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1.
超细氧化钌超电容器电极材料的制备   总被引:4,自引:0,他引:4  
本文采用利用氯化钌和碳酸氢氨为反应前驱体,溶胶凝胶方法制备了超细氧化钌材料。将材料在250℃下加热脱水处理后,材料具有良好的表面特性和最大电化学比容量570F·g-1。当脱水温度在300℃以上时,氧化钌材料明显晶化,同时材料比容量迅速降低。本文还测试了不同温度处理后材料的等效串联电阻和法拉第电化学阻抗特性,实验证明250℃条件下处理的电极材料具有最低的等效串联阻抗和良好的功率特性。当制备氧化钌过程中掺加适量碳纳米管形成复合材料时,电极材料的功率特性得到明显的改善。  相似文献   

2.
本文采用溶胶凝聚方法制备了超细氢氧化亚镍电极材料并通过在其中掺加适量碳纳米管的方法大大提高了电极的比容量并有效改善了电极材料的阻抗特性。掺有20%碳纳米管的氢氧化亚镍复合电极材料的单电极比容量可达到320 F·g-1。本文分别采用氢氧化亚镍/碳纳米管复合电极作为正极,活性炭作为负极,6 mol·L-1 KOH作为电解液制备了复合型电化学电容器。采用上述方法制备的复合型电容器工作电压达到1.6 V,电容器质量比容量达到60 F·g-1。复合型电容器能量密度达到20.11 Wh·kg-1,最大功率密度达到8.6 kW·kg-1,兼具高能量特性和优良的大电流放电特性。  相似文献   

3.
本文综述了超级电容器电极材料碳纳米管/石墨烯复合结构的制备方法,以及由该结构和赝电容活性物质形成的三元复合体系的电化学电容行为研究进展,并提出合理设计的碳纳米管和石墨烯复合结构可以有效发挥其高电导率、高比表面积和合理孔隙结构的优势,实现活性物质的高密度负载,从而获得具有高容量、良好倍率特性和长寿命的电化学超级电容器电极材料。  相似文献   

4.
本文采用超声波技术合成了水合氧化钉/多壁碳纳米管纳米复合材料(Ru-MWNTs)前驱物,在150℃下热处理15 h后得到Ru-MWNTs.采用XRD及TEM对纳米复合材料进行表征,结果表明,水合氧化钌以无定型态比较均匀地沉积在MWNTs上.在1.0 mol·L-1H2SO4电解液中对Ru-MWNTs复合电极进行了电化学测试,循环伏安结果表明纳米复合物具有良好的电容性能,其比容量为100 F·g-1,是MWNTs的6倍(MWNTs的比容量为15.5 F·g-1);本文还采用交流阻抗方法来分析频率与电容的关系,比较分析了MWNTs和复合材料的孔结构,表明在MWNTs中复合少量的水合氧化钌可以提高电极材料的充、放电速度.  相似文献   

5.
本文采用超声波技术合成了水合氧化钌/多壁碳纳米管纳米复合材料(Ru-MWNTs)前驱物,在150 ℃下热处理15 h后得到Ru-MWNTs。采用XRD及TEM对纳米复合材料进行表征,结果表明,水合氧化钌以无定型态比较均匀地沉积在MWNTs上。在1.0 mol·L-1 H2SO4电解液中对Ru-MWNTs复合电极进行了电化学测试,循环伏安结果表明纳米复合物具有良好的电容性能,其比容量为100 F·g-1,是MWNTs的6倍(MWNTs的比容量为15.5 F·g-1);本文还采用交流阻抗方法来分析频率与电容的关系,比较分析了MWNTs和复合材料的孔结构,表明在MWNTs中复合少量的水合氧化钌可以提高电极材料的充、放电速度。  相似文献   

6.
在玻碳电极上成功制备了多壁碳纳米管修饰电极(MWCNTs/GCE),优化了该修饰电极的制备条件.研究了联吡啶钌和盐酸氯丙嗪在该修饰电极上的电化学行为和电化学发光行为,建立了电化学发光法测定尿液中盐酸氯丙嗪的分析方法.结果表明,联吡啶钌-氯丙嗪体系在MWCNTs/GCE上表现出很好的电化学活性和电致化学发光响应,多壁碳纳米管不但增大了玻碳电极的比表面积而且加快了联吡啶钌在电极表面的电化学氧化,对联吡啶钌的电化学发光强度具有明显的增敏作用,同时盐酸氯丙嗪对联吡啶钌在该修饰电极上的电致化学发光具有很强的增敏作用.在0.1 mol/L的磷酸盐(pH 7.5)缓冲溶液中,盐酸氯丙嗪在该修饰电极上的检出限(S/N=3)为6.0×10-7 mol/L,在1.0×10-6 ~4.0×10-4 mol/L范围内浓度与相对发光强度呈线性关系(r=0.995 2).连续测定6.0×10-5 mol/L的盐酸氯丙嗪溶液13次,发光强度的RSD值为2.50%,表明该修饰电极具有较好的重复性.该方法已经成功地应用于尿样的检测.  相似文献   

7.
化学氧化法制备聚苯胺/多壁碳纳米管复合材料(PANI/MWCNT),扫描电镜(SEM)、XRD及IR表征样品结构及形貌,电化学方法测定复合电极循环伏安曲线、恒流充放电曲线及电极交流阻抗.结果表明,PANI/MWCNT电极在1mol/L的Li2SO4溶液中具有较好电容性能,在电流密度为5mA/cm2时,比电容为412F/g.PANI/MWCNT电极较PANI电极有更好的大电流放电能力,50mA/cm2下复合电极的比电容仍达318F/g,为5mA/cm2时该电极比电容的77.2%,而PANI电极的比电容仅为其5mA/cm2时的56.2%.交流阻抗证明碳纳米管降低复合电极的电阻,显著提高大电流放电能力.  相似文献   

8.
氧化镍/碳纳米管复合型超级电容器的研制   总被引:9,自引:0,他引:9       下载免费PDF全文
通过电化学阴极还原的方法制备了氧化镍电极材料。经250℃脱水处理后氧化镍材料表现出法拉第赝电容的电化学特性且材料单电极比容量达到210F·g-1,优于普通活性炭材料。本文采用催化裂解法制备了碳纳米管电极材料,比容量达到了42F·g-1。提出了采用电化学法沉积氧化镍和碳纳米管分别作为电容器正负极的新工艺,该工艺制备的复合型超级电容器的工作电位达到了1.6V,且具有良好的大电流放电特性。实验还表明该型氧化镍超级电容器具有极低的自放电率。  相似文献   

9.
结合DNA酶优异的氧化还原催化特性和碳纳米管的电化学特性, 制备了单壁碳纳米管-DNA酶复合材料, 并通过壳聚糖将其固定到玻碳电极表面构建了电化学生物传感界面. 研究了单壁碳纳米管-DNA酶复合结构的氧化还原反应催化特性, 并以此为传感平台构建了葡萄糖氧化酶电化学生物传感器. 结果表明, 单壁碳纳米管-DNA酶复合材料修饰的电极对过氧化氢的响应具有较宽的线性范围(5×10-6~1×10-2 mol/L)和良好的检测灵敏度(检出限为1×10-6 mol/L). 采用制备的葡萄糖氧化酶传感器实现了对葡萄糖的快速灵敏检测.  相似文献   

10.
通过真空抽滤的方法制备碳纳米管纸,并对其进行循环伏安电化学氧化处理.以该电化学氧化处理的碳纳米管(CV-CNT)纸为基体,采用电化学聚合沉积聚苯胺(PANI),随后吸附石墨烯(GR),制备具有三明治夹心结构的碳纳米管/聚苯胺/石墨烯(CV-CNT/PANI/GR)复合纳米碳纸.该结构外层为GR,内层由PANI包裹的CNT形成网络骨架,充分发挥三者各自优势构建柔性电极材料.用场发射扫描电镜(FE-SEM)、透射电子显微镜(TEM)、拉曼光谱对其形貌与结构进行表征,并测试其电化学性能.研究发现:PANI呈纳米晶须状,并均匀包裹在CV-CNT表面;该复合碳纸具有良好的电容特性、大电流充放电特性以及良好的循环稳定性能.电流密度为0.5A·g-1时,比电容可达415F·g-1;20A·g-1时仍能保持106F·g-1的比电容.由于GR的保护作用,1000次循环之后较CV-CNT/PANI保持更高的有效比电容.该CV-CNT/PANI/GR复合碳纸展现出在高性能超级电容器柔性电极材料的潜在应用价值.  相似文献   

11.
A kind of ruthenium oxide with smaller particles and higher porosity was prepared by a sol-gel process with RuCl3·xH2O and NaHCO3 solution. Several details concerning this new material, including crystal structure,particle size as functions of the temperature, and electrochemical properties were also reported. The optimal annealing temperature was 210 ℃ and the powder annealed at this temperature had a rate capacitance of 541 F/g. In addition, the rate capacitance of the composite electrode reached 802 F/g after 10% carbon black was added, much higher than any previously reported value. High energy density supercapacitors were built with the newly discovered electrode material. Energy densities as high as 67 J/g were obtained based on the RuO2 ·xH2O alone. By introducing the highly porous carbon black into the electrode, energy densities great than 100 J/g could be achieved. The power density of the capacitor was enhanced significantly.  相似文献   

12.
Composites based on aligned carbon nanotubes and polyaniline are prepared via the electrochemical polycondensation of aniline in a sulf uric acid solution. The structure of the composites and the character of interaction of polyaniline and the surface of carbon nanotubes are studied by scanning and transmission electron microscopy, X-ray diffraction, and IR and X-ra y photoelectron spectroscopy. It is shown that in the composites, electron density is transferred from the carbon nanotube to the polyaniline film. The occurrence of polyaniline on the surface of nanotubes increases the mean current in cyclic voltammograms of the composite material and leads to a marked increase in the calculated specific capacity of electrodes formed on its basis.  相似文献   

13.
碳纳米管用作超级电容器电极材料   总被引:3,自引:0,他引:3  
碳纳米管由于具有化学稳定性好、比表面积大、导电性好和密度小等优点,是很有前景的超级电容器电极材料。本文介绍了碳纳米管用作超级电容器电极材料的研究现状,总结了单纯碳纳米管电极材料和碳纳米管复合物电极材料的特点与性能,并探讨了今后碳纳米管电极材料的发展方向。  相似文献   

14.
通过Stille反应合成了3',4'-亚乙基二氧-2,2':5',2"-三噻吩(TET),并以其作为单体,采用化学氧化原位聚合方法在碳纳米管(CNT)的表面包覆新型聚(3',4'-亚乙基二氧.2,2':5',2"-三噻吩)(FTET),制备了PTET-CNT纳米复合材料.通过TEM、SEM和IR对其进行了表征,并利用循环伏安、交流阻抗、恒电流充放电等电化学测试方法,比较研究了复合材料以及碳纳米管在0.1 mol/L四乙基四氟硼酸铵(Et_4NPF_4)的乙腈溶液中的电化学行为.实验结果表明,在电流密度为3 mA/cm~2时,PTET-CNT复合材料的比电容为86 F/g,比原碳纳米管比电容20 F/g提高了3.3倍.基于这种复合材料的电容器的能量密度达到2.02 Wh/kg.  相似文献   

15.
Electrochemical impedance spectroscopy was conducted on a series of hydrous ruthenium oxides, RuO(2).xH(2)O, (x = 0.5, 0.3, 0) and a layered ruthenic acid hydrate (H(0.2)RuO(2.1).nH(2)O) in order to evaluate their protonic and electronic conduction. The capacitor response frequency was observed at lower frequency for RuO(2).xH(2)O with higher water content, which was suggested to be due to electrolyte exhaustion within the film and/or utilization of hydrated interparticle micropores that have high ionic resistance. Analysis of the impedance data indicated that the charge-transfer resistance through the film is not significantly affected by the water content in RuO(2).xH(2)O, and the capacitor frequency response is dominated by the protonic conduction. The capacitor response frequency of layered H(0.2)RuO(2.1).nH(2)O was comparable to RuO(2).0.5H(2)O. The high specific capacitance at low frequency for layered H(0.2)RuO(2.1).nH(2)O is attributed to the utilization of the expandable hydrous interlayer, which accounts for the ionic conduction. The present results demonstrate the importance of hydrous regions (either interparticle or interlayer) to allow appreciable protonic conduction for high energy and high power electrochemical capacitors.  相似文献   

16.
用化学共沉淀法和物理方法制得Ni和Ru的氢氧化物共沉淀物,经热处理得到NiO/RuO2复合氧化物. XRD分析表明, RuO2被大量的NiO颗粒所包覆.电化学测试表明, NiO电极材料中引入部分RuO2可以提高比能量和比电容,拓宽工作电位窗一倍以上.掺入10% RuO2的NiO电极比能量达14.2 W•h•kg-1,比电容达210 F•g-1,而NiO电极比能量和比电容只有2.6 W•h•kg-1和118 F•g-1. 200周循环后,化学复合RuO2电极比电容保持在95%以上,物理复合电极仅保持在79%左右.  相似文献   

17.
A novel type of composite electrode based on hydrous manganese oxide and a single-walled carbon nanotube has been prepared and used in electrochemical capacitors. Cyclic voltammetry, galvanostatic charging/discharging tests and electrochemical impedance measurements were applied to investigate the performance of the composite electrodes with different ratios of hydrous manganese oxide and single-walled carbon nanotube. For comparison, the performance of pure hydrous manganese oxide and pure carbon nanotubes was also studied. In this way, the composite electrode with a 6:4 ratio of hydrous manganese oxide to carbon nanotube was found to be the most promising active material for an electrochemical capacitor, which shows both good capacitance and power characteristics.  相似文献   

18.
氧化钌/活性炭超电容器复合电极的电化学行为   总被引:15,自引:4,他引:15  
电化学超电容器作为一种新一代储能系统具有广泛的应用领域. 直流充放电、循环伏安以及交流阻抗等实验显示了本文制备的活性碳材料以及复合电极材料具有良好的电化学性能.活性碳材料的质量比容量为172 F•g-1,采用无定形RuO2与上述活性碳复合制成的新型电极材料具有359 F•g-1以上的比容量和良好的功率特性,并对上述材料的双电层电容和法拉第准电容等电化学特性进行了详细的讨论.  相似文献   

19.
《Electroanalysis》2004,16(17):1451-1458
A new carbon electrode material, obtained by mixing single wall carbon nanotubes (SWNTs) with a mineral oil binder is studied. Carbon nanotube pastes show the special properties of carbon nanotubes combined with the various advantages of composite electrodes such as a very low capacitance (background current) and the possibility of an easy preparation, modification and renewal. A better knowledge of the characteristics of electrode reactions at carbon nanotube paste (CNTP) electrodes was obtained studying the electron transfer rates of various redox couples under different pretreatment conditions. A critical comparison with carbon paste (CP), platinum (Pt) and glassy carbon (GC) electrodes was also carried out. Capacitance and resistance values were also calculated for all electrodes investigated. Both untreated and treated CNTP electrodes showed a low resistance while the capacitance was markedly reduced with CNTP electrodes previously treated with concentrated nitric acid. An electrochemical pretreatment on CNTP electrodes was developed which showed an excellent result towards two‐electron quinonic structure species. After this treatment the heterogeneous standard rate constants for p‐methylaminophenol sulfate (MAP) and dopamine resulted to be significantly higher (2.1×10?2 cm/s and 2.0×10?2 cm/s, respectively) than those obtained with the other electrodes studied. Reproducibility, stability and storage characteristics of CNTP electrodes were also reported.  相似文献   

20.
石墨烯/碳纳米管复合材料具有石墨烯和碳纳米管的共同特性,它弥补了石墨烯不连续和碳纳米管网存在间隙这两方面缺点。 本文探讨了石墨烯/碳纳米管复合薄膜的制备新进展,阐述了利用自组装合成、非原位合成以及非化学合成等方法制备厚度薄、强度高和比电容高等特点的石墨烯/碳纳米管复合薄膜的方法,对石墨烯/碳纳米管复合薄膜在传感器、锂电池和超级电容器等方面的应用前景进行了展望。  相似文献   

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