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通过可扩展可控的生物制造方法制备亲锂性碳纳米纤维/石墨烯纳米片复合支架用于超稳定无枝晶锂金属负极

Lithiophilic Carbon Nanofiber/Graphene Nanosheet Composite Scaffold Prepared by a Scalable and Controllable Biofabrication Method for Ultrastable Dendrite-Free Lithium-Metal Anodes.

机构信息

School of Materials Science and Engineering, Key Laboratory of Advanced Ceramics and Machining Technology (Ministry of Education), and Tianjin Key Laboratory of Composite and Functional Materials, Tianjin University, Tianjin, 300072, China.

Jiangxi Key Laboratory of Nanobiomaterials, Institute of Advanced Materials, East China Jiaotong University, Nanchang, 330013, China.

出版信息

Small. 2022 Jan;18(3):e2104735. doi: 10.1002/smll.202104735. Epub 2021 Nov 27.

DOI:10.1002/smll.202104735
PMID:34837308
Abstract

Li metal is regarded as a promising anode for high-energy-density Li batteries, while the limited cycle life and fast capacity decay caused by notorious Li dendrite growth seriously impedes its application. Herein, a robust and highly lithiophilic bacterial cellulose-derived carbon nanofiber@reduced graphene oxide nanosheet (BC-CNF@rGO) composite scaffold is fabricated as a host for dendrite-free Li metal anode through an in situ biofabrication method. The abundant lithiophilic functional groups, conductive 3D network, and excellent mechanical property can effectively regulate uniform Li nucleation and deposition, enable fast reaction kinetics, and alleviate volume change. As a result, the BC-CNF@rGO skeleton achieves exceptional Li plating/stripping performance with a high average Coulombic efficiency of 98.3% over 800 cycles, and a long cycle life span of 5000 h at 2 mA cm @1 mAh cm with a low overpotential of ≈15 mV for lithium plating. Furthermore, full cells coupling BC-CNF@rGO-Li anode with LiFePO cathode achieves an unprecedented cycling stability with a long cycle life of 3000 cycles at 1 C. This work sheds light on a promising material design and fabrication strategy for realizing high performance Li metal batteries.

摘要

金属锂被认为是高能密度锂电池的一种很有前途的阳极材料,但由于臭名昭著的锂枝晶生长导致其循环寿命有限且容量衰减迅速,严重阻碍了其应用。在此,通过原位生物制造方法,制备了一种坚固的、高亲锂的细菌纤维素衍生的碳纳米纤维@还原氧化石墨烯纳米片(BC-CNF@rGO)复合支架,作为无枝晶锂金属阳极的主体。丰富的亲锂官能团、导电 3D 网络和优异的机械性能可以有效调节均匀的 Li 成核和沉积,实现快速的反应动力学,并缓解体积变化。结果,BC-CNF@rGO 骨架实现了出色的 Li 电镀/剥离性能,在 800 次循环中具有高达 98.3%的平均库仑效率,在 2 mA cm @1 mAh cm 的低过电势(≈15 mV)下具有 5000 h 的长循环寿命,用于 Li 电镀。此外,将 BC-CNF@rGO-Li 阳极与 LiFePO 阴极组装成全电池,具有前所未有的循环稳定性,在 1 C 下循环寿命长达 3000 次。这项工作为实现高性能锂金属电池提供了一种有前途的材料设计和制造策略。

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