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Lithium Titanate Confined in Carbon Nanopores for Asymmetric supercapacitors

机译:钛酸锂限制在碳纳米孔中用于不对称超级电容器

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摘要

Porous carbons suffer from low specific capacitance, while intercalation-type active materials suffer from limited rate when used in asymmetric supercapacitors. We demonstrate that nanoconfinement of intercalation-type lithium titanate (Li4Ti5O12) nanoparticles in carbon nanopores yielded nanocomposite materials that offer both high ion storage density and rapid ion transport through open and interconnected pore channels. The use of titanate increased both the gravimetric and volumetric capacity of porous carbons by more than an order of magnitude. High electrical conductivity of carbon and the small size of titanate crystals allowed the composite electrodes to achieve characteristic charge and discharge times comparable to that of the electric double-layer capacitors. The proposed composite synthesis methodology is simple, scalable, and applicable for a broad range of active intercalation materials, while the produced composite powders are compatible with commercial electrode fabrication processes.
机译:当用于不对称超级电容器中时,多孔碳的比电容低,而插层型活性材料的速率受限。我们证明碳纳米孔中的插层型钛酸锂(Li4Ti5O12)纳米粒子的纳米约束产生了纳米复合材料,该材料既提供高离子存储密度,又通过开放和相互连接的孔道快速传输离子。钛酸酯的使用将多孔碳的重量和体积容量均提高了一个数量级以上。碳的高电导率和钛酸盐晶体的小尺寸允许复合电极获得与双电层电容器相当的特征充电和放电时间。所提出的复合合成方法简单,可扩展,并且适用于多种活性插层材料,而所生产的复合粉末与商业电极制造工艺兼容。

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