Regulating cathode surface hydroxyl chemistry enables superior potassium storage

Author:

Fu Qingfeng1ORCID,Peng Chi1,Zhou Wang1,Zhang Xiangni1,Yang Keke1,Chen Lanzi1,Mo Ying1,Wu Jian-Fang1,Gao Peng1,Fan Changling1,Xu Chaohe2,Wang Zhaohui1,Liu Jilei1ORCID

Affiliation:

1. College of Materials Science and Engineering, Hunan Joint International Laboratory of Advanced Materials and Technology for Clean Energy, Hunan Province Key Laboratory for Advanced Carbon Materials and Applied Technology, Hunan University, Changsha 410082, China

2. College of Aerospace Engineering, Chongqing University, Chongqing 40044, China

Abstract

Potassium vanadium fluorophosphate (KVPO 4 F) is regarded as a promising cathode candidate for potassium-ion batteries due to its high working voltage and satisfactory theoretical capacity. However, the usage of electrochemically inactive binders and redundant current collectors typically results in inferior electrochemical performance and low energy density, thus implying the important role of rational electrode structure design. Herein, we have reported a scalable and cost-effective synthesis of a cellulose-derived KVPO 4 F self-supporting electrode, which features a special surface hydroxyl chemistry, three-dimensional porous and conductive framework, as well as super flexible and stable architecture. The cellulose not only serves as a flexible substrate, a pore-forming agent, and a versatile binder for KVPO 4 F/conductive carbon but also enhances the K-ion migration ability. Benefiting from the special hydroxyl chemistry-induced storage mechanism and electrode structural stability, the flexible freestanding KVPO 4 F cathode exhibits high-rate performance (53.0% capacity retention with current densities increased 50-fold, from 0.2 C to 10 C) and impressive cycling stability (capacity retention up to 74.9% can be achieved over 1,000 cycles at a rate of 5 C). Such electrode design and surface engineering strategies, along with a deeper understanding of potassium storage mechanisms, provide invaluable guidance for better electrode design to boost the performance of potassium-ion energy storage systems.

Funder

MOST | National Natural Science Foundation of China

Outstanding Young Scientists Research Funds from Hunan Province

Major Science and Technology Program of Hunan Province

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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