TY - JOUR
T1 - Achieving Sustainable and Stable Potassium-Ion Batteries by Leaf-Bioinspired Nanofluidic Flow
AU - Zhang, Xixue
AU - Wu, Feng
AU - Lv, Xiaowei
AU - Xu, Liqianyun
AU - Huang, Ruling
AU - Chen, Renjie
AU - Li, Li
N1 - Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2022/9/28
Y1 - 2022/9/28
N2 - In nature, living systems have evolved integrated structures, matching optimized nanofluidics to adapt to external conditions. In rechargeable batteries, high-capacity electrodes are often plagued by the crucial and universal bottleneck of dissolution and shuttle of active substance into electrolyte, posing obstacles of inevitable capacity degradation. Introducing the concept of intelligent nanofluidics to electrodes, a leaf-bioinspired electrode configuration with hierarchical architecture to tackle this problem is proposed. This integrated structure with fine-tuned surface pores and unobstructed interior porous media, can spatially control the anisotropic nanofluidic flux, in an efficient and self-protectable way: tailoring the outflow across the electrode's surface and free transport in interior, to ensure speedy and stable energy conversion. As proofs of concept, applications of sustainable electrodes rejuvenated from fallen leaf and spent commercial batteries, are designed with leaf-bioinspired architecture. Both K-CoS2 and K-S battery systems show advanced steady cycling with effectively mitigated shuttle issues in this smart architecture (0.15% and 0.21% capacity decay per cycle), even at high areal mass loading, when compared with open porous structure (0.60% and 0.39%). This work may pave a new way from a biomimetic view to integrated electrode engineering with regulated surface shielding to conquer the universal dissolution–shuttle problems facing high-capacity materials.
AB - In nature, living systems have evolved integrated structures, matching optimized nanofluidics to adapt to external conditions. In rechargeable batteries, high-capacity electrodes are often plagued by the crucial and universal bottleneck of dissolution and shuttle of active substance into electrolyte, posing obstacles of inevitable capacity degradation. Introducing the concept of intelligent nanofluidics to electrodes, a leaf-bioinspired electrode configuration with hierarchical architecture to tackle this problem is proposed. This integrated structure with fine-tuned surface pores and unobstructed interior porous media, can spatially control the anisotropic nanofluidic flux, in an efficient and self-protectable way: tailoring the outflow across the electrode's surface and free transport in interior, to ensure speedy and stable energy conversion. As proofs of concept, applications of sustainable electrodes rejuvenated from fallen leaf and spent commercial batteries, are designed with leaf-bioinspired architecture. Both K-CoS2 and K-S battery systems show advanced steady cycling with effectively mitigated shuttle issues in this smart architecture (0.15% and 0.21% capacity decay per cycle), even at high areal mass loading, when compared with open porous structure (0.60% and 0.39%). This work may pave a new way from a biomimetic view to integrated electrode engineering with regulated surface shielding to conquer the universal dissolution–shuttle problems facing high-capacity materials.
KW - bioinspired materials
KW - nanofluidics
KW - potassium-ion batteries
KW - spent batteries’ recycling
UR - http://www.scopus.com/inward/record.url?scp=85136840391&partnerID=8YFLogxK
U2 - 10.1002/adma.202204370
DO - 10.1002/adma.202204370
M3 - Article
C2 - 35973233
AN - SCOPUS:85136840391
SN - 0935-9648
VL - 34
JO - Advanced Materials
JF - Advanced Materials
IS - 39
M1 - 2204370
ER -