A safe and sustainable bacterial cellulose nanofiber separator for lithium rechargeable batteries

Author:

Gwon Hyeokjo,Park Kitae,Chung Soon-Chun,Kim Ryoung-Hee,Kang Jin Kyu,Ji Sang Min,Kim Nag-Jong,Lee Sunghaeng,Ku Jun-Hwan,Do Eun Cheol,Park Sujin,Kim Minsang,Shim Woo Yong,Rhee Hong Soon,Kim Jae-Young,Kim Jieun,Kim Tae Yong,Yamaguchi Yoshitaka,Iwamuro Ryo,Saito Shunsuke,Kim Gahee,Jung In-Sun,Park Hyokeun,Lee Chanhee,Lee Seungyeon,Jeon Woo Sung,Jang Woo Dae,Kim Hyun UkORCID,Lee Sang YupORCID,Im Dongmin,Doo Seok-Gwang,Lee Sang Yoon,Lee Hyun ChulORCID,Park Jin Hwan

Abstract

Bacterial cellulose nanofiber (BCNF) with high thermal stability produced by an ecofriendly process has emerged as a promising solution to realize safe and sustainable materials in the large-scale battery. However, an understanding of the actual thermal behavior of the BCNF in the full-cell battery has been lacking, and the yield is still limited for commercialization. Here, we report the entire process of BCNF production and battery manufacture. We systematically constructed a strain with the highest yield (31.5%) by increasing metabolic flux and improved safety by introducing a Lewis base to overcome thermochemical degradation in the battery. This report will open ways of exploiting the BCNF as a “single-layer” separator, a good alternative to the existing chemical-derived one, and thus can greatly contribute to solving the environmental and safety issues.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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