hosts, manufacturers introduced spinel and olivine hosts in the Lix[Mn2]O4 and LiFe(PO4) cathodes. However, current Li-ion batteries fall short of the desired specifications for electric-powered automobiles and the storage of electrical energy generated by wind and solar power. These demands are stimulating new strategies for electrochemical cells that can safely and affordably meet those challenges.
.[ 来自科研家族 材料家族 ]


[ Last edited by xiejf on 2012-7-3 at 09:35 ]
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材料科学最新前沿热点 科研软件教程 锂电资源共享 电化学-电池材料
资源收集 纳米技术与能源及模拟 锂离子电池 锂离子电池正极材料
锂离子电池专题(技术答疑) 先进材料 ....锂电池┆_____ 锂电-电化学
纳米化学/电化学综述 材料类精品资源 动力电源 纳米科学和材料科学
纳米结构太阳能转换专辑 能源_新材料 材料综述 机械力化学
锂论 论锂 新能源科学与技术 光伏&光催化 钠离子电池及先进材料
Allen的能源系列 化学电源之锂离子电池 材料专题 学术
超级电容器&电池 晶体制备及测试 vasp 高分子复合材料
专业知识 Lithium batteries 锂电界的综述及牛人牛文 锂离子电池等
Lithium ion batterie 好资料 锂电 ylyao
锂电种种 锂电 电池 电池综述
LIB之LFS

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