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1.
石墨二炔是由spsp2杂化的碳原子构成的新的碳同素异形体。由于石墨二炔具有独特的拓扑结构和电子结构、较高的电荷迁移率及优异的电子传输性能,使其与其他材料相互作用,可表现出独特的电子转移增强特性。本文基于石墨二炔的电子转移增强特性,概述了石墨二炔及其电子转移增强特性的最新研究进展,包括金属氧化物/石墨二炔、金属纳米颗粒/石墨二炔、聚合物/石墨二炔以及染料分子/石墨二炔等多种石墨二炔基材料。本文从理论和实验研究两个方面详细阐述了石墨二炔的电子转移增强特性、石墨二炔与不同材料的相互作用以及相关的应用。希望该综述能对石墨炔化学的发展起到一定的积极作用。  相似文献   

2.
石墨炔特殊的电子结构和孔洞结构使其在信息技术、电子、能源、催化以及光电等领域具有潜在、重要的应用前景。近几年石墨炔的基础和应用研究已取得了重要成果,并迅速成为了碳材料研究中的新领域。石墨炔中炔键单元的高活性为其化学修饰与掺杂提供了良好的平台。在这篇综述中,我们将重点介绍石墨炔的非金属杂原子掺杂、金属原子修饰以及表面改性,并深入探讨掺杂与衍生化对石墨炔材料的电子性质的影响及其对光电化学催化性能的协同增强。  相似文献   

3.
当今社会,电化学储能器件在人类的社会活动中变得越来越重要。电极材料作为电化学储能器件的核心部分,一直是人们研究的焦点。石墨炔是一种新型的二维平面结构的全碳材料,它宽的层间距、大的比表面积、独特的三维孔隙结构和好的导电性使其在能源存储器件电极材料应用中具有巨大的潜力。基于石墨炔温和的制备方法与独特的结构特征,本文详细介绍了近年来石墨炔在储能方面的理论分析和实验进展。通过研究锂/钠在单层、多层石墨炔上的迁移率和存储,理论分析石墨炔基电池具有很好的储锂储钠性能。实验方面,石墨炔作为电极材料在储钠储锂方面的容量与理论值相近。此外石墨炔作为电极材料成功应用于超级电容器和金属-硫电池,并表现出了优异的容量存储性能。石墨炔纳米形貌的调控、石墨炔的热处理,以及异原子的掺杂等均可以有效地提高石墨炔在这些储能器件中的性能。  相似文献   

4.
从二维碳材料石墨炔(GDY)的分子和电子结构出发,重点论述石墨炔在能源存储和转换两个领域的应用,包括最新的理论和实验进展。石墨炔独特的三维孔隙结构,使得石墨炔在锂存储和氢气存储应用中具备天然的优势,既可以用作锂离子相关的储能器件,包括锂离子电池、锂离子电容器等;也可作为储氢材料,用于燃料电池等。通过掺杂的方法,还能进一步提高石墨炔储锂和储氢的性能。由于sp炔键和sp2苯环的存在,使石墨炔具有多重共轭的电子结构,在具备狄拉克锥的同时,其带隙也可通过多种途径调控,使得石墨炔不仅可以作为非金属高活性催化剂替代贵金属在光催化等方面应用,还可以在太阳能电池的空穴传输层和电子传输层方面获得应用,展现了石墨炔在能源方面独特的应用价值。我们将从理论预测和实验研究两方面介绍该领域目前的研究现状和发展趋势。  相似文献   

5.
正石墨炔是一种新型碳的同素异形体,是由sp和sp~2两种杂化形式的碳原子组成的二维层状材料~1。具有中国自主知识产权的石墨炔自2010年被首次成功合成以来,吸引了全世界来自化学、物理、材料、生物和电子等学科的科学家对其进行探索~2。石墨炔独特的纳米级孔隙、二维层状共轭骨架结构及半导体性质等特性,使之在能源、电化  相似文献   

6.
应用密度泛函理论研究了纯(8, 0)单壁碳纳米管(SWCNT)和B原子、N原子以及BN原子对掺杂的(8, 0) SWCNTs对硫化氢气体分子的传感性质. 计算结果表明, 与纯碳纳米管相比, B原子掺杂的SWCNT显示了对H2S分子的敏感性, 其几何结构和电子性质在吸附H2S分子后发生了显著变化; 而N原子和BN原子对的掺杂没有改善SWCNT对H2S分子的吸附性能, 因此我们建议B原子掺杂的SWCNT作为检测H2S分子的新型气相传感器.  相似文献   

7.
纳米酶因其经济、 稳定、 性质可调和可循环利用等诸多优势, 成功地克服了天然酶在实际应用中的不足. 单原子材料的出现使得对纳米酶的研究迈入原子水平, 其较高的原子利用率、 独特的配位环境和较强的金属-载体相互作用为揭示纳米酶构效关系及调控类酶活性提供了可能. 本文总结了近年来单原子材料类酶催化的研究进展, 重点讨论了单原子材料类酶活性的调控策略和催化机理, 概述了单原子类酶材料在癌症治疗、 抗氧化治疗、 抗菌以及生物传感等方面的应用, 并对单原子类酶材料的发展前景进行了展望.  相似文献   

8.
我们对sp + sp2杂化的碳同素异形体—石墨炔,以及锡烯等层状体系的电子结构、形变势、电声耦合和电荷输运性质进行了回顾。有些二维石墨炔具有类似石墨烯的狄拉克锥,同时石墨炔电子结构可通过将其沿不同方向裁剪成不同宽度一维纳米带来调节。采用玻尔兹曼输运方程和形变势近似,结合第一性原理计算,我们预测石墨炔电荷载流子室温迁移率可达104–105 cm2·V-1·s-1,尤其6, 6, 12-石墨炔,因有两个狄拉克锥及比石墨烯弱的电声耦合,其室温迁移率甚至能高于石墨烯。因此具有独特电子结构和高迁移率的石墨炔能成为继石墨烯之后未来的纳米电子器件材料。此外我们着重分析了形变势方法的适用性:密度泛函微扰理论和瓦尼尔插值技术能精确计算任意波矢和模式的声子对载流子散射,该方法在石墨烯和石墨炔上的运用表明二维平面碳材料中对载流子输运起主导作用的是长波长纵声学声子散射,因而形变势方法是适用的;但通过对锡烯等二维非平面buckling结构的材料声子散射和迁移率的计算,发现此类不具备σh对称性的材料有较强的面外声子散射和横声学声子谷间散射,使得常用的形变势失效。  相似文献   

9.
提出了两个稳定的团簇B12Sc4和B12Ti4,基于理论计算,研究了它们的结构与储氢性质.结果发现,在这两个稳定的团簇中,过渡金属原子不会聚合在一起而影响它们对氢气的吸附. B12Sc4最多可以吸附12个氢分子,达到7.25%(质量分数)的储氢量,它的平均每氢分子吸附能量为-10.5 kJ·mol-1. B12Ti4最多只能吸附8个氢分子,储氢量为4.78%,但其平均每氢分子吸附能量可达-50.2 kJ·mol-1.进一步计算表明,即使在77 K,也需要很高的氢气压力才能使12个氢分子都吸附到B12Sc4上.电子结构分析表明, B12Ti4-nH2吸附结构中的Kubas作用要大于相应B12Sc4-nH2结构中的Kubas作用  相似文献   

10.
Armchair型石墨纳米带的电子结构和输运性质   总被引:1,自引:0,他引:1  
利用第一性原理的电子结构和输运性质计算方法, 研究了扶手椅(armchair)型单层石墨纳米带(具有锯齿边缘)的电子结构和输运性质及其边缘空位缺陷效应. 研究发现, 完整边缘的扶手椅型石墨纳米带是典型的金属性纳米带, 边缘空位缺陷的存在对扶手椅型纳米带能带结构有一定的影响,但并不彻底改变其金属性特征.  相似文献   

11.
Studies on the adsorption and transport of water molecules with oxidized two-dimensional (2 D) carbon materials have attracted increasing interest owing to their wide range of applications, such as sensing, energy conversion, and membrane separation. In this contribution, the interaction between water molecules and oxidized 2 D carbon materials (i.e., graphene oxide and graphdiyne oxide) is discussed, the influence of water adsorption and transport on the physicochemical properties of 2 D carbon materials is presented, and the recent progress on oxidized 2 D carbon material-based proton conduction, electricity generation, water transport, and humidity sensing is highlighted. The opportunities and challenges in these research fields are discussed, especially the structural stability and chemical modification of 2 D carbon materials.  相似文献   

12.
For the past few years, two-dimensional materials have attracted widespread attention owing to their special properties and potential applications. It is well-known that graphene, transition metal disulfide compounds (TMDC), carbon nitride, transition metal carbonitrides (Mxenes), silene and hexagonal boron nitride are typical two-dimensional materials. Compared with these traditional two-dimensional materials, two-dimensional MOF is favored by numerous researchers because of its unique structure. Based on the unique metal ion and organic ligand coordination of MOF and two-dimensional layered structure, the applications of two-dimensional MOF were getting serious, including catalysis, supercapacitor, gas adsorption/separation, sensors and so on. This review presents a relatively comprehensive summary of the design & synthesis and applications of two-dimensional MOF over the past few years. Furthermore, the opportunities and challenges have been discussed to supply a promising prospect to this field.  相似文献   

13.
Graphene is scientifically and commercially important because of its unique molecular structure which is monoatomic in thickness, rigorously two-dimensional and highly conjugated. Consequently, graphene exhibits exceptional electrical, optical, thermal and mechanical properties. Herein, we critically discuss the surface modification of graphene, the specific advantages that graphene-based materials can provide over other materials in sensor research and their related chemical and electrochemical properties. Furthermore, we describe the latest developments in the use of these materials for sensing technology, including chemical sensors and biosensors and their applications in security, environmental safety and diseases detection and diagnosis.  相似文献   

14.
In recent years, polaritons in two-dimensional (2D) materials have gained intensive research interests and significant progress due to their extraordinary properties of light-confinement, tunable carrier concentrations by gating and low loss absorption that leads to long polariton lifetimes. With additional advantages of biocompatibility, label-free, chemical identification of biomolecules through their vibrational fingerprints, graphene and related 2D materials can be adapted as excellent platforms for future polaritonic biosensor applications. Extreme spatial light confinement in 2D materials based polaritons supports atto-molar concentration or single molecule detection. In this article, we will review the state-of-the-art infrared polaritonic-based biosensors. We first discuss the concept of polaritons, then the biosensing properties of polaritons on various 2D materials, then lastly the impending applications and future opportunities of infrared polaritonic biosensors for medical and healthcare applications.  相似文献   

15.
石墨炔是新兴的碳同素异形体, 其独特的结构和性质引起了不同领域科学家的广泛关注. 研究表明, 石墨炔在能源、 催化、 光学、 磁学、 信息科学和生命科学等领域发展潜力巨大. 近年来, 石墨炔在电化学能源领域的基础和应用研究展现了石墨炔作为电化学能源材料所具有的独特优势, 为解决电化学能源器件所面临的科学瓶颈提供了新理念、 新方法和新概念. 本文综合评述了近3年来石墨炔在电化学电池界面应用方面的研究进展, 主要涉及二维石墨炔的制备和结构优势, 及其为多种电化学电池电极界面构筑、 界面选择性传输及电极界面稳定性等带来的新启发.  相似文献   

16.
As the thinnest material ever known in the universe, graphene has been attracting tremendous amount of attention in both materials science and condensed-matter physics since its successful isolation a few years ago. This one-atom-thick two-dimensional pseudo-infinite nano-crystal consists of sp(2)-hybridized aromatic carbon atoms covalently packed into a continuous hexagonal lattice. Graphene exhibits a range of unique properties, viz., high three-dimensional aspect ratio and large specific surface area, superior mechanical stiffness and flexibility, remarkable optical transmittance, extraordinary thermal response and excellent electronic transport properties, promising its applications in the next generation electronics. To switch graphene and its derivatives between ON and OFF states in nanoelectronic memory devices, various techniques have been developed to manipulate the carbon atomic sheets via introducing the valence-conduction bandgap and to enhance their processability. In this article, we review the utilization of electrically, thermally and chemically modified graphene and its polymer-functionalized derivatives for switching and information storage applications. The challenges posed on the development of novel graphene materials and further enhancements of the device switching performance have also been discussed.  相似文献   

17.
Graphene, a honeycomb lattice of carbon material with single-atom-layer structure, demonstrates extraordinary mechanical, thermal, chemical and electronic properties. Thus, it has sparked tremendous interests in various fields, such as energy storage and conversion devices, field-effect transistors (FET), chemical sensors and biosensors. In this review, we will first focus on the synthesis method of graphene and the fabrication strategy of graphene-based materials. Subsequently, the construction of graphene-based biosensors are introduced, in which three kinds of biosensors are discussed in details, including the FET, electrochemical biosensors and electrochemiluminescence (ECL) biosensors. The performances of the state-of-the-art biosensors on the detection of biomolecules are also displayed. Finally, we also highlight some critical challenges remain to be solved and the development in this field for further research.  相似文献   

18.
碳纳米管(CNTs)因具有独特的物理化学及电化学性质,如较大的比表面积、较强的电子转移能力和良好的吸附性能等而引起人们的广泛关注.碳纳米管可以通过物理吸附、静电或疏水作用等非共价结合方式或共价连接方式固定生物大分子(如蛋白质、DNA、抗体等),有效地促进生物大分子与电极间直接、快速的电子转移,可应用于多种电化学生物传感器中.碳纳米管本身在近红外光区具有独特的荧光和拉曼光谱,可以利用多种光谱手段对多种生物分子实现定量检测,因此近年来碳纳米管在光化学生物传感器中的应用也逐渐受到了研究者的重视.本文对碳纳米管在电化学和光化学生物传感器中的应用进行了简要综述和展望.  相似文献   

19.
Functionalized carbon nanotubes and nanofibers for biosensing applications   总被引:3,自引:0,他引:3  
This review summarizes recent advances in electrochemical biosensors based on carbon nanotubes (CNTs) and carbon nanofibers (CNFs) with an emphasis on applications of CNTs. CNTs and CNFs have unique electric, electrocatalytic and mechanical properties, which make them efficient materials for developing electrochemical biosensors.We discuss functionalizing CNTs for biosensors. We review electrochemical biosensors based on CNTs and their various applications (e.g., measurement of small biological molecules and environmental pollutants, detection of DNA, and immunosensing of disease biomarkers). Moreover, we outline the development of electrochemical biosensors based on CNFs and their applications. Finally, we discuss some future applications of CNTs.  相似文献   

20.
Nanosized carbon materials are offering great opportunities in various areas of nanotechnology. Carbon nanotubes and graphene, due to their unique mechanical, electronic, chemical, optical and electrochemical properties, represent the most interesting building blocks in various applications where analytical chemistry is of special importance. The possibility of conjugating carbon nanomaterials with biomolecules has received particular attention with respect to the design of chemical sensors and biosensors. This review describes the trends in this field as reported in the last 6?years in (bio)analytical chemistry in general, and in biosensing in particular.
Figure
Carbon nanotubes and graphene in analytical applications  相似文献   

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