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1.
尖晶石LiMn2O4中锂离子嵌入脱出过程的电化学阻抗谱研究   总被引:1,自引:0,他引:1  
庄全超  魏涛  魏国祯  董全峰  孙世刚 《化学学报》2009,67(19):2184-2192
运用电化学阻抗谱(EIS)研究了尖晶石LiMn2O4电极的首次充放电过程. 发现EIS谱高频区域拉长压扁的半圆是由两个半圆相互重叠而成的, 分别归属于与锂离子通过固体电解质相界面膜(SEI膜)的迁移和与尖晶石LiMn2O4材料的电子电导率相关的特征. 通过选取适当的等效电路, 对实验所得的电化学阻抗谱数据进行拟合, 获得尖晶石LiMn2O4电极首次充放电过程中SEI膜电阻、电子电阻和电荷传递电阻等随电极极化电位变化的规律. 根据研究结果提出了嵌锂物理机制模型.  相似文献   

2.
硬碳材料电极首周嵌钠过程的电化学阻抗谱研究   总被引:1,自引:0,他引:1  
运用电化学阻抗谱(EIS)研究了硬碳材料电极嵌钠的过程,发现EIS谱由两个半圆和一条斜线组成,两个半圆可归因于接触阻抗和钠离子通过固体电解质界面膜(SEI膜)扩散的过程和电荷传递的过程,斜线域则反映了钠离子在硬碳材料颗粒内部的固态扩散相关的斜线.通过选取适当的等效电路,对实验结果进行拟合,可以得出硬碳电极首周嵌钠过程中SEI膜电阻、电子电阻等随电极极化电位的变化规律.  相似文献   

3.
锂离子电池的电化学阻抗谱( EIS) 是研究电化学系统最有力的实验方法之一,在过去的20多年中,EIS被广泛应用于锂离子电池研究和生产领域,包括研究电极界面反应机理和容量衰减机制,测定相关电极过程动力学参数和电池的健康状态、荷电状态以及电池的内阻。本文分析了锂离子电池中电极极化过程包含的3个基本物理化学过程——电子输运、离子输运和电化学反应过程,探讨了每一基本物理化学过程包含的步骤及其EIS谱特征,详细论述了与电子输运相关的基本物理化学过程——接触阻抗和感抗产生的机制;介绍了多孔电极理论及其在锂离子电池中的应用,阐述了基于多孔电极理论进行阻抗谱数值模拟的建模原理与方法。综述了石墨、硅、二元3d过渡金属氧化物、LiCoO_2、尖晶石LiMn_2O_4、LiFePO_4、尖晶石Li_4Ti_5O_(12)、过渡金属氟化物材料等电极的典型阻抗谱特征和各时间常数的归属问题。最后讨论了EIS现存的问题及未来的发展方向。  相似文献   

4.
石墨负极电化学扫描循环过程的EIS、Raman光谱和XRD研究   总被引:1,自引:0,他引:1  
运用电化学阻抗谱(EIS)、Raman光谱和XRD研究了石墨负极在1 mol/L LiPF6-EC∶DEC∶DMC电解液中的电化学循环扫描过程. EIS研究结果表明, 在电化学循环扫描4~10周范围内, SEI膜(固体电解质相界面膜)电阻随循环扫描周数增加近似线性增长, 但石墨负极/电解液界面总阻抗由于电荷传递电阻的降低而减小. Raman光谱研究结果表明, 在经历电化学循环扫描后, 活性材料表层发生粉化和无定形化, 石墨化程度降低; 但XRD研究结果显示, 石墨材料的本体结构没有发生变化, 仍然保持着完整的石墨层状结构.  相似文献   

5.
庄全超  杨梓  张蕾  崔艳华 《化学进展》2020,32(6):761-791
锂离子电池的电化学阻抗谱(EIS)是研究电化学系统最有力的实验方法之一,在过去的20多年中,EIS 被广泛应用于锂离子电池研究和生产领域,包括研究电极界面反应机理和容量衰减机制,测定相关电极过程动力学参数和电池的健康状态、荷电状态以及电池的内阻。本文分析了锂离子电池中电极极化过程包含的3 个基本物理化学过程———电子输运、离子输运和电化学反应过程,探讨了每一基本物理化学过程包含的步骤及其EIS 谱特征,详细论述了与电子输运相关的基本物理化学过程———接触阻抗和感抗产生的机制;介绍了多孔电极理论及其在锂离子电池中的应用,阐述了基于多孔电极理论进行阻抗谱数值模拟的建模原理与方法。 综述了石墨、硅、二元3d 过渡金属氧化物、LiCoO2、尖晶石LiMn2O4、LiFePO4、尖晶石Li4Ti5O12、过渡金属氟化物材料等电极的典型阻抗谱特征和各时间常数的归属问题。最后讨论了EIS现存的问题及未来的发展方向。  相似文献   

6.
尖晶石锂锰氧化物电极首次脱锂过程的EIS研究   总被引:8,自引:0,他引:8  
研究了尖晶石锂锰氧化物电极首次脱锂过程中的电化学阻抗特征. 通过选取适当的等效电路拟合实验所得的电化学阻抗谱数据, 获得了首次脱锂过程中固体电解质相界面膜(SEI膜)的电阻、电容以及电荷传递电阻、双电层电容等随电极极化电位的变化规律.  相似文献   

7.
温度对尖晶石LiMn2O4中锂离子嵌脱过程的影响   总被引:1,自引:0,他引:1  
魏涛  庄全超  吴超  崔永丽  方亮  孙世刚 《化学学报》2010,68(15):1481-1486
运用电化学阻抗谱研究了商品化尖晶石LiMn2O4电极在1 mol/L LiPF6-EC(碳酸乙烯酯):DEC(碳酸二乙酯)电解液中―10~30 ℃范围内的阻抗谱特征、固体电解质相界面(SEI)膜阻抗、电子电阻和电荷传递电阻等随温度的变化. 研究结果表明, 尖晶石LiMn2O4电极的阻抗谱特征与温度有关, 随温度的升高, 与活性材料电子电导率相关的半圆和与SEI膜相关的半圆会发生重叠而成为一个半圆. 通过选取适当的等效电路拟合了实验所得的电化学阻抗谱数据, 测得尖晶石LiMn2O4电极在1 mol/L LiPF6-EC:DEC 电解液中, 锂离子迁移通过SEI膜的离子跳跃能垒平均值为15.49 kJ/mol; 电子电导率的热激活化能平均值为24.21 kJ/mol; 嵌入反应活化能平均值为53.07 kJ/mol.  相似文献   

8.
离子液体/凝胶聚合物电解质的制备及其与LiFePO_4的相容性   总被引:1,自引:0,他引:1  
以1-甲基-3-乙基咪唑六氟磷酸盐(EMIPF6)、聚偏氟乙烯-六氟丙烯(P(VDF-HFP))和六氟磷酸锂(LiPF6)为原料,采用溶液浇铸法制备了离子液体/凝胶聚合物电解质(ILGPE).通过循环伏安(CV)、计时电流法、恒流充放电、电化学阻抗法(EIS)研究了该电解质的离子传输特性以及与锂离子电池正极材料LiFePO4的相容性.结果表明,离子液体/凝胶聚合物电解质的室温电导率为1.650×10-3S·cm-1,电化学稳定窗口达到5.0V.在充放电循环过程中,电极表面形成的钝化膜改善了锂离子脱、嵌可逆性和电极/电解质的界面性质.  相似文献   

9.
富锂层状氧化物作为锂离子电池正极材料具有高比容量优势.采用草酸盐共沉淀法制备Li(Li0.22Ni0.17Mn0.61)O2,并用YF3包覆电极.采用X射线衍射(XRD)、扫描电子显微镜(SEM)和X射线能谱分析(EDS)表征材料结构、观察材料形貌.结果表明,材料颗粒尺寸在100~200 nm范围,YF3包覆不会改变材料结构和形貌.电化学恒流充放电测试表明,YF3包覆Li(Li0.22Ni0.17Mn0.61)O2电极的比容量,尤其倍率比容量明显提高.60 mA·g-1电流密度下包覆电极材料30周循环后其比容量保持在220 mAh·g-1以上,1500 mA·g-1电流密度下其比容量仍可达150 mAh·g-1.电化学阻抗谱(EIS)测试结果表明,YF3包覆电极电荷转移电阻和扩散阻抗均明显降低,有利于电化学性能改善.  相似文献   

10.
电化学阻抗谱(EIS)是一种很有用的研究电化学性能的技术.理想的双电层电容器(EDLC)阻抗谱的尼奎斯特图由中高频的45°线和低频的与实轴垂直的直线组成,可以用孔径分布-传输线模型来解释.然而,在研究工作中还发现,在阻抗谱的高频区出现了半圆弧区域,为此,提出的等效模型认为半圆弧可以归因于活性材料之间的接触电阻和接触电容,以及电极与集流体之间的接触电阻与接触电容.还研究了充电过程、活性炭和电解液的电导率、导电添加剂和粘结剂的含量、隔膜、活性物质附载量和极片加压等因素对阻抗谱的影响.其中,充电截止电压、活性炭的电导率、导电添加剂的含量和极片加压对半圆弧部分影响较为显著.  相似文献   

11.
Sodium‐ion batteries (NIBs) are the most promising alternatives to lithium‐ion batteries in the development of renewable energy sources. The advancement of NIBs depends on the exploration of new electrode materials and fundamental understanding of working mechanisms. Herein, via experimental and simulation methods, we develop a mixed polyanionic compound, Na2Fe(C2O4)SO4?H2O, as a cathode for NIBs. Thanks to its rigid three dimensional framework and the combined inductive effects from oxalate and sulfate, it delivered reversible Na insertion/desertion at average discharging voltages of 3.5 and 3.1 V for 500 cycles with Coulombic efficiencies of ca. 99 %. In situ synchrotron X‐ray measurements and DFT calculations demonstrate the Fe2+/Fe3+ redox reactions contribute to electron compensation during Na+ desertion/insertion. The study suggests mixed polyanionic frameworks may provide promising materials for Na ion storage with the merits of low cost and environmental friendliness.  相似文献   

12.
The processes of extraction and insertion of lithium ions in LiCoO(2) cathode are investigated by galvanostatic cycling and electrochemical impedance spectroscopy (EIS) at different potentials during the first charge/discharge cycle and at different temperatures after 10 charge/discharge cycles. The spectra exhibit three semicircles and a slightly inclined line that appear successively as the frequency decreases. An appropriate equivalent circuit is proposed to fit the experimental EIS data. Based on detailed analysis of the change in kinetic parameters obtained from simulating the experimental EIS data as functions of potential and temperature, the high-frequency, the middle-frequency, and the low-frequency semicircles can be attributed to the migration of the lithium ions through the SEI film, the electronic properties of the material and the charge transfer step, respectively. The slightly inclined line arises from the solid state diffusion process. The electrical conductivity of the layered LiCoO(2) changes dramatically at early delithiation as a result of a polaron-to-metal transition. In an electrolyte solution of 1 mol L(-1) LiPF(6)-EC (ethylene carbonate)?:DMC (dimethyl carbonate), the activation energy of the ion jump (which is related to the migration of the lithium ions through the SEI film), the thermal activation energy of the electrical conductivity and the activation energy of the intercalation/deintercalation reaction are 37.7, 39.1 and 69.0 kJ mol(-1), respectively.  相似文献   

13.
锂离子电池的发展主要依赖于电极材料的突破,解决现有电极材料存在的问题和预测新型未知材料是提高锂离子电池性能的关键,而第一性原理计算的出现能够较好的满足这一需求。本文介绍了第一性原理计算在锂离子电池正极材料研究方面的原理和应用,并对该原理在正极材料的平均嵌锂电压计算,嵌/脱锂机理、结构稳定性研究及新材料预测等方面的应用进行了详细论述,并指出了这一理论计算工具在电池材料设计过程中的重要性和局限性。  相似文献   

14.
An aqueous rechargeable lithium battery (ARLB) using an electroactive polymer, polypyrrole (PPy), as a negative electrode; a lithium ion intercalation compound LiCoO2 as a positive electrode; and Li2SO4 aqueous solution as an electrolyte and its working mechanism are described. The charge/discharge process is associated with the doping/un-doping of anions at the negative electrode and intercalation/deintercalation of lithium ions at the positive electrode. The average output voltage of the PPy//LiCoO2 battery is about 0.85 V. This battery exhibits excellent cycling performance. This new technology solves the major problem of poor cycling life of ARLBs and will provide a new strategy to explore advanced energy storage and conversion systems.  相似文献   

15.
镁离子电池正极材料Mg1.2Mn1.8O4的电化学性能研究   总被引:1,自引:0,他引:1  
用髙温固相合成方法,合成了具有尖晶石结构的Mg1.2Mn1.8O4材料,并用X射线衍射(XRD)实验和扫描电镜(SEM)实验对产物进行了研究,利用充放电和交流阻抗实验,研究了Mg1.2Mn1.8O4在非水有机电解液中脱嵌镁离子的性能.通过交流阻抗研究发现,镁离子嵌入的电化学过程为混合控制.  相似文献   

16.
Recently, carboxylate metal‐organic framework (MOF) materials were reported to perform well as anode materials for lithium‐ion batteries (LIBs); however, the presumed lithium storage mechanism of MOFs is controversial. To gain insight into the mechanism of MOFs as anode materials for LIBs, a self‐supported Cu‐TCNQ (TCNQ: 7,7,8,8‐tetracyanoquinodimethane) film was fabricated via an in situ redox routine, and directly used as electrode for LIBs. The first discharge and charge specific capacities of the self‐supported Cu‐TCNQ electrode are 373.4 and 219.4 mAh g?1, respectively. After 500 cycles, the reversible specific capacity of Cu‐TCNQ reaches 280.9 mAh g?1 at a current density of 100 mA g?1. Mutually validated data reveal that the high capacity is ascribed to the multiple‐electron redox conversion of both metal ions and ligands, as well as the reversible insertion and desertion of Li+ ions into the benzene rings of ligands. This work raises the expectation for MOFs as electrode materials of LIBs by utilizing multiple active sites and provides new clues for designing improved electrode materials for LIBs.  相似文献   

17.
An overview is given of intercalation materials for both the negative and the positive electrodes of lithium batteries, including the results of our own research. As well as lithium metal as a negative electrode, we consider insertion materials based on aluminium alloys. In the case of the positive electrode metal-oxides based on manganese, nickel and cobalt are discussed. Received: 27 May 1997 / Accepted: 30 July 1997  相似文献   

18.
Graphite is a redox‐amphoteric intercalation host and thus capable to incorporate various types of cations and anions between its planar graphene sheets to form so‐called donor‐type or acceptor‐type graphite intercalation compounds (GICs) by electrochemical intercalation at specific potentials. While the LiCx/Cx donor‐type redox couple is the major active compound for state‐of‐the‐art negative electrodes in lithium‐ion batteries, acceptor‐type GICs were proposed for positive electrodes in the “dual‐ion” and “dual‐graphite” cell, another type of electrochemical energy storage system. In this contribution, we analyze the electrochemical intercalation of different anions, such as bis(trifluoromethanesulfonyl) imide or hexafluorophosphate, into graphitic carbons by means of in situ X‐ray diffraction (XRD). In general, the characterization of battery electrode materials by in situ XRD is an important technique to study structural and compositional changes upon insertion and de‐insertion processes during charge/discharge cycling. We discuss anion (X) and cation (M+) intercalation/de‐intercalation into graphites on a comparative basis with respect to the Mx+Cn and Cn+Xn stoichiometry, discharge capacity, the intercalant gallery height/gallery expansion and the M–M or X–X in‐plane distances.  相似文献   

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