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Nanofibrous Conductive Binders Based on DNA-Wrapped Carbon Nanotubes for Lithium Battery Electrodes

机译:基于DNA包裹的碳纳米管用于锂电池电极的纳米纤维导电粘合剂

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摘要

In contrast to enormous progresses in electrode active materials, little attention has been paid to electrode sheets despite their crucial influence on practical battery performances. Here, as a facile strategy to address this issue, we demonstrate nanofibrous conductive electrode binders based on deoxyribonucleic acid (DNA)-wrapped single-walled carbon nanotubes (SWCNT) (denoted as DNA@SWCNT). DNA@SWCNT binder allows the removal of conventional polymeric binders and carbon powder additives in electrodes. As a proof of concept, high-capacity overlithiated layered oxide (OLO) is chosen as a model electrode active material. Driven by nanofibrous structure and DNA-mediated chemical functionalities, the DNA@SWCNT binder enables improvements in the redox reaction kinetics, adhesion with metallic foil current collectors, and chelation of heavy metal ions dissolved from OLO. The resulting OLO cathode exhibits a fast charging capability (relative capacity ratio after 15 min [versus 10 h] of charging = 83%), long cyclability (capacity retention = 98% after 700 cycles), and thermal stability.
机译:与电极活性材料中的巨大进展相比,尽管对实际电池性能关键影响,但在电极板上的注意力很少。在这里,作为解决该问题的容易策略,我们证明了基于脱氧核糖核酸(DNA)的单壁碳纳米管(SWCNT)的纳米纤维导电电极粘合剂(如DNA / SWCNT表示)。 DNA @ SWCNT粘合剂允许除去常规的聚合物粘合剂和碳粉末添加剂在电极中。作为概念的证据,选择高容量的差异层状氧化物(OLO)作为模型电极活性材料。由纳米纤维结构和DNA介导的化学功能驱动,DNA @ SWCNT粘合剂能够改善氧化还原反应动力学,与金属箔集电器的粘合,以及溶解从OLO的重金属离子的螯合。所得的OLO阴极表现出快速充电能力(15分钟后的相对容量比率= 83%后),长的环状性(在700次循环后容量保持= 98%),以及热稳定性。

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