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Functionalized few-layer black phosphorus with super-wettability towards enhanced reaction kinetics for rechargeable batteries

journal contribution
posted on 2024-11-16, 05:21 authored by Yu Zhang, Wenping Sun, Zhong Zhen Luo, Yun Zheng, Zhenwei Yu, Dan Zhang, Jun Yang, Hui Teng Tan, Jixin Zhu, Xiaolin WangXiaolin Wang, QingYu Yan, Shi DouShi Dou
Few-layer black phosphorus (BP) is a promising anode material for sodium ion batteries (SIBs) due to its high theoretical capacity and favorable layered structure. However, practical implementation is hindered by sluggish reaction kinetics and large volume change during de/sodiation process. Especially, combining BP with large portion of low-capacity carbonaceous materials is a common strategy to improve the Na storage properties, but leading to reduced specific capacity based on the overall mass of the whole electrode. To address these challenges, nanoscale surface engineering of few-layer BP is herein performed by homogeneously depositing horizontally aligned Poly(3, 4-ethylenedioxythiophene) (PEDOT) nanofibers on specially surface-modified BP nanosheets. Such material design could achieve simultaneously: (1) enhanced charge transfer kinetics and (2) super surface wettability with electrolyte. Benefiting from the unique functionalization, the reaction kinetics are greatly enhanced accordingly for both sodium and lithium storage. Our strategy sheds light on designing advanced electrodes for high-performance rechargeable batteries and other energy storage/conversion devices.

Funding

Lithium-Ion Conducting Sulfide Cathodes for All-Solid-State Li–S Batteries

Australian Research Council

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Multifunctional 2D materials for sustainable energy applications

Australian Research Council

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Development of the next generation battery storage system for smart grid

Australian Research Council

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History

Citation

Zhang, Y., Sun, W., Luo, Z., Zheng, Y., Yu, Z., Zhang, D., Yang, J., Tan, H. Teng., Zhu, J., Wang, X., Yan, Q. & Dou, S. Xue. (2017). Functionalized few-layer black phosphorus with super-wettability towards enhanced reaction kinetics for rechargeable batteries. Nano Energy, 40 576-586.

Journal title

Nano Energy

Volume

40

Pagination

576-586

Language

English

RIS ID

116410

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