In-situ reducing synthesis of MoP@nitrogen-doped carbon nanofibers as an anode material for lithium/sodium-ion batteries

被引:29
作者
Fu, Cuimei [1 ]
Yang, Hao [1 ]
Feng, Guofeng [1 ]
Wang, Lina [1 ]
Liu, Tianxi [1 ,2 ]
机构
[1] Donghua Univ, Coll Mat Sci & Engn, Innovat Ctr Text Sci & Technol, State Key Lab Modificat Chem Fibers & Polymer Mat, Shanghai 201620, Peoples R China
[2] Jiangnan Univ, Sch Chem & Mat Engn, Key Lab Synthet & Biol Colloids, Minist Educ, Wuxi 214122, Jiangsu, Peoples R China
关键词
MoP; Nanofibers; Self-reduction phosphorization; Lithium/sodium-ion batteries; ELECTROCHEMICAL ENERGY-STORAGE; HOLLOW SPHERES; PERFORMANCE; NANOPARTICLES; PHOSPHORUS; ELECTRODES; CHEMISTRY; EFFICIENT; CAPACITY; CATALYST;
D O I
10.1016/j.electacta.2020.136921
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Transition metal phosphide anodes have received increasing attention for lithium/sodium-ion batteries due to their high theoretical capacities and apposite intercalation potential range. However, the mechanical stress induced dramatic volumetric expansion upon a conversion reaction mechanism has hindered the practical applications. Herein, we demonstrate a high performance anode of MoP@nitrogen-doped carbon nanofibers (MoP@NCNFs), which are prepared from an electrospinning method followed by an in-situ carbothermic self-reduction process. The well-crystallized MoP nanoparticles are uniformly distributed in the interweaving nanofibers, affording a conductive network for fast charge/ion transport and adequate buffer space for volumetric expansion. Benefit from the unique structure, the MoP@NCNFs synthesized at 800 degrees C delivers a reversible capacity of 840 mAh g(-1) at 100 mA g(-1) after 200 cycles. At 2 A g(-1), longer cycling upto 1300 cycles is achieved with a capacity of 377 mAh g(-1) along with a Coulombic efficiency of 99% for Li storage. And a decent performance is also available for sodium storage. Quantitative kinetics analysis confirms that the charge storage behavior is governed by pseudocapacitance, especially at high rates (75.9% at 1 mV s(-1)), boosting the high-rate lithium/sodium storage performance. (C) 2020 Elsevier Ltd. All rights reserved.
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页数:10
相关论文
共 52 条
[1]  
Augustyn V, 2013, NAT MATER, V12, P518, DOI [10.1038/NMAT3601, 10.1038/nmat3601]
[2]   Batteries and fuel cells for emerging electric vehicle markets [J].
Cano, Zachary P. ;
Banham, Dustin ;
Ye, Siyu ;
Hintennach, Andreas ;
Lu, Jun ;
Fowler, Michael ;
Chen, Zhongwei .
NATURE ENERGY, 2018, 3 (04) :279-289
[3]   Cobalt phosphide as a highly active non-precious metal cocatalyst for photocatalytic hydrogen production under visible light irradiation [J].
Cao, Shuang ;
Chen, Yong ;
Hou, Chun-Chao ;
Lv, Xiao-Jun ;
Fu, Wen-Fu .
JOURNAL OF MATERIALS CHEMISTRY A, 2015, 3 (11) :6096-6101
[4]  
Cheng X, 2018, WIRELESS NETW-GER, P1, DOI 10.1007/978-3-319-96116-3
[5]   Carbon foam with microporous structure for high performance symmetric potassium dual-ion capacitor [J].
Feng, Yanhong ;
Chen, Suhua ;
Wang, Jue ;
Lu, Bingan .
JOURNAL OF ENERGY CHEMISTRY, 2020, 43 :129-138
[6]   Graphene-scroll-sheathed α-MnS coaxial nanocables embedded in N, S Co-doped graphene foam as 3D hierarchically ordered electrodes for enhanced lithium storage [J].
Gao, Xu ;
Wang, Boya ;
Zhang, Yun ;
Liu, Heng ;
Liu, Huakun ;
Wu, Hao ;
Dou, Shixue .
ENERGY STORAGE MATERIALS, 2019, 16 :46-55
[7]   Electrochemical reactivity and design of NiP2 negative electrodes for secondary Li-lon batteries [J].
Gillot, F ;
Boyanov, S ;
Dupont, L ;
Doublet, ML ;
Morcrette, A ;
Monconduit, L ;
Tarascon, JM .
CHEMISTRY OF MATERIALS, 2005, 17 (25) :6327-6337
[8]   Energy Storage in Nanomaterials - Capacitive Pseudocapacitive, or Battery-like? [J].
Gogotsi, Yury ;
Penner, Reginald M. .
ACS NANO, 2018, 12 (03) :2081-2083
[9]   Energy storage materials: A perspective [J].
Goodenough, John B. .
ENERGY STORAGE MATERIALS, 2015, 1 :158-161
[10]   Molybdenum Phosphide: A Conversion-type Anode for Ultralong-Life Sodium-Ion Batteries [J].
Huang, Zhaodong ;
Hou, Hongshuai ;
Wang, Chao ;
Li, Simin ;
Zhang, Yun ;
Ji, Xiaobo .
CHEMISTRY OF MATERIALS, 2017, 29 (17) :7313-7322