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1.
卞锋菊  张忠如  杨勇 《电化学》2013,19(4):355-360
本文通过磷酸铁锂/碳电池研究了电解液添加剂氟代乙烯碳酸酯(FEC)对电池低温性能的影响. 电池充放电实验证明,FEC添加剂能够在负极表面形成良好的固体电解质界面层(SEI). 电解液中添加5% FEC后,电池-40 oC低温放电容量保持率可以从31.7%提高至43.7%,还提高了电池放电电压平台. 交流阻抗测试表明,FEC的加入能够有效降低电池的界面传荷阻抗(Rct). 参比电极测试表明,其主要是降低了碳负极的低温极化.  相似文献   

2.
使用电解液成膜添加剂是一种简单高效的提高电池循环稳定性的方法。氟代碳酸乙烯酯(FEC)的最低未被占据分子轨道(LUMO)能量较低,易被还原,通常被认为是很好的负极成膜添加剂,但因其最高占据分子轨道(HOMO)能量也较低,抗氧化性较好,故其被认为不在正极上发生作用。本工作结合电化学,形貌分析,化学成分表征,原位结构分析等方法研究了FEC添加剂在钠离子电池中的作用。我们发现适量的FEC添加剂不仅可以显著抑制电解液溶剂碳酸丙烯酯(PC)的分解,而且会在正极上形成一层富NaF的保护层,提高循环过程中正极晶格结构稳定性,从而提高电池的循环稳定性。密度泛函理论(DFT)计算表明,FEC之所以能在正极上形成保护层,可能与其容易在正极界面与钠盐阴离子ClO_4~-结合反应有关。  相似文献   

3.
锂离子电池电解液低温导电性能的研究   总被引:5,自引:0,他引:5  
韩景立  于燕梅  陈健  万春荣 《电化学》2003,9(2):222-227
本文研究了用于锂电池的LiPF6_乙烯碳酸酯(EC)_甲基乙酸酯(MA)电解液体系,测定了该体系在不同的溶剂配比和盐浓度下于20℃~-50℃时的电导率,给出该体系性能最佳的溶剂配比和盐浓度,以此进行循环伏安和充放电测试,并与商用电解液(LiPF6 EC 二乙基碳酸酯(DEC)进行了比较.  相似文献   

4.
近年来,锂金属电池由于具有较高的能量密度而成为储能领域的研究热点。电解液作为锂金属电池的“血液”发挥着至关重要的作用。在传统锂离子电池电解液中,锂金属负极与电解液之间的界面副反应严重并伴随着锂枝晶生长,从而导致安全隐患以及循环寿命缩短等问题。在解决锂金属负极问题上,电解液调控策略具有易操作性和有效性,因而在推动锂金属电池发展方面具有举足轻重的地位。氟代电解液是目前重要的研究方向,氟代电解液在循环过程中能够在电极表面形成富含LiF的固体电解质界面膜(SEI);该界面膜不仅可以有效抑制负极锂枝晶的形成,并且在正极方面能够大幅提高电解液的氧化稳定性,从而提升高电压正极的适配性和锂金属电池的循环稳定性。氟代电解液中氟代溶剂/氟代锂盐的分子结构对电解液的溶剂化结构有重要影响。当氟代溶剂分子中氟原子的位置与数量不同时,氟代溶剂的物理化学性质也会随之发生变化,进而改变了电解液与电极的界面反应性。因此,氟代溶剂能够起到调制SEI膜成分和结构的作用,是决定电池性能的关键因素。本文总结了应用于锂金属电池的主要氟代溶剂,尤其是近几年来发展的新型氟代溶剂;着重介绍了高度氟代的溶剂分子作为局域超浓电解液的稀释剂,以及对溶剂进行精准分子设计得到的部分氟代溶剂等。此外,本文还分析探讨了氟代溶剂分子与电池性能之间的构效关系,展望了构建新型氟代溶剂分子的策略,希望能对电解液溶剂分子的结构设计以及构效关系的评估有一定的启发意义。  相似文献   

5.
锂离子电池的低温性能主要取决于石墨负极,通过添加剂来改善负极的低温性能是研究的焦点之一. 本文比较了3种具有不同含硫官能团的添加剂DTD(ethylene sulfate)、1,3-PS(1,3-propane sultone)和ES(ethylene sulfite)对传统商业化材料人造石墨负极低温性能的影响. DFT(密度泛函理论)计算、扫描伏安法(CV)、扫描电子显微镜(SEM)和电化学测试结果表明,3种含硫添加剂均可在人造石墨负极表面参与成膜,并对其低温性能产生比较大的影响. 其中,DTD对石墨负极低温性能改善最为明显,1,3-PS对石墨负极的低温性能造成不利影响,而ES则没有明显作用. 电化学交流阻抗(EIS)和X射线光电子能谱(XPS)表明,这3种添加剂的不同作用主要在于其所形成的电极界面膜在电化学阻抗方面存在着明显的差异.  相似文献   

6.
二氟二草酸硼酸锂对LiFePO4/石墨电池高温性能的影响   总被引:2,自引:0,他引:2  
研究了二氟二草酸硼酸锂(LiODFB)作为锂盐加入到碳酸丙烯酯(PC)+碳酸乙烯酯(EC)+碳酸甲乙酯(EMC)(质量比为1:1:3)混合溶剂中对LiFePO4/石墨电池高温(60 ℃)循环性能的影响. 用线性扫描伏安法(LSV)测试了电解液的电化学窗口. 通过等离子发射光谱(ICP)和能量散射光谱(EDS)对LiFePO4材料高温条件下在不同电解液中的稳定性进行了研究; 并用扫描电镜(SEM)和电化学交流阻抗谱(EIS)分析了石墨负极表面的固体电解液相界面(SEI)膜的热稳定性. 结果表明: 一方面LiODFB基电解液能抑制LiFePO4材料在高温条件下Fe(II)的溶解, 防止溶解的Fe(II)在石墨上还原, 有效地降低电池阻抗; 另一方面, 在LiODFB基电解液中形成的石墨负极表面SEI膜具有更好的热稳定性, 能显著提高LiFePO4/石墨电池的高温循环性能.  相似文献   

7.
Li_4Ti_5O_(12)纳米片的合成及储锂性能研究   总被引:2,自引:0,他引:2  
以无定形的水合二氧化钛为前驱物,水热法合成了200~400nm大小的Li4Ti5O12纳米片作为锂离子电池负极材料.XRD(X射线衍射)、SEM(扫描电子显微镜)和TEM(透射电镜)分析表征样品的物相结构、表观形貌;循环伏安、充放电循环和电化学交流阻抗技术分别测定该纳米Li4Ti5O12在有机电解液和室温离子液体S114TFSI电解液中的电化学性能.结果表明,该材料具有较高的放电容量和良好的循环性能,有望成为锂二次电池新型负极材料.  相似文献   

8.
以丙酸乙酯(EP)作为碳酸乙烯酯(EC)、碳酸甲乙酯(EMC)和碳酸二甲酯(DMC)的共溶剂,研究其对LiFePO4锂离子电池低温电化学性能的影响.利用循环伏安曲线、交流阻抗图谱和恒电流充放电曲线等方法测试电池电化学性能.结果表明,添加一定量EP,可提高碳酸酯电解液的离子电导率,改善电解液与正极LiFePO4材料和负极石墨材料的相容性,从而提高LiFePO4锂离子电池的低温性能.使用1 mol·L-1LiPF6/(EC:EMC:DMC:EP=1:1:1:3,by mass)电解液的石墨/LiFePO4锂离子电池在10oC(1C)、-10oC(0.2C)、-20oC(0.2C)、-30oC(0.2C)和-40oC(0.2C)下的相对放电容量(以25oC时的放电容量为基准)分别为82.9%、75.6%、59.0%、46.4%和37.6%.  相似文献   

9.
添加剂氟代碳酸乙烯酯对锂离子电池性能的影响   总被引:3,自引:0,他引:3  
在1 mol·L-1 LiPF6/碳酸乙烯酯(EC)+碳酸二甲酯(DMC)+碳酸甲乙酯(EMC)(EC、DMC、EMC体积比为1:1:1)电解液中加入体积比为2%的添加剂氟代碳酸乙烯酯(FEC), 用循环伏安法(CV)、扫描电镜(SEM)、能量散射光谱(EDS)、电化学阻抗谱(EIS)等方法, 研究了FEC 对锂离子电池性能及石墨化中间相碳微球(MCMB)电极/电解液界面性质的影响. 结果表明, 体积比2%FEC的添加可以抑制部分电解液溶剂的分解, 在MCMB电极表面形成一层性能优良的固体电解液相界面(SEI)膜, 降低了电池的阻抗, 明显提高了电池的比容量和循环稳定性.  相似文献   

10.
通过循环伏安(CV)、电化学阻抗谱(EIS)、扫描电子显微镜(SEM)、X射线光电子能谱(XPS)和傅立叶变换红外(FTIR)光谱研究了双乙二酸硼酸锂(LiBOB)基电解液在石墨表面的成膜性及其在常温(25 ℃)和高温(70 ℃)下对石墨循环性能的影响. 结果表明, LiBOB基电解液的成膜电位在1.7 V, 其中BOB-离子还原形成的草酸盐是固体电解质相界面(SEI)膜的有效成分之一. 电化学阻抗谱显示, 膜阻抗在循环过程中呈现减小趋势, 这有利于提高循环稳定性. 在常温和高温条件下, 石墨在该电解液体系中均表现出优于其在LiPF6基电解液体系中的循环性能.  相似文献   

11.
As a high‐capacity anode for lithium‐ion batteries (LIBs), MoS2 suffers from short lifespan that is due in part to its unstable solid electrolyte interphase (SEI). The cycle life of MoS2 can be greatly extended by manipulating the SEI with a fluoroethylene carbonate (FEC) additive. The capacity of MoS2 in the electrolyte with 10 wt % FEC stabilizes at about 770 mAh g?1 for 200 cycles at 1 A g?1, which far surpasses the FEC‐free counterpart (ca. 40 mAh g?1 after 150 cycles). The presence of FEC enables a robust LiF‐rich SEI that can effectively inhibit the continual electrolyte decomposition. A full cell with a LiNi0.5Co0.3Mn0.2O2 cathode also gains improved performance in the FEC‐containing electrolyte. These findings reveal the importance of controlling SEI formation on MoS2 toward promoted lithium storage, opening a new avenue for developing metal sulfides as high‐capacity electrodes for LIBs.  相似文献   

12.
电解液组成对中间相石墨微球电化学性能的影响   总被引:3,自引:0,他引:3  
以2800℃热处理的煤焦油沥青基中间相石墨微球为锂离子二次电池负极材料,考察了中间相石墨微球在不同组成的电解质溶液中的电化学嵌脱锂性能.确定了试样在不同电解液中电极表面生成的SEI膜的化学组成和相对含量,剖析了共溶剂对SEI膜形成反应、膜组成和织构的影响.结果表明,在不同共溶剂的EC基电解液中,电极界面SEI膜形成的电位虽然不同,但SEI膜的化学组成基本相同,负极界面SEI膜的织构是决定电解液与电极材料相容性的关键.  相似文献   

13.
The effect of the fluoroethylene carbonate (FEC) addition in electrolyte on LiFePO4 cathode performance was investigated in low-temperature electrolyte LiPF6/EC/PC/EMC (0.14/0.18/0.68). Cyclic voltammetry, electrochemical impedance spectroscopy, and charge/discharge tests were conducted in this work. In the presence of FEC, the polarization of LiFePO4 electrode decreased both at room and low temperatures. Meanwhile, the exchange current density increased. The rate capability of LiFePO4 electrode was greatly enhanced as well. The morphology of the solid electrolyte interphase (SEI) on LiFePO4 surface was modified with the addition of FEC as confirmed by scanning electron microscopy measurement. A compact film with small impedance was formed on LiFePO4 surface compared to the case of FEC-free. The compositions of the film were analyzed by X-ray photoelectron spectroscopic measurement. The contents of Li x PO y F z , LiF, and the carbonate species generated from solvents decomposition were reduced. The modified SEI promoted the migration of lithium ion through the electrode/electrolyte interphase and enhanced the electrochemical performance of the cathode.  相似文献   

14.
15.
High-energy-density Li metal batteries suffer from a short lifespan under practical conditions, such as limited lithium, high loading cathode, and lean electrolytes, owing to the absence of appropriate solid electrolyte interphase (SEI). Herein, a sustainable SEI was designed rationally by combining fluorinated co-solvents with sustained-release additives for practical challenges. The intrinsic uniformity of SEI and the constant supplements of building blocks of SEI jointly afford to sustainable SEI. Specific spatial distributions and abundant heterogeneous grain boundaries of LiF, LiNxOy, and Li2O effectively regulate uniformity of Li deposition. In a Li metal battery with an ultrathin Li anode (33 μm), a high-loading LiNi0.5Co0.2Mn0.3O2 cathode (4.4 mAh cm−2), and lean electrolytes (6.1 g Ah−1), 83 % of initial capacity retains after 150 cycles. A pouch cell (3.5 Ah) demonstrated a specific energy of 340 Wh kg−1 for 60 cycles with lean electrolytes (2.3 g Ah−1).  相似文献   

16.
Safe and rechargeable lithium metal batteries have been difficult to achieve because of the formation of lithium dendrites. Herein an emerging electrolyte based on a simple solvation strategy is proposed for highly stable lithium metal anodes in both coin and pouch cells. Fluoroethylene carbonate (FEC) and lithium nitrate (LiNO3) were concurrently introduced into an electrolyte, thus altering the solvation sheath of lithium ions, and forming a uniform solid electrolyte interphase (SEI), with an abundance of LiF and LiNxOy on a working lithium metal anode with dendrite‐free lithium deposition. Ultrahigh Coulombic efficiency (99.96 %) and long lifespans (1000 cycles) were achieved when the FEC/LiNO3 electrolyte was applied in working batteries. The solvation chemistry of electrolyte was further explored by molecular dynamics simulations and first‐principles calculations. This work provides insight into understanding the critical role of the solvation of lithium ions in forming the SEI and delivering an effective route to optimize electrolytes for safe lithium metal batteries.  相似文献   

17.
High‐energy‐density Li metal batteries suffer from a short lifespan under practical conditions, such as limited lithium, high loading cathode, and lean electrolytes, owing to the absence of appropriate solid electrolyte interphase (SEI). Herein, a sustainable SEI was designed rationally by combining fluorinated co‐solvents with sustained‐release additives for practical challenges. The intrinsic uniformity of SEI and the constant supplements of building blocks of SEI jointly afford to sustainable SEI. Specific spatial distributions and abundant heterogeneous grain boundaries of LiF, LiNxOy, and Li2O effectively regulate uniformity of Li deposition. In a Li metal battery with an ultrathin Li anode (33 μm), a high‐loading LiNi0.5Co0.2Mn0.3O2 cathode (4.4 mAh cm?2), and lean electrolytes (6.1 g Ah?1), 83 % of initial capacity retains after 150 cycles. A pouch cell (3.5 Ah) demonstrated a specific energy of 340 Wh kg?1 for 60 cycles with lean electrolytes (2.3 g Ah?1).  相似文献   

18.
研究L iPF6、L iC lO4和L iBF43种电解质对L iCoO2材料界面特性的影响.结果表明:化成后的L iCoO2表面存在固态电解质膜(SEI膜);在不同成分的电解液中,L iCoO2表面SEI膜的形成电位、形貌特征以及材料的可逆容量、平均放电电压和电化学反应阻抗不同.  相似文献   

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