钠离子电池硒化钴负极材料制备方法及改性研究进展

康江龙1, 袁永祥1, 席儒恒1, 后小毅2*

化工新型材料 ›› 2024, Vol. 52 ›› Issue (4) : 69 -73.

PDF
化工新型材料 ›› 2024, Vol. 52 ›› Issue (4) : 69-73. DOI: 10.19817/j.cnki.issn1006-3536.2024.04.021
综述与专论

钠离子电池硒化钴负极材料制备方法及改性研究进展

    康江龙1, 袁永祥1, 席儒恒1, 后小毅2*
作者信息 +

Research progress on preparation and modification of cobalt selenide anode materials for sodium-ion batteries

  • Kang Jianglong1, Yuan Yongxiang1, Xi Ruheng1, Hou Xiaoyi2
Author information +
文章历史 +
PDF

摘要

硒化钴(CoSe2)因具有较高的理论容量,被认为是极具潜在价值的钠离子电池(SIBs)负极材料。但CoSe2负极材料在充放电过程中体积膨胀严重且充放电性能差,影响了电池的实际应用。针对CoSe2材料应用于钠离子电池负极中存在的问题,主要从材料晶体结构及储钠机理、制备工艺、改性研究(纳米结构调控、杂原子掺杂、材料复合化)等方面入手,概述了国内外研究学者将CoSe2应用于钠离子电池负极材料的设计研究进展。最后,立足于当下CoSe2负极材料研究现状,阐述了其在某些方面存在的问题,以及仍需努力的方向。

Abstract

Cobalt selenide (CoSe2) is considered a potential anode material for sodium-ion batteries (SIBs) due to its high theoretical capacity.However,CoSe2 anode material has serious volume expansion and poor charge-discharge performance during the charge-discharge process,which hinders its practical application in battery.In view of the existing problems in the application of CoSe2 material in sodium-ion battery anodes,mainly from the perspectives of the crystal structure,sodium storage mechanism,preparation process,and modification research (nanostructure control,heteroatom doping and material compounding) of CoSe2 material,the design and research progress of CoSe2 used as an anode material for sodium-ion batteries by domestic and foreign researchers was reviewed.Finally,based on the current research status of CoSe2 anode materials,the existing problems in some aspects and the research direction that still needed to be worked on were expounded.

关键词

钠离子电池 / 负极材料 / 硒化钴 / 制备方法 / 电化学性能

Key words

sodium-ion battery / anode material / CoSe2 / preparation method / electrochemical performance

引用本文

引用格式 ▾
钠离子电池硒化钴负极材料制备方法及改性研究进展[J]. 化工新型材料, 2024, 52(4): 69-73 DOI:10.19817/j.cnki.issn1006-3536.2024.04.021

登录浏览全文

4963

注册一个新账户 忘记密码

参考文献

[1] Tan K M,Babu T S,Ramachandaramurthy V K,et al.Empowering smart grid:a comprehensive review of energy storage technology and application with renewable energy integration[J].Journal of Energy Storage,2021,39:102591.
[2] Chen X,Zhang Y.The main problems and solutions in practical application of anode materials for sodium ion batteries and the latest research progress[J].International Journal of Energy Research,2021,45(7):9753-9779.
[3] Zhang L,Dong H,Wei H,et al.Interface and structure engineering of bimetallic selenides toward high-performance sodium-ion half/full batteries[J].Journal of Power Sources,2021,506:230216.
[4] Qi S,Wu D,Dong Y,et al.Cobalt-based electrode materials for sodium-ion batteries[J].Chemical Engineering Journal,2019,370:185-207.
[5] Liu T,Hou S,Li Y,et al.Tailoring submicron cobblestone-like carbon-free CoSe2 with high energy density for sodium-ion batteries[J].ACS Applied Energy Materials,2020,3(10):9558-9567.
[6] Ma X,Zou L,Zhao W.Tailoring hollow microflower-shaped CoSe2 anodes in sodium ion batteries with high cycling stability[J].ChemCommun (Camb),2018,54(74):10507-10510.
[7] Liu X,Xu G B,Cheng T T,et al.Effect of crystal structures on electrochemical performance of hierarchically porous CoSe2 spheres as anodes for sodium-ion batteries[J].ChemElectroChem,2020,7:846-854.
[8] Yin H,Qu H Q,Liu Z,et al.Long cycle life and high rate capability of three dimensional CoSe2 grain-attached carbon nanofibers for flexible sodium-ion batteries[J].Nano Energy,2019,58:715-723.
[9] Cui C,Wei Z,Zhou G,et al.Quasi-reversible conversion reaction of CoSe2/nitrogen-doped carbon nanofibers towards long-lifetime anode materials for sodium-ion batteries[J].Journal of Materials Chemistry A,2018,6(16):7088-7098.
[10] Feng J,Luo S-h,Lin Y-C,et al.Metal-organic framework derived CoSe2/N-doped carbon core-shell nanoparticles encapsulated in porous N-doped carbon nanotubes as high-performance anodes for sodium-ion batteries[J].Journal of Power Sources,2022,535:231444.
[11] Kong F,Wang J,Chen J,et al.MOF-derived ultrasmall CoSe2 nanoparticles encapsulated by an N-doped carbon matrix and their superior lithium/sodium storage properties[J].ChemCommun (Camb),2020,56(64):9218-9221.
[12] Park S K,Kang Y C.MOF-templated N-doped carbon-coated CoSe2 nanorods supported on porous CNT microspheres with excellent sodium-ion storage and electrocatalyticproperties[J].ACS Appl Mater Interfaces,2018,10(20):17203-17213.
[13] Ko Y N,Choi S H,Kang Y C.Hollow cobalt selenide microspheres:synthesis and application as anode materials for Na-ion batteries[J].ACS Appl Mater Interfaces,2016,8(10):6449-6456.
[14] Ge H,Fan S,Liu J,et al.In Situ growth of CoSe2 coated in porous carbon layers as anode for efficient sodium-ion batteries[J].Energy Technology,2021,9(3):2001074.
[15] Zhang K,Park M,Zhou L,et al.Urchin-like CoSe2 as a high-performance anode material for sodium-ion batteries[J].Advanced Functional Materials,2016,26(37):6728-6735.
[16] Lee J S,Saroha R,Cho J S.Porous microspheres comprising CoSe2 nanorods coated with N-doped graphitic C and polydopamine-derived C as anodes for long-lived Na-ion batteries[J].Nanomicro Lett,2022,14(1):113.
[17] Wang B,Miao X,Dong H,et al.In situ construction of active interfaces towards improved high-rate performance of CoSe2[J].Journal of Materials Chemistry A,2021,9(25):14582-14592.
[18] Oh H G,Yang S H,Kang Y C,et al.N-doped carbon-coated CoSe2 nanocrystals anchored on two-dimensional MXenenanosheets for efficient electrochemical sodium- and potassium-ion storage[J].International Journal of Energy Research,2021,45(12):17738-17748.
[19] Yousaf M,Chen Y,Tabassum H,et al.A dual protection system for heterostructured 3D CNT/CoSe2/C as high areal capacity anode for sodium storage[J].AdvSci (Weinh),2020,7(5):1902907.
[20] Geng J,Zhang S,Ang E H,et al.Modulating the kinetics of CoSe2 yolk-shell spheres via nitrogen doping with high pseudocapacitance toward ultra-high-rate capability and high-energy density sodium-ion half/full batteries[J].Materials Chemistry Frontiers,2021,5(18):6873-6882.
[21] Xiao Y,Zhang J,Su D,et al.In-situ growth of V-shaped CoSe2 nanorods on graphene with C-Co bonding for high-rate and long-life sodium-ion batteries[J].Journal of Alloys and Compounds,2020,819:153359.
[22] Zhang Z,Lin J,Hao J,et al.Exploration of fast ion diffusion kinetics in graphene nanoscrolls encapsulated CoSe2 as advanced anode for high-rate sodium-ion batteries[J].Carbon,2021,181:69-78.
[23] Yang J,Gao H,Men S,et al.CoSe2 nanoparticles encapsulated by N-doped carbon framework intertwined with carbon nanotubes:high-performance dual-role anode materials for both Li- and Na-ion batteries[J].AdvSci (Weinh),2018,5(12):1800763.
[24] Tabassum H,Zhi C,Hussain T,et al.Encapsulating trogtalite CoSe2 nanobuds into BCN nanotubes as high storage capacity sodium ion battery anodes[J].Advanced Energy Materials,2019,9(39):1901778.
[25] Li F,Li L,Yao T,et al.Electrospinning synthesis of porous carbon nanofiber supported CoSe2 nanoparticles towards enhanced sodium ion storage[J].Materials Chemistry and Physics,2021,262:124314.
[26] Jo M S,Lee J S,Jeong S Y,et al.Golden bristlegrass-like hierarchical graphene nanofibers entangled with N-doped CNTs containing CoSe2 nanocrystals at each node as anodes for high-rate sodium-ion batteries[J].Small,2020,16(38):e2003391.
[27] Fang Y,Yu X Y and Lou X W D.Formation of hierarchical Cu-doped CoSe2 microboxes via sequential ion exchange for high-performance sodium-ion batteries[J].Adv Mater,2018,30(21):e1706668.
[28] Fan S,Li G,Cai F,et al.Synthesis of porous Ni-doped CoSe2/C nanospheres towards high-rate and long-term sodium-ion half/full batteries[J].Chemistry,2020,26(39):8579-8587.
[29] Ye J,Li X,Xia G,et al.P-doped CoSe2 nanoparticles embedded in 3D honeycomb-like carbon network for long cycle-life Na-ion batteries[J].Journal of Materials Science & Technology,2021,77:100-107.

基金资助

青海省自然科学基金项目项目-青年(2023-0302-ZJC-0121)

AI Summary AI Mindmap
PDF

734

访问

0

被引

导航
相关文章

AI思维导图

/