电极
电池(电)
材料科学
聚四氟乙烯
共价键
纳米技术
底漆(化妆品)
电化学
可持续能源
复合材料
光电子学
化学工程
集电器
粘附
互连
化学改性
干洗
玻璃化转变
化学稳定性
储能
数码产品
化学键
氟
分子
玻璃纤维
作者
Min Kyung Kim,Taegyun Yu,Sungbin Jang,Juho Lee,Hyeseong Oh,Min Jang,Hyungyeon Cha,Huiyeol Lee,Joonhee Kang,Seung Min Lee,Hyeongseok Shim,Kwon‐Hyung Lee,Gyujin Song,Wooyoung Jin,Tae‐Hee Kim,Sinho Choi,Kyeong‐Min Jeong,Joong Tark Han,Jaehong Yoo,Hun‐Gi Jung
标识
DOI:10.1038/s41467-025-66082-3
摘要
Dry electrodes are being actively developed for sustainable and efficient battery manufacturing. Currently, polytetrafluoroethylene binders dominate dry processes, raising concerns about high fluorine content regarding restrictions on per- and polyfluoroalkyl substances. Moreover, the poor adhesion necessitates a wet coating-based primer layer, which dilutes its main objectives. Here, we show dry processing approach using a thermoplastic, fluorine-free binder with low environmental impact and high productivity. Parafilm® M, a laboratory sealing film formulated with low-cost paraffin and polyethylene, consists of saturated linear hydrocarbons, offering high chemical stability from strong C-H covalent bonds and a large highest occupied molecular orbital - lowest unoccupied molecular orbital energy gap. It also has a low glass transition temperature, enabling mild-pressure activation to interconnect active materials while achieving true solvent-free adhesion without the wet-coating of primers on the current collector. This dry electrode binder provides substantial electrochemical properties based on LiNi0.8Co0.1Mn0.1O2 positive electrode over 5 mAh cm−2 for 600 cycles. This integrated approach bridges the gap between materials and processes, paving the way for sustainable advancements in battery electrode manufacturing. Fluorine-containing binders in battery dry electrode processing raise environmental concerns regarding restrictions on per- and polyfluoroalkyl substances. Here, authors show that a fluorine-free binder, Parafilm, can be an alternative to enable primer-free high-loading electrodes with stable cycling for sustainable lithium-ion batteries.
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