以聚乙烯吡咯烷酮(PVP)为碳前驱体,聚碳硅烷(PCS)为增强相,采用静电纺丝和退火工艺制备SiCO@CNFs复合材料。通过扫描电子显微镜(SEM)、X射线衍射仪(XRD)、X射线光电子能谱(XPS)、热重分析(TG)和傅利叶变换红外光谱(FT-IR)等方法对样品进行结构表征;通过电化学工作站和高性能电池检测系统对样品电化学性能进行测试。结果表明,在100mA/g的电流密度下,SiCO@CNFs复合材料的初始放电容量为1498.71mAh/g。在电流密度为300mA/g时,经过500次循环后,SiCO@CNFs的容量保持率可为49%,而CNFs的容量保持率仅为12%。SiCO@CNFs显示出优异的锂存储性能和循环稳定性。
SiCO@CNFs composites were prepared by electrospinning and annealing process using polyethylene pyrrotanone (PVP) as carbon precursor and polycarbosilane (PCS) as reinforcing phase.The samples were structurally characterized by scanning electron microscope (SEM),X-ray diffractor (XRD),X-ray optoelectronic electron spectroscopy (XPS),thermogravimetric analysis (TG),and Fourier transform infrared spectroscopy (FT-IR).The electrochemical properties of samples were tested by electrochemical workstation and high-performance battery detection system.The results showed that the initial discharge capacity of SiCO@CNFs composite was 1498.71mAh/g at a current density of 100mA/g.At a current density of 300mA/g,the capacity retention ratio of SiCO@CNFs could be retained at 49% after 500 cycles,while the capacity retention ratio of CNFs was only 12%.SiCO@CNFs presented excellent lithium storage performance and cycling stability.
[1] Zuo X X,Zhu J,Müller-Buschbaum P,et al.Silicon based lithium-ion battery anodes:a chronicle perspective review[J].Nano Energy,2017,31:113-143.
[2] 马静波.锂离子电池用高容量碳基负极材料的研究[D].贵阳:贵州大学,2020.
[3] Feng Y,Dou S M,Wei Y Z,et al.Preparation and capacity-fading investigation of polymer-derived silicon carbonitride anode for lithium-ion battery[J].ACS Omega,2017,2:8075-8085.
[4] An W L,Gao B,Mei S X,et al.Scalable synthesis of ant-nest-like bulk porous silicon for high-performance lithium-ion battery anodes[J].Nature Communications,2019,10(1):1-11.
[5] Han J L,Chen G R,Yan T G,et al.Creating graphene-like carbon layers on SiO anodes via a layer-by-layer strategy for lithium-ion battery[J].Chemical Engineering Journal,2018,347:273-279.
[6] Zhang Y,Ren J H,Xu T,et al.Covalent bonding of Si nanoparticles on graphite nanosheets as anodes for lithium-ion batteries using diazonium chemistry[J].Nanomaterials,2019,9(12):1741-1749.
[7] Weng Y H,Chen G R,Dou F,et al.In situ growth of silicon carbide interface enhances the long life and high power of the mulberry-like Si-based anode for lithium-ion batteries[J].Journal of Energy Storage,2020,32:101856-101861.
[8] Ahn D,Raj R.Thermodynamic measurements pertaining to the hysteretic intercalation of lithium in polymer-derived silicon oxycarbide[J].Journal of Power Sources,2010,195(12):3900-3906.
[9] Sanchez-Jimenez P E,Raj R.Lithium insertion in polymer-derived silicon oxycarbide ceramics[J].Journal of the American Ceramic Society,2010,93(4):1127-1135.
[10] Ahn D,Raj R.Cyclic stability and C-rate performance of amorphous silicon and carbon-based anodes for electrochemical storage of lithium[J].Journal of Power Sources,2011,196(4):2179-2186.
[11] Shen J,Raj R.Silicon-oxycarbide based thin film anodes for lithium-ion batteries[J].Journal of Power Sources,2011,196(14):5945-5950.
[12] Bréquel H,Parmentier J,Walter S,et al.Systematic structural characterisation of the high temperature behaviour of nearly-stoichiometric silicon oxycarbide glasses[J].Chemistry of Materials,2004,16(13):2585-2598.
[13] Fukui H,Eguchi K,Ohsuka H,et al.Structures and lithium storage performance of Si—O—C composite materials depending on pyrolysis temperatures[J].Journal of Power Sources,2013,243:152-158.
[14] Kundu K,Ghosh A,Pratihar S,et al.Boron doped SiC thin film on silicon synthesized from polycarbosilane:a new lead free material for applications in piezosensors[J].Journal of Materials Science:Materials in Electronics,2021,32(20):25108-25117.
[15] Joo Y J,Khishigbayar K E,Cho K Y,et al.Reduced pressure curing on polycarbosilane precursor for synthesis of silicon carbide fiber[J].Fibers and Polymers,2018,19(9):1806-1812.
[16] Contact G I,Sidorov D V,Mapolis A P,et al.Molecular structure of a carbosilane oligomer[J].Inorganic Materials,2020,56(3):304-308.
[17] 赵玉梅.聚碳硅烷结构研究[D].长沙:国防科学技术大学,2005.
[18] Lu P,Huang Q,Mukherjee A,et al.Effects of polymer matrices to the formation of silicon carbide (SiC) nanoporous fifibers and nanowires under carbothermal reduction[J].Journal of Materials Chemistry,2011,21(4):1005-1012.
[19] Smith A L.Infrared spectra-structure correlations for organosilicon compounds,Spectrochim[J].Spectrochimica Acta,1960,16(1-2):87-105.
[20] Saha A,Raj R,Williamson D L.A model for the nanodomains in polymer-derived SiCO[J].Journal of the American Ceramic Society,2006,89(7):2188-2195.
[21] 吴静.锂离子电池硅基复合负极的制备与性能研究[D].武汉:武汉理工大学,2017.
[22] Wilamowska-Zawlocka M,Puczkarskib P,Grabowska Z,et al.Silicon oxycarbide ceramics as anodes for lithium-ion batteries:influence of carbon content on lithium storage capacity[J].RSC Advances,2016,6(106):104597-104607.
[23] Nangir M,Massoudi A,Tayebifard S A.Investigation of the lithium-ion depletion in the silicon-silicon carbide anode/electrolyte interface in lithium-ion battery via electrochemical impedance spectroscopy[J].Journal of Electroanalytical Chemistry,2020,873:114385-114420.