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1.
石墨烯是一种具有单原子厚度的二维碳纳米材料,具有大的比表面积、高的导电性和室温电子迁移率,以及优异的机械力学性能.石墨烯还具有电化学窗口宽,电化学稳定性好,电荷传递电阻小,电催化活性高和电子转移速率快等电化学特性.化学修饰石墨烯,特别是氧化石墨烯(GO)和还原氧化石墨烯(rGO),可以被宏量、廉价地制备出来.它们具有可加工性能,可以被组装、加工或复合成具有可控组成和微结构的宏观电极材料.因此,石墨烯及其化学修饰衍生物是用于电化学生物传感的独特而诱人的电极材料.例如,GO是一种化学修饰石墨烯,也是石墨烯的重要前驱体;其边缘具有大量的羧基可用于共价固定酶,从而能实现酶电极的生物检测.在GO上的不可逆蛋白吸附也可以促进蛋白质的直接电子转移以提高其电化学检测性能.但是,GO大量的含氧官能团破坏了石墨烯本征的共轭结构,降低了其电学性能并限制了其实际应用.GO可以通过化学、电化学、热还原等技术转化成rGO,从而能部分修复其共轭结构,提高其导电性与传感性能.另一方面,石墨烯是一种零带隙材料;原子掺杂可以调控其能带结构,提高其电催化性能.石墨烯材料也常常需要通过与其它功能材料的复合进一步改善其可分散与可加工性能,提高其电催化活性和电化学选择性.本文综述了本征石墨烯(包括GO,rGO和掺杂石墨烯)以及石墨烯与生物分子、高分子、离子液体、金属或金属氧化物纳米粒子等复合材料修饰电极在检测各种生物分子方面的研究进展,并对该研究领域进行了展望.  相似文献   

2.
石墨烯是一种具有优异物理和化学性质的新型二维碳纳米材料,大规模低成本制备高品质石墨烯的方法是其能够得到广泛实际应用的重要前提. 电化学方法可以快捷、绿色无污染、批量制备高质量的石墨烯及其复合材料. 本综述在对石墨烯各种制备方法进行简要比较之后,对近年来石墨烯、石墨烯/无机纳米复合材料、石墨烯/聚合物复合材料以及类石墨烯材料的电化学法制备进展进行介绍并作了展望.  相似文献   

3.
石墨烯-聚苯胺杂化超级电容器电极材料   总被引:1,自引:0,他引:1  
聚苯胺是一类具有超高比电容的导电高分子材料, 利用其与石墨烯的协同效应, 改善各自的固有缺点, 可以制得高性能的超级电容器. 本文综述了石墨烯-聚苯胺杂化电极材料的制备方法和石墨烯表面性质对电极材料电化学性能的影响, 讨论了优化杂化电极的结构与性能.  相似文献   

4.
本文基于氧化石墨烯(GO)、电化学还原氧化石墨烯(ERGO)和氮掺杂石墨烯(NG)三种石墨烯材料修饰的电极制备了镉离子(Cd~(2+))电化学传感器。利用循环伏安法和差分脉冲伏安法分析检测Cd~(2+),系统的比较了不同石墨烯材料修饰电极的电化学性质及检测效果。结果表明GO修饰的传感器在灵敏度、检测限和可重复性方面优于ERGO和NG,说明了石墨烯上含氧基团的存在提高了Cd~(2+)检测的灵敏度。  相似文献   

5.
作为单原子厚度的二维碳原子材料,石墨烯由于其特殊的结构和物化性能而成为目前碳基材料中的一个研究热点。本文主要介绍了石墨烯及其复合纳米材料制备的一些新方法。结合石墨烯优良的导电性和生物相容性,论述了石墨烯在电化学分析领域,以及电催化、超级电容器和电化学电池等方面的应用。  相似文献   

6.
高效的电化学能量存储与转换功能材料及其器件近年来受到了人们的广泛关注。层状双金属氢氧化物/石墨烯(LDH/G)复合物就是一类重要的能源材料。它们兼具LDH和石墨烯的优异的物理、化学性能,同时克服了LDH导电性差和石墨烯片易于团聚的问题;在超级电容器和电化学催化分解水等方面具有广泛应用。本文综述了LDH与化学修饰石墨烯(氧化石墨烯,还原氧化石墨烯及其衍生物)的有效复合的方法及其在电化学能量存储与转换领域中的应用,特别是关于基于该类材料的超级电容器及电化学析氧反应催化的研究;对LDH/G复合材料研究领域中的挑战和未来发展方向做了展望。  相似文献   

7.
梁骥  闻雷  成会明  李峰 《电化学》2015,21(6):505
电化学储能材料是电化学储能器件发展及性能提高的关键之一. 碳材料在各种电化学储能体系中都起到了极为重要的作用,特别是近期出现的各类新型碳材料为电化学储能的发展带来了新动力,并展现了广阔的应用前景. 本文综述了碳材料,特别是以碳纳米管和石墨烯为代表的纳米碳材料,在典型电化学储能器件(锂离子/钠离子电池、超级电容器和锂硫电池等)、柔性电化学储能和电化学催化等领域的研究进展,并对碳材料在这些领域的应用前景进行了展望.  相似文献   

8.
石墨烯因具有大的比表面积、完整的?-?共轭结构及良好的生物相容性和优良的导电性能等特性,受到电化学研究者们的广泛关注.然而在应用过程中,本征态石墨烯存在水溶性差、与介质的相互作用较弱、易团聚等问题.通过使用非共价、共价、氮掺杂修饰的方法对石墨烯进行功能化,较好地改善了这一问题,扩展了石墨烯在电化学领域的应用.自2009年首次将功能化石墨烯应用于第三代电化学生物传感器的研究以来,近几年相关研究呈增多的态势.本文系统总结了自2009年以来,功能化石墨烯作为新型电极修饰材料在第三代电化学生物传感器研究中的相关工作,并阐述了其在该领域发展中遇到的问题.  相似文献   

9.
近年来,用于电化学能源存储和转化的石墨烯材料,得到了研究者们越来越多的关注。但是,这些石墨烯材料不同于严格定义的单原子碳层结构,往往具有孔洞、杂原子和化学官能团等缺陷结构。由于制备方法的不同,缺陷结构各不相同,其电化学性能也表现各异。结构分析表明,这类材料是由类似石墨烯片段的单元与聚合物链共价连接而成,使其具有石墨烯和聚合物的双重特性,我们称之为石墨烯化聚合物。由小分子通过自下而上的方法制备的多孔聚合物,也可以通过进一步热交联等方法,使其形成包含石墨烯片段单元与聚合物链的化学结构。这些材料与石墨烯衍生材料一起组成了石墨烯化聚合物的整个谱系;这个谱系涵盖了由聚合物到石墨烯的过渡区。更重要的是,这类材料特殊的结构与性质,使其成为一种兼具电子和离子传输通道的三维富碳高分子材料,非常适合作为电极材料应用于电化学能源存储和转化,这为我们深入研究储能器件中电极材料的结构与性能的相关关系提供了很好的材料平台。  相似文献   

10.
石墨烯材料的储锂行为及其潜在应用   总被引:1,自引:0,他引:1  
由于石墨烯材料独特的性质,其在锂离子电池材料方面显示出潜在的应用前景.深入理解石墨烯材料的储锂行为,对于其在储能领域的应用具有极为重要的意义.石墨烯材料作为负极材料具有与低温软炭材料类似的充放电特征.无序度或比表面积高的热还原石墨烯材料具有相对更高的可逆储锂容量.石墨烯材料中大量的微孔缺陷能够提高可逆储锂容量,但同时也会造成电压滞后及容量衰减.石墨烯材料作为锂电池正极材料,其电化学性能主要来源于表面含氧官能团与锂离子在高电位下的可逆氧化还原反应,且不可逆容量较低.利用石墨烯负极高容量与石墨烯正极高倍率放电的特性,可以设计出具有高能量密度的锂离子电容器和高比容量的石墨烯复合锂电池正极材料.  相似文献   

11.
氮掺杂石墨烯的制备及其在化学储能中的研究进展   总被引:1,自引:0,他引:1  
石墨烯独特的二维空间结构使其具有优异的导电性能、力学性能以及超大的比表面积,被认为是颇具潜力的新型储能材料,是目前储能研究的热点之一。 但是石墨烯易团聚、表面光滑且呈惰性而不利于与其它材料的复合,导致其应用受到限制。 石墨烯掺氮可改变其电子结构,增加表面的活性位,从而提高其应用于储能器件时的电化学性能。 本文综述了近几年氮掺杂石墨烯的制备方法以及其在超级电容器、锂离子电池、锂空电池以及锂硫电池等化学储能领域中的应用,指出了目前氮掺杂石墨烯在制备和储能应用中关注的核心问题,并对氮掺杂石墨烯的发展前景进行了展望。  相似文献   

12.
Nickel oxide (NiO) has emerged as one of the most promising transition-metal oxides (TMOs) for electrochemical capacitors, batteries, catalysis, and electrochromic films, owing to its cost-effectiveness, abundance, and well-defined electrochemical properties. Recent studies have identified that mixing NiO with graphene or graphene derivatives results in novel composites with synergistic effects and superior electrochemical performance. This review summarizes the latest advances in composites of NiO with graphene or graphene derivatives. The synthetic strategies, morphologies, and electrochemical performance of these composites are introduced, as well as their electrochemical applications in supercapacitors, batteries, sensors, catalysis, and so forth. Finally, tentative conclusions and assessments regarding the opportunities and challenges for the future development of these composites and other TMOs/graphene or graphene-derived composites are presented.  相似文献   

13.
The unique electronic properties of graphene, a one atom thick carbon layer, were reported by scientists in 2004. Since this time graphene has subsequently been found to display several more unique and fascinating electrical, optical and mechanical properties. One particular area in which graphene has reportedly made an impact is in the field of electrochemistry, such as in providing enhancements in energy storage/generation and electrochemical sensing applications. Since 2005, when graphene was shown to be fabricated by the so-called 'Scotch tape technique' where multiple layers of graphene are peeled from a slab of Highly Ordered Pyrolytic Graphite using adhesive tape and transferred onto an appropriate substrate, other fabrication methodologies of graphene have emerged. In the majority of cases, graphene is produced and supplied in solution, such that graphene has to be immobilised onto the desired surface. A fabrication process where graphene is grown upon a substrate and is ready for implementation is the Chemical Vapour Deposition (CVD) of graphene. In this perspective article we overview recent developments in the fabrication of CVD graphene and explore its utilisation in electrochemistry, considering its fundamental understanding through to applications in sensing and energy related devices.  相似文献   

14.
Doped graphene materials are of huge importance because doping with electron‐donating or electron‐withdrawing groups can significantly change the electronic structure and impact the electronic and electrochemical properties of these materials. It is highly important to be able to produce these materials in large quantities for practical applications. The only method capable of large‐scale production is the oxidative treatment of graphite to graphene oxide, followed by its consequent reduction. We describe a scalable method for a one‐step doping of graphene with phosphorus, with a simultaneous reduction of graphene oxide. Such a method is able to introduce significant amount of dopant (3.65 at. %). Phosphorus‐doped graphene is characterized in detail and shows important electronic and electrochemical properties. The electrical conductivity of phosphorus‐doped graphene is much higher than that of undoped graphene, owing to a large concentration of free carriers. Such a graphene material is expected to find useful applications in electronic, energy storage, and sensing devices.  相似文献   

15.
Brownson DA  Banks CE 《The Analyst》2010,135(11):2768-2778
Graphene, a 2D nanomaterial that possesses spectacular physical, chemical and thermal properties, has caused immense excitement amongst scientists since its freestanding form was isolated in 2004. With research into graphene rife, it promises enhancements and vast applicability within many industrial aspects. Furthermore, graphene possesses a vast array of unique and highly desirable electrochemical properties, and it is this application that offers the most enthralling and spectacular journey. We present a review of the current literature concerning the electrochemical applications and advancements of graphene, starting with its use as a sensor substrate through to applications in energy production and storage, depicting the truly remarkable journey of a material that has just come of age.  相似文献   

16.
微电极由于灵敏度高、响应快、样品用量少、操作简便等特点,近年来在化学分析、生物医学、食品安全、环境检测等领域引起人们的广泛关注。 石墨烯具有超高的比表面积、优异的电子迁移率及良好的生物相容性等优点,近年来在电化学传感领域展示出巨大的发展前景。 本文围绕石墨烯基微电极的制备及其在电化学传感中的应用展开,总结了近年来国内外同行基于石墨烯修饰微电极和石墨烯微电极在重金属离子、多巴胺、葡萄糖、H2O2等分子检测方面取得的研究成果。 同时探讨了石墨烯基微电极在电化学传感方面面临的挑战和发展前景。  相似文献   

17.
High surface area electrode materials are of interest for the application of electrochemical sensors. Currently, chemical vapor deposition (CVD) graphene-sensing electrodes are scarce. Herein, for the first time, a graphene based on a Ta wire support was prepared using the CVD method to form a highly electroactive biosensing platform. Scanning electron microscopy (SEM), transmission electron microscopy (TEM), electrochemical impedance spectroscopy (EIS), cyclic voltammetry (CV), and differential pulse voltammetry (DPV) were utilized to characterize the morphology and investigate the electrochemical properties of the CVD graphene electrodes. The resulting CVD graphene electrode exhibited good electrocatalytic activity and had a prominent response effect on dopamine, uric acid, guanine, and adenine. Standing graphene nanosheets have rich catalytic sites such as the edges, the defect levels of the plane, and porous network structures between the graphene nanosheets. These catalytic sites prompt the adsorption and resolution for the four species and the strong electron transport capability of the CVD graphene, which effectively improved the electrical signals for response to four species. Moreover, the graphene electrode is a promising candidate in electrochemical sensing and other electrochemical device applications.  相似文献   

18.
Electrochemical applications of graphene are of great interest to many researchers as they can potentially lead to crucial technological advancements in fabrication of electrochemical devices for energy production and storage, and highly sensitive sensors. There are many routes towards fabrication of bulk quantities of chemically modified graphenes (CMG) for applications such as electrode materials. Each of them yields different graphene materials with different functionalities and structural defects. Here, we compare the electrochemical properties of five different chemically modified graphenes: graphite oxide, graphene oxide, thermally reduced graphene oxide, chemically reduced graphene oxide, and electrochemically reduced graphene oxide. We characterized these materials using transmission electron microscopy, Raman spectroscopy, high-resolution X-ray photoelectron spectroscopy, electrochemical impedance spectroscopy, and cyclic voltammetry, which allowed us to correlate the electrochemical properties with the structural and chemical features of the CMGs. We found that thermally reduced graphene oxide offers the most favorable electrochemical performance among the different materials studied. Our findings have a profound impact for the applications of chemically modified graphenes in electrochemical devices.  相似文献   

19.
石墨烯/聚苯胺复合材料由于其优异的电学、热学、电化学性能和机械性能等特点,吸引了研究者们的广泛关注。本文对近几年来石墨烯/聚苯胺复合材料的发展状况进行了简单介绍,首先总结了原位聚合法、界面聚合法、自组装法、溶液共混法等不同制备方法对石墨烯/聚苯胺复合材料结构和性能的影响。由于石墨烯/聚苯胺复合材料结合了石墨烯和聚苯胺两者的优点,展现出更加优异的性能,因此本文还对其在超级电容器、传感器、燃料电池、太阳能电池等方面的应用进行了详细介绍。  相似文献   

20.
As a new form of carbon, graphene is attracting intense interest as an electrode material with widespread applications. In the present study, the heterogeneous electron transfer (ET) activity of graphene is investigated using scanning electrochemical cell microscopy (SECCM), which allows electrochemical currents to be mapped at high spatial resolution across a surface for correlation with the corresponding structure and properties of the graphene surface. We establish that the rate of heterogeneous ET at graphene increases systematically with the number of graphene layers, and show that the stacking in multilayers also has a subtle influence on ET kinetics.  相似文献   

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