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1.
锂离子混合型电容器兼有锂离子电池和超级电容器的优点,在电化学储能领域具有广泛的应用前景. 但其产业化仍存在一系列的基础及工艺方面的问题,具体包括器件结构设计、电极材料筛选、预嵌锂工艺和电解液与电极的界面等. 本文结合作者课题组的研究工作介绍了近年来高能量密度的锂离子混合型电容器的研究进展,内容涉及锂离子电容器正/负极材料的筛选、预嵌锂工艺的优化、内并联结构的锂离子电池型超级电容器复合正极组成材料的调控、隔膜的选择、电解液的组成、以及器件的高/低温性能,分析了锂离子电容器的容量衰减机制,探讨了锂离子电池型超级电容器的储能机制,提出了未来对高能量密度的锂离子混合型电容器研究的展望.  相似文献   

2.
塑料化薄膜锂离子电池的制造技术   总被引:8,自引:0,他引:8  
通过比较不同聚合物骨架材料与增塑剂所制备的聚合物膜的性能 ,优选出合适的基质骨架材料和增塑剂 .在此基础上 ,探索了塑料化聚合物薄膜电极的工业化制造方法 ,优化了聚合物电解质隔膜与正负极极片的配比 ,探讨塑料化薄膜电极的复合方式 ,并对所制备的塑料化薄膜锂离子电池电性能进行了考察 ,结果表明 :薄膜塑料锂离子电池具备与液态锂离子电池相近的电化学性能 .  相似文献   

3.
锂离子混合电容器由于兼备锂离子电池和超级电容器的优势,即较高的能量密度和功率密度,而成为当前能量存储体系的研究热点。本工作合成了具有三维花状微纳结构的正交相五氧化二铌(T-Nb_2O_5),并将其与活性炭(AC)相匹配,设计出一种新型的T-Nb_2O_5/AC锂离子混合电容器。循环伏安和恒电流充放电的测试结果表明该锂离子混合电容器具有较好的电化学性能,如在碳酸酯类的有机电解液中,工作电压可达到3.0 V;在100 m A·g~(-1)的电流密度下,电容器的比能量和比功率密度可达到53.79 Wh·kg~(-1)和294 W·kg~(-1);在200 m A·g~(-1)的电流密度下,经过1000次充放电循环后,该电容器的比能量保持率为73%。由此可见,本工作开发的T-Nb_2O_5/AC锂离子混合电容器将在高功率的储能设备中有很好地应用前景。  相似文献   

4.
采用中性Li2SO4水溶液代替H2SO4和KOH作为电解液制备了活性炭(AC)基对称型超级电容器,使水系超级电容器的工作电压由1.0V提高到了1.6V.采用循环伏安和充放电测试研究了电容器的稳定电化学窗口.电化学充放电测试表明电容器在0.25A.g-1电流密度下单电极比容量可达129F.g-1,在功率密度为160W.kg-1时能量密度达到10Wh.kg-1(以正负极活性物质的总质量计).1.6V恒压充电1h后电容器漏电流为0.22mA.超级电容器的库仑效率接近100%,充放电循环5000次后容量仍可保持在92%以上.研究了电解液的浓度对电容器电化学性能的影响,发现随着Li2SO4浓度的增大电容器的电荷转移电阻显著减小,大电流充放电性能提高.活性炭基Li2SO4水系电解液超级电容器具有工作电压高、能量密度高和对环境友好等优点,因此有很好的产业化前景.  相似文献   

5.
锂离子电容电池兼具锂离子电池和超级电容器的优势,凭借高能量密度、高功率密度、长循环寿命和快速充放电等优势成为具有前景的新型储能系统。然而,电池型电极和电容型电极之间的动力学不平衡、能量密度不太理想和循环稳定性较差等关键问题仍然存在,若要有效解决该问题需要在该领域开发出新型正负极电极材料。因此,本文详细介绍了锂离子电容电池正负极材料(例如金属氧化物、碳材料、硫化物等)的研究进展以及技术路线,并针对目前存在的问题进行了分析,同时对电极材料未来的研究方向进行了展望,以及对其他化学电源的研究提供了新思路和手段。  相似文献   

6.
开发高电压正极材料是发展高能量密度锂离子电池的重要途径之一。常规电解液在高电压下容易与正极材料表面发生副反应,影响高电压正极材料性能的发挥,因此,高电压电解液引起了人们广泛的关注。本文主要从新型溶剂体系和常规碳酸酯溶剂体系两方面对锂离子电池高电压电解液进行综述与评价,提出了现有电解液的不足及面临的问题。从电解液溶剂分子设计理论入手,分析了砜类溶剂、腈基溶剂和离子液体等新型溶剂作为高压电解液溶剂的优缺点,同时探讨了不同种类添加剂在常规碳酸酯溶剂体系中的作用机理。此外,本文还介绍了理论计算方法在锂离子电池高电压电解液研究中的应用,并对其在设计新型高电压电解液中的应用前景进行了展望。  相似文献   

7.
邱玉凤  江家发 《化学教育》2011,32(8):1-3,19
锂离子电池又称"摇椅电池",是一种新型高效绿色二次电池,其原理为电池中锂离子在正负极间来回脱出和嵌入,这与普通二次电池不同.其基本构成材料为正极材料、负极材料、电解质及隔膜,各种材料的性能直接影响锂离子电池的性能.  相似文献   

8.
南彩云  张宇 《化学通报》2018,81(4):344-348
由于材料的电化学性能与其尺寸、形貌和结构密切相关,本文围绕乙二醇体系制备LiFePO_4纳米晶展开了材料的尺寸和形貌调控合成探索,并对材料进行了锂电池性能表征。改变体系的反应物浓度,LiFePO_4纳米晶的尺寸明显发生变化,当体系中FeSO_4的浓度为0.15mol/L时,得到的LiFePO_4纳米晶尺寸最小,其锂离子电池的容量稍高于其他尺寸的LiFePO_4纳米晶。葡萄糖的添加量对LiFePO_4纳米晶的形貌会产生影响,但对锂离子电池性能影响不大。  相似文献   

9.
商用锂离子电池发展至今已有20年,为了满足不同方面的社会需求,人们迫切需要新型锂离子电池电极材料.本文首先简要介绍了锂离子电池的相关知识,随后对多种新型锂离子电池正负极材料的制备、改进方法及电化学性能做了详细介绍,最后对各种电极材料的优缺点进行了简要的总结.本文还对锂离子电池在未来的应用进行了展望,以期待锂离子电池更好...  相似文献   

10.
Na~+对Li/改性石墨电池循环性能的影响研究   总被引:1,自引:0,他引:1  
分别用普通 4A和锂化 4A分子筛两种方法去除锂离子电池非水电解质体系 (EC/DEC/LiClO4 )中的微量水 ,引进不同浓度的Na+ 离子 .用原子吸收光谱法测定两种情况下体系中的Na+及Li+ 浓度 ;然后于室温下恒电流充放电 ,测定利用上述两种除水方法所得电解液配制的Li/石墨电池的循环性能 .结果表明 ,小电流下充放电 ,高Na+ 浓度能对锂离子电池循环性能构成严重破坏 ;随着电流的增大 ,电池对Na+ 的敏感性降低 .根据对循环后的电极片进行电子扫描实验结果 ,提出了Na+ 对锂离子电池循环性能影响机理的电化学解释 .  相似文献   

11.
超级电容电池   总被引:4,自引:0,他引:4  
廖川平 《化学通报》2014,77(9):865-871
本文比较了超级电容器、锂离子电池和超级电容电池的结构、原理、研究现状和发展前景。超级电容电池的正极具有超级电容器电极的结构和双电层储能机制,负极具有类似锂离子电池负极的结构和快速电化学储能机制。超级电容器和锂离子电池的发展空间都很有限,而作为两者结合的产物的超级电容电池可兼具高比功率、高比能量、高放电电压和长循环寿命的优点,是未来储能电池的发展方向之一,但还面临缺乏具有高分解电压的电解液和高充电电压下电解液中离子枯竭的问题。  相似文献   

12.
Li-ion hybrid capacitors (LIHCs), composing of a lithium-ion battery (LIB) type anode and a supercapacitor (SC) type cathode, gained worldwide popularity due to harmonious integrating the virtues of high energy density of LIBs with high power density of SCs. Herein, nanoflakes composed microflower-like Co-Ni oxide (CoNiO) was successfully synthesized by a simple co-precipitation method. The atomic ratio of as-synthesized CoNiO is determined to be 1:3 through XRD and XPS analytical method. As a typical battery-type material, CoNiO and capacitor-type activated polyanilinederived carbon (APDC) were used to assemble LIHCs as the anode and cathode materials, respectively. As a result, when an optimized mass ratio of CoNiO and APDC was 1:2, CoNiO//APDC LIHC could deliver a maximum energy density of 143 Wh kg-1 at a working voltage of 1-4 V. It is worth mentioning that the LIHC also exhibits excellent cycle stability with the capacitance retention of 78.2% after 15,000 cycles at a current density of 0.5 A g-1.  相似文献   

13.
研究了在不同电流密度下进行长时间极化后Pb-Ag(0.8%(质量分数,w))平板阳极的阳极电位、腐蚀率及阳极钝化膜.同时,也研究了该阳极在ZnSO4-MnSO4-H2SO4电解液中的阴极电流效率和阴极锌品质.阳极钝化膜的表面形貌用扫描电镜(SEM)进行观测.实验结果表明,不管电解液中是否存在Mn2+,电流密度对阳极和阴极的电化学行为都产生了显著的影响.随着电流密度的升高,阳极电位、腐蚀率、阴极电流效率和阳极泥生成量也增加,而阴极锌中的Pb含量则减少.当电流密度从500A·m-2降到200A·m-2时,阳极在ZnSO4-MnSO4-H2SO4电解液中的稳定电位和腐蚀率分别减少64mV和40%.此外,在比较低的电流密度下,阳极电位更容易稳定,阳极表面生成的钝化膜更加致密并与基体结合牢固,这些都有利于降低阳极腐蚀率.为了降低阳极电位、减小阳极腐蚀率及阳极泥生成量并提高阴极电流效率和阳极锌品质,锌电积的理想工作条件是较低的阳极电流密度和较高的阴极电流密度.  相似文献   

14.
Scalable, highly stable supercapacitor electrodes were developed from the mixture of a tea factory waste based activated carbon (AC) and a low-cost electrochemical exfoliated graphene (EEG). The hybrid electrodes showed notably enhanced stability at high current densities. The AC sample was prepared by chemical method and exposed to a further heat treatment to enhance electrochemical performance. Graphene used in the preparation of hybrid electrodes was obtained by direct electrochemical exfoliation of graphite in an aqueous solution. Detailed structural characterization of AC, EEG, and hybrid material was performed. The original electrochemical performances of AC and EEG were examined in button size cells using an aqueous electrolyte. The hybrid materials were prepared by mixing AC and EEG at different mass percentage ratios, and tested as supercapacitor electrodes under the same conditions. Capacitance stability of the electrodes developed from AC:EEG (70:30) at high currents increased by about 45% compared to the original AC. The highest gravimetric capacitance (110 F/g) was achieved by this hybrid electrode. The hybrid electrode was scaled up to the pouch size and tested using an organic electrolyte. The organic electrolyte was preferred for scaling up due to its wider voltage ranges. The pouch cell had a gravimetric capacitance of 85 F/g and exhibited as good performance as the coin cell in the organic electrolyte.  相似文献   

15.
As a promising energy-storage device,the hybrid lithium-ion capacitor coupling with both a large energy density battery-type anode and a high power density capacitor-type cathode is attracting great attention.For the sake of improving the energy density of hybrid lithium-ion capacitor,the free-standing anodes with good electrochemical performance are essential.Herein,we design an effective electrospinning strategy to prepare free-standing MnS/Co_4S_3/Ni_3S_2/Ni/C-nanofibers(TMSs/Ni/C-NFs)film and firstly use it as a binder-free anode for hybrid lithium-ion capacitor.We find that the carbon nanofibers can availably prevent MnS/Co_4S_3/Ni_3S_2/Ni nanoparticles from aggregation as well as significantly improve the electrochemical performance.Therefore,the binder-free TMSs/Ni/C-NFs membrane displays an ultrahigh reversible capacity of 1246.9 m Ah g~(-1)at 100 m A g~(-1),excellent rate capability(398 mAh g~(-1) at2000 mA g~(-1)),and long-term cyclic endurance.Besides,we further assemble the hybrid lithium-ion capacitor,which exhibits a high energy density of 182.0 Wh kg~(-1)at 121.1 W kg~(-1)(19.0 Wh kg~(-1) at 3512.5 W kg~(-1))and remarkable cycle life.  相似文献   

16.
毕成良  郭爱红  唐雪娇  高敏  张宝贵 《化学学报》2008,66(12):1441-1445
选取氯代二异丙基膦(C6H14PCl)为原料, 利用电化学氟化方法, 得到全氟烷基膦酸[(C3F7)2PF3], (C3F7)2PF3与氟化锂(LiF)反应得到全氟烷基膦酸锂(Li[(C3F7)2PF4]), 将其溶于碳酸乙烯酯(EC)和碳酸二甲酯(DMC)质量比为1∶1的混合溶剂中得到电解液, 考察电解液的电导率、抗水性及氧化分解电位. 以LiCoO2为正极, 锂片为负极组装两电极模拟电池体系, 测试得到电池的放电平台为3.7 V; 电池的首次放电比容量为107 mA•h•g-1; 当循环放电40次后, 容量衰减较快, 电池循环50周后, 效率仍保持102%. 交流阻抗图谱表明电解液放电时的阻抗约为140 Ω. 研究结果表明, 全氟烷基膦酸锂有望成为新型锂离子二次电池的电解质盐.  相似文献   

17.
A new super‐concentrated aqueous electrolyte is proposed by introducing a second lithium salt. The resultant ultra‐high concentration of 28 m led to more effective formation of a protective interphase on the anode along with further suppression of water activities at both anode and cathode surfaces. The improved electrochemical stability allows the use of TiO2 as the anode material, and a 2.5 V aqueous Li‐ion cell based on LiMn2O4 and carbon‐coated TiO2 delivered the unprecedented energy density of 100 Wh kg?1 for rechargeable aqueous Li‐ion cells, along with excellent cycling stability and high coulombic efficiency. It has been demonstrated that the introduction of a second salts into the “water‐in‐salt” electrolyte further pushed the energy densities of aqueous Li‐ion cells closer to those of the state‐of‐the‐art Li‐ion batteries.  相似文献   

18.
《中国化学快报》2020,31(9):2239-2244
Lithium-ion hybrid capacitors (LIHCs) is a promising electrochemical energy storage devices which combines the advantages of lithium-ion batteries and capacitors. Herein, we developed a facile multistep pyrolysis method, prepared an amorphous structure and a high-level N-doping carbon nanotubes (NCNTs), and by removing the Co catalyst, opening the port of NCNTs, and using NCNTs as anode material. It is shows good performance due to the electrolyte ions enter into the electrode materials and facilitate the charge transfer. Furthermore, we employ the porous carbon material (APDC) as the cathode to couple with anodes of NCNTs, building a LIHCs, it shows a high energy density of 173 Wh/kg at 200 W/kg and still retains 53 Wh/kg at a high power density of 10 kW/kg within the voltage window of 0–4.0 V, as well as outstanding cyclic life keep 80% capacity after 5000 cycles. This work provides an opportunity for the preparation of NCNTs, that is as a promising high-performance anode for LIHCs.  相似文献   

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