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1.
对高性能超级电容器不断增长的需求促进了电极隔膜和电极材料的快速发展。静电纺丝法制备的纳米纤维具有较高的孔隙率、较好电化学活性、较大的表面积以及良好的结构稳定性等优点,已被广泛应用于超级电容器的隔膜和电极材料。本文简要综述了近年来电纺纳米纤维在超级电容器用隔膜和电极材料的研究进展;着重讨论了通过静电纺丝和其他后处理方法制备的碳基纳米纤维、碳基复合纳米纤维、导电聚合物基复合纳米纤维和金属氧化物纳米纤维等用于超级电容器的电极材料。研究表明,多孔结构的构建、活化处理以及杂原子掺杂可以提高碳纳米纤维的比表面积、电化学活性、润湿性和石墨化程度,从而增强其电化学性能。此外,通过共混、化学沉积和电化学沉积等方法,将碳纳米纤维与金属氧化物、导电聚合物结合,可以改善其电容、倍率性能和循环稳定性。最后,提出上述研究中存在的问题,并对未来静电纺丝纳米纤维材料在超级电容器的发展前景进行了展望。  相似文献   

2.
静电纺丝纳米纤维具有比表面积大、孔隙率高及密度低等优势,是电化学储能材料的理想候选者之一.本文综述了近年来静电纺丝碳纳米纤维、金属氧化物/硫化物/氮化物、导电聚合物及其复合材料在超级电容器领域的研究及应用进展,探讨了材料组成、结构与电化学电容性能之间的关系,并对静电纺丝纳米纤维基电极材料的发展前景进行了展望.这将为新型高性能超级电容器电极材料的结构设计与可控制备提供新思路.  相似文献   

3.
在静电纺丝纳米纤维中加入纳米填料——石墨烯(G),有助于提高纳米纤维的性能,扩展其应用领域。本文综述了近年来国内外静电纺丝制备石墨烯基复合纳米纤维的研究现状,重点介绍了石墨烯与聚酰胺(PA)、聚甲基丙烯酸甲酯(PMMA)、聚丙烯腈(PAN)、二氧化钛(TiO2)等复合纳米纤维制备的研究进展及其在光催化剂、超级电容器、染料敏化太阳能电池(DSSCs)、传感器、生物医学等方面的应用潜力,展望了石墨烯基复合纳米纤维的发展前景。  相似文献   

4.
夏文  李政  徐银莉  庄旭品  贾士儒  张健飞 《化学进展》2016,28(11):1682-1688
超级电容器由于能提供比电池更高的功率密度,比传统电容器更高的能量密度而备受关注。但目前其应用仍存在能量密度低的问题。碳材料、金属氧化物和导电聚合物是常见的三种超级电容器电极材料,而其中不同形式碳材料是电容器中研究和应用最广泛的电极材料。细菌纤维素是由细菌分泌产生的具有一定纳米级孔径分布的多孔生物材料,具有高强度和模量、高孔隙率、极好的尺寸和热稳定性的特性。以细菌纤维素为原料制备电极材料是近年来超级电容器领域的热点研究方向之一。本文以细菌纤维素基电极材料的种类、制备方法和性能为线索,综述了国内外细菌纤维素基超级电容器电极材料的研究进展,并归纳总结了电极材料最优的形态和制备方法,进一步对该类电极材料的发展趋势进行了展望。  相似文献   

5.
碳纳米管(CNTs)作为增强材料与聚合物复合制成纳米纤维,有助于提高纳米纤维性能,扩展其应用领域。本文综述了近年来国内外静电纺丝制备CNTs基复合纳米纤维的研究现状,重点介绍了CNTs/PAN复合纳米纤维、CNTs/PANI/PEO复合纳米纤维、CNTs/PVA复合纳米纤维、CNTs/PA复合纳米纤维、CNTs/TiO2复合纳米纤维的研究进展及其在纳米传感器、电磁干扰、超级电容器、染料敏化太阳能电池(DSSCs)、组织工程支架、药物控制释放等方面的应用潜力,展望了CNTs基复合纳米纤维的发展前景。  相似文献   

6.
功率密度高、倍率性能优异和循环性能好等特性使得超级电容器在储能领域显示了巨大的应用前景。尽管二维层状材料剥离形成的纳米片层不仅可为电化学反应提供独特的纳米级反应空间,而且由其组装的层状纳米电极材料具有化学和结构上的氧化还原可逆性及纳米片层水平方向上离子或电子快速传输通道。但是,纳米片层组装电极材料在纳米片层垂直方向上离子或电子传输存在障碍,对于超级电容器功率密度和能量密度的提高及实现快速能量储存非常不利。因此,如何通过改善离子或电子的快速传输,实现超级电容器大功率密度下的高能量密度是超级电容器电极材料发展的方向之一。本文主要综述了二维层状材料剥离成纳米片层,纳米片层孔洞化策略及组装孔洞化材料在超级电容器电极材料中的应用。纳米层孔洞化技术是改善层状电极材料在纳米片层垂直方向离子或电子传输的有效手段,为实现高比电容下的高倍率性能超级电容器电极材料制备提供了方法学。最后,对开发大功率密度下的高能量密度超级电容器电极材料提出了展望。  相似文献   

7.
聚β-羟基丁酸酯(PHB)作为一种天然的可生物降解材料,因其良好的生物相容性,广泛应用于生物医用领域.而静电纺丝技术是获得纳米纤维最理想的方法之一,目前已成功制备出多种不同类型的纳米纤维,尤其在制备复合纳米纤维方面取得了显著成果.本文论述了国内外静电纺PHB基纳米纤维的研究现状和进展,重点介绍了静电纺PHB基纳米纤维影...  相似文献   

8.
炭电极材料是超级电容器的核心,该领域的研究近年来相当活跃,活性炭粉、活性炭纤维、碳凝胶、碳纳米管、玻态炭、模板炭、碳化物衍生炭、石墨烯等各种多孔炭材料用作超级电容器电极材料的研究都有报道.本文概述了我们近年来在超级电容器炭电极材料方面的研究工作,主要介绍了强碱化学活化制备活性炭电极材料、纳米CaCO3模板法制备介孔炭电...  相似文献   

9.
涂亮亮  贾春阳 《化学进展》2010,22(8):1610-1618
导电聚合物(聚苯胺,聚吡咯,聚噻吩)作为超级电容器电极材料的研究引起了人们广泛的兴趣,该类材料制备的超级电容器具有成本低、容量高、充放电时间短、环境友好和安全性高等优点。本文综述了近年来基于导电聚合物及其与无机材料(碳材料/金属氧化物材料)复合所得电极材料在超级电容器中的应用进展,指出具有纳米结构导电聚合物材料及导电聚合物与无机纳米材料的复合是超级电容器电极材料研究的重要发展方向。  相似文献   

10.
石墨烯基纤维电容器的可控制备及应用   总被引:1,自引:1,他引:0  
聂肖威  陈南  李静  曲良体 《应用化学》2016,33(11):1234-1244
超级电容器又名电化学电容器,是一种绿色储能器件。 超级电容器的研究,从根本上讲是寻找比表面积大且可以被充分利用的电极材料。 石墨烯作为sp2杂化碳质材料的基元单位,具有独特的二维结构和优异的物化特性,使得其在超级电容器领域具有巨大的应用潜力,其中石墨烯纤维超级电容器受到了研究工作者越来越广泛的关注。 本文通过对一维石墨烯纤维的自组装以及与制备材料的共组装来作为超级电容器的电极材料,对其可控制备进行了系统的归纳和总结,可控构建独特的电极材料,使其性能得以优化,组装出高性能的超级电容器,并对相关领域的发展趋势做了展望。  相似文献   

11.
超级电容器作为一种新型的能源存储装置,因为其比容量大、充放电速度快、循环寿命长等优点,在储能领域引起了极为广泛的关注。电极材料是决定超级电容器性能的核心因素,其中,常用的超级电容器电极材料主要有如下三类:碳基材料、金属氧化物及氢氧化物材料和导电聚合物材料。本文综述了超级电容器的工作原理并详细介绍了基于碳材料及其二元、三元复合体系的电极材料的研究进展。  相似文献   

12.
炭-/石墨烯量子点作为新兴的炭纳米材料,因具有独特的小尺寸效应和丰富的边缘活性位点而在高性能超级电容器电极材料的研发方面展现出巨大潜力。针对目前炭-/石墨烯量子点在超级电容器电极材料方面的应用优势和存在的关键问题,本文以炭-/石墨烯量子点、量子点/导电炭复合材料、量子点/金属氧化物复合材料、量子点/导电聚合物复合材料以及量子点衍生炭这些电极材料为脉络,梳理了近年来该领域的发展状况,尝试阐释炭-/石墨烯量子点在电极材料、复合材料和衍生炭电极材料中所起到的关键作用,最后对炭-/石墨烯量子点电极材料的发展进行了展望。本综述以期为炭-/石墨烯量子点基电极材料的研究提供一定参考和依据。  相似文献   

13.
High-performance supercapacitive electrode materials have received significant attention from researchers worldwide, thus aiming for comparable performance similar to the extensively used rechargeable batteries. For emerging energy storage technologies like flexible supercapacitors, transition metal chalcogenides (TMCs) have been in the spotlight due to their promising electrochemical features compared to other electrode materials. Among the synthesis techniques, electrodeposition-mediated preparation of thin films of TMCs offered an affordable binder-free approach for electrode fabrication that effectively improved the supercapacitor performance. Hence, this review mainly focussed on the electrodeposition-based syntheses of single/ multinary chalcogenides and their composites for supercapacitors applications. Further, the effects of different deposition parameters were discussed for boosting the supercapacitor performance. Finally, this review outlined the existing challenges and future perspectives in this research domain, which will assist the upcoming exploration in the energy storage field.  相似文献   

14.
The development of high-performance supercapacitor electrode materials is imperative to alleviate the ongoing energy crisis. Numerous transition metals (oxides) have been studied as electrode materials for supercapacitors owing to their low cost, environmental-friendliness, and excellent electrochemical performance. Among the developed binary transition metal oxides, manganese cobalt oxides typically show high theoretical capacitance and stable electrochemical performance, and are widely used in the electrode materials of supercapacitors. However, the poor conductivity and active material utilization of manganese cobalt oxide-based electrode materials limit their potential capacitance application. Cotton is mainly composed of organic carbon-containing materials, which can be transformed to carbon fibers after calcination. The resultant carbonaceous material exhibits a large specific surface area and good conductivity. Such advantages could potentially suppress the negative effects caused by the poor conductivity and small specific surface area of manganese cobalt oxides, thereby improving the electrochemical performance. Herein, we firstly deposited manganese cobalt oxides on cotton by a simple hydrothermal method, yielding a composite of manganese cobalt oxides and carbon fibers via subsequent calcination, to improve the electrochemical performance of the electrode material. X-ray diffraction (XRD), field-emission scanning electron microscopy (FESEM), X-ray photoelectron spectroscopy (XPS), Brunauer-Emmett-Teller (BET), thermogravimetric analysis (TGA), and electrochemical characterizations were used to investigate the physical, chemical, and electrochemical properties of the prepared samples. The fabricated manganese cobalt oxides in the composite were uniformly dispersed on the carbon fiber surface, which increased the contact between the interface of the electrode material and electrolyte, and enhanced electrode material utilization. The electrode material was confirmed to have well contacted with the electrolyte during a contact angle test. Hence, a pseudo-capacitance reaction completely occurred on the manganese cobalt oxide material. Moreover, the addition of carbon fibers reduced the resistance of the material, resulting in excellent capacitive performance. The capacitance of the prepared composite was 854 F∙g-1 at a current density of 2 A∙g-1. The capacitance was maintained at 72.3% after 2000 cycles at a current density of 2 A∙g-1. These results indicate that the manganese cobalt oxide and carbon fiber composite is a promising electrode material for high-performance supercapacitors. The findings presented herein provide a strategy for coupling with carbon materials to enhance the performance of supercapacitor electrode materials based on manganese cobalt oxides. Thus, novel insights into the design of high-performance supercapacitors for energy management are provided.  相似文献   

15.
Supercapacitors have been considered as one of the main energy storage devices. Recently, electrospun nanofibers have served as promising supercapacitor electrodes because of their high surface area, high porosity, flexibility, and resistance to aggregation. Here, we investigate the effects of electrospinning parameters and nickel precursors on the nanostructure of electrospun nickel oxide (NiO), as well as on their electrochemical performance as supercapacitor electrodes. In contrast to the case of using nickel nitrate, increasing the nickel acetate molar concentration maintains the flexible fibrous sheet morphology of the as-spun sample during the polycondensation and calcination of NiO. As a result, our flexible electrode of NiO nanofibers derived from nickel acetate (NiO-A) exhibits much better electrochemical performance values than that of nickel nitrate-derived NiO. To further improve the electrochemical storage performance, we combined NiO-A nanofibers with single-walled carbon nanotubes (CNTs) as a hybrid electrode. In both half-cell and full-cell configurations, the hybrid electrode displayed a higher and steadier areal capacitance than the NiO-A nanofibers because of the synergetic effect between the NiO-A nanofibers and CNTs. Altogether, this work demonstrates the potency of the hybrid electrodes combined with the electrospun NiO-A nanofibers and CNTs for supercapacitor applications.  相似文献   

16.
《印度化学会志》2023,100(1):100817
Supercapacitors are high energy density and power density materials in the electronics industry. Noble metals and their composites have been the most successfully applied in supercapacitors. This review is focused on noble metal-based materials that have been used to improve electrochemical supercapacitors over the last decade. This review describes the role of various noble metals, binary composites with transition metals, binary composites with carbon-based materials, and ternary composites containing both transition metals and carbon-based materials as supercapacitor electrode materials. The effects of the electrode material, growth tactics, structure, size and morphology of the nanostructured materials on device performance are discussed.  相似文献   

17.
传统超级电容器受低能量密度的限制,在当今器件研发中需更加关注电极材料结构-组成-性能研究。 本文总结了新型赝电容器的发展历程及其研发过程中存在的挑战与解决措施,着重从胶体离子超级电容器电极材料等新型的电极材料和氧化还原电解质两个方面进行综述。 原位合成的胶体离子超级电容器电极材料比非原位合成的电极材料具有更高的反应活性,并且以近似离子的状态存在,有效增加了电极材料的比容量。 氧化还原电解质的使用在不改变电极材料的前提下,进一步提高了超级电容器的能量密度。 初步介绍了新型锂离子电容器。 锂离子电容器同时使用电池型材料和电容型材料,可提高其能量密度。 依据当前超级电容器的研发现状,未来有望将电池材料和电容器材料结合使用,进而形成电池电容器或电容电池,使其同时具有高的能量密度和功率密度。  相似文献   

18.
基于碳纳米管的超级电容器研究进展   总被引:2,自引:1,他引:1  
综述了基于碳纳米管及其复合材料作超级电容器的电极材料的研究现状,通过对碳纳米管的改性或与其它材料复合,能有效地提高电容器的电容特性。总结了近几年来在开发超级电容器电极材料领域中对碳纳米管的活化和提高碳纳米管的分散性技术、碳纳米管与过渡金属氧化物复合材料、碳纳米管与导电聚合物复合材料以及碳纳米管与石墨烯复合材料研究的进展。  相似文献   

19.
《中国化学快报》2020,31(9):2177-2188
In the past few years, the increasing energy consumption of traditional fossil fuels has posed a huge threat to human health. It is very imperious to develop the sustainable and renewable energy storage and conversion devices with low cost and environment friendly features. Hybrid supercapacitors are emerging as one of the promising energy devices with high power density, fast charge-discharge process and excellent cycle stability. However, morphology and structure of the electrode materials exert serious effect on their electrochemical performances. In this review, we summarized recent progresses in transition metal oxide based electrode materials for supercapacitors. Different synthesis routes and electrochemical performances of electrode materials and storage mechanisms of supercapacitor devices have been presented in details. The future developing trends of supercapacitor based on metal oxide electrode materials are also proposed.  相似文献   

20.
《中国化学快报》2023,34(4):107402
Antimony-based materials are considered as promising anodes for potassium ion batteries due to their high theoretical capacity and low electrode potential. However, the aggregation and bulk expansion of Sb particles in cycling will cause capacity attenuation and poor rate performance. In this paper, Sb nanoplates were designed to be embedded in flexible porous N-dopped carbon nanofibers (Sb@PCNFs) by a simple electrospinning deposition (ESD) method. In this structural design, Sb nanoplates of high capacity were employed as active materials, N-dopped carbon nanofibers were used to improve conductivity and structural stability. The introduction of pore-forming agent enables the nanofibers to possess porous structure, thus buffering the huge volume change and promoting the transfer of electrolyte/ions. More importantly, the freestanding film can be directly used as a working electrode, reducing the redundancy in the battery and the cost. Benefitting from the favorable structure, the freestanding flexible Sb@PCNFs electrode shows excellent potassium storage performance with a capacity of 314 mAh/g after 2000 cycles at 500 mA/g. This strategy of employing active material with high capacity in porous and conductive flexible nanofibers represents an effective method of achieving binder-free electrode with good electrochemical performance towards wearable energy storage devices.  相似文献   

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