Rechargeable batteries of high energy density and overall performance are becoming a critically important technology in the rapidly changing society of the twenty-first century. While lithium-ion batteries have so far been the dominant choice, numerous emerging applications call for higher capacity, ...
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Most commercial secondary/rechargeable lithium batteries are based on the lithium ion cell depicted in Fig.1. A carbonaceous material such as graphite serves as the anode and hosts lithium as LiC6in the charged state. A lithiated metal oxide (LiMO, e.g., LiCoO2) cathode hosts the lithium in ...
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Lithium-ion batteries have had a profound impact on our daily life, but inherent limitations make it difficult for Li-ion chemistries to meet the growing demands for portable electronics, electric vehicles and grid-scale energy storage. Therefore, chemis
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Lithium metal anodes have attracted much attention as candidates for high-energy batteries, but there have been few reports of long cycling behaviour, and the degradation mechanism of realistic high-energy Li metal cells remains unclear. Here, we develop
Lithium-metal batteries (LMBs), as one of the most promising next-generation high-energy-density storage devices, are able to meet the rigid demands of new industries. However, the direct utilization of metallic lithium can induce harsh safety issues, inferior rate and cycle performance, or anode...
Traditional non-aqueous lithium-ion batteries have a high energy density, but their safety is compromised due to the flammable organic electrolytes they utilize.Aqueous batteries use water as the solvent for electrolytes, significantly e...
ElectrochemicalChi-HaoElectrochemicalChangElectrochemicalArumugamElectrochemicalManthiramElectrochemicalWileySmallRobust, Ultra‐Tough Flexible Cathodes for High‐Energy Li–S Batteries[J] . Sheng‐Heng Chung,Chi‐Hao Chang,Arumugam Manthiram.Small . 2016 (7)...