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

Author(s)
Kim, Ju-MyungKim, Seung-HyeokKim, Nag YoungRyou, Myeong-HwaBae, HongyeulKim, Jin HongLee, Young-GiLee, Sang-Young
Issued Date
2020-11
DOI
10.1016/j.isci.2020.101739
URI
https://scholarworks.unist.ac.kr/handle/201301/49951
Fulltext
https://www.sciencedirect.com/science/article/pii/S2589004220309366?via%3Dihub
Citation
ISCIENCE, v.23, no.11, pp.101739
Abstract
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.
Publisher
CELL PRESS
ISSN
2589-0042

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