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Achieving Fast and Durable Lithium Storage through Amorphous FeP Nanoparticles Encapsulated in Ultrathin 3D P-Doped Porous Carbon Nanosheets

Authors :
Zheng, Zhiming
Wu, Hong-Hui
Liu, Haodong
Zhang, Qiaobao
He, Xin
Yu, Sicen
Petrova, Victoria
Feng, Jun
Kostecki, Robert
Liu, Ping
Peng, Dong-Liang
Liu, Meilin
Wang, Ming-Sheng
Source :
ACS Nano; August 2020, Vol. 14 Issue: 8 p9545-9561, 17p
Publication Year :
2020

Abstract

Conversion-type transition-metal phosphide anode materials with high theoretical capacity usually suffer from low-rate capability and severe capacity decay, which are mainly caused by their inferior electronic conductivities and large volumetric variations together with the poor reversibility of discharge product (Li3P), impeding their practical applications. Herein, guided by density functional theory calculations, these obstacles are simultaneously mitigated by confining amorphous FeP nanoparticles into ultrathin 3D interconnected P-doped porous carbon nanosheets (denoted as FeP@CNs) viaa facile approach, forming an intriguing 3D flake-CNs-like configuration. As an anode for lithium-ion batteries (LIBs), the resulting FeP@CNs electrode not only reaches a high reversible capacity (837 mA h g–1after 300 cycles at 0.2 A g–1) and an exceptional rate capability (403 mA h g–1at 16 A g–1) but also exhibits extraordinary durability (2500 cycles, 563 mA h g–1at 4 A g–1, 98% capacity retention). By combining DFT calculations, in situtransmission electron microscopy, and a suite of ex situmicroscopic and spectroscopic techniques, we show that the superior performances of FeP@CNs anode originate from its prominent structural and compositional merits, which render fast electron/ion-transport kinetics and abundant active sites (amorphous FeP nanoparticles and structural defects in P-doped CNs) for charge storage, promote the reversibility of conversion reactions, and buffer the volume variations while preventing pulverization/aggregation of FeP during cycling, thus enabling a high rate and highly durable lithium storage. Furthermore, a full cell composed of the prelithiated FeP@CNs anode and commercial LiFePO4cathode exhibits impressive rate performance while maintaining superior cycling stability. This work fundamentally and experimentally presents a facile and effective structural engineering strategy for markedly improving the performance of conversion-type anodes for advanced LIBs.

Details

Language :
English
ISSN :
19360851 and 1936086X
Volume :
14
Issue :
8
Database :
Supplemental Index
Journal :
ACS Nano
Publication Type :
Periodical
Accession number :
ejs53761258
Full Text :
https://doi.org/10.1021/acsnano.9b08575