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1.
二维过渡族金属硫属化合物因其带隙具有强烈的层数依赖性而在电子器件方面具有广泛的应用前景.其中单层二硫化钼(MoS2)是该系列材料中最典型的一种直接带隙半导体,它具有优异的光、电、磁、热和力学性能.二维MoS2有望在光电探测、光伏器件、场效应晶体管、存储器件、谷电子和自旋器件、温差电器件、微纳机电器件和系统等方面得以广泛应用.化学气相沉积(CVD)法已成为制备二维过渡族金属硫属化合物如MoS2、MoSe2、WS2和WSe2等原子层薄膜的主要手段,尤其科学界利用CVD法对二维MoS2材料进行了深入的制备探索,通过该方法制备的MoS2薄膜在电子和光电器件方面已经有广泛研究.本文将从二维MoS2的基本物性出发,详细介绍CVD法制备MoS2的各种工艺过程,如热分解硫代硫酸盐法、硫化Mo(MoO3-x)薄膜制备法、MoO3-x粉体与硫属前驱体气相合成法和钼箔表面直接硫化法,并介绍了基于MoS2的二维异质结构筑方法.在制备材料的基础上,详细阐述了二维MoS2在场效应晶体管、光电探测器、柔性电子器件以及异质结器件方面的应用,并展望了二维材料在半导体器件中的应用前景.  相似文献   

2.
本文基于第一性原理方法,系统研究了外电场对石墨烯/MoS2范德瓦耳斯异质结界面相互作用及其电子性质的影响.计算结果表明石墨烯和MoS2之间通过微弱的范德瓦耳斯力结合形成异质结,石墨烯/MoS2异质结的能带基本上是单层石墨烯和单层MoS2能带结构的简单叠加并形成了N型肖特基势垒;由于异质结的石墨烯层的电子向MoS2层转移,导致石墨烯表面带正电,MoS2表面带负电,在异质结内部形成了方向由石墨烯指向MoS2的内建电场.此外,对异质结施加不同强度的负电场时,体系的接触类型逐渐由N型肖特基接触类型转变为欧姆接触;对异质结施加不同强度的正电场时,体系的P型肖特基势垒呈降低趋势,体系的N型肖特基势垒呈现先缓慢升高再急剧下降的特点,在电场强度提高至5.0 V·nm-1附近时,接触类型由N型肖特基接触转变为P型肖特基接触.此项工作将对相关二维场效应晶体管的设计提供参考.  相似文献   

3.
张宇  王世兴  杨蕊  戴腾远  张楠  席聘贤  严纯华 《化学学报》2020,78(12):1455-1460
利用前驱物形貌导向法,成功制备了Co9S8/MoS2异质结构催化剂,该催化剂在碱性析氢反应(HER)中表现出优异的催化活性及稳定性,其在10 mA·cm-2处的过电势仅为84 mV.通过X射线粉末衍射(XRD)、透射电子显微镜(TEM)、电子自旋共振(ESR)、拉曼光谱(Raman)、X射线光电子能谱(XPS)和同步辐射(XAFS)等表征,证明了CoS2/MoS2在H2氛围下煅烧形成Co9S8/MoS2的过程中,CoS2中Co的配位模式从部分八面体向Co9S8中的四面体转变,这种转变可活化MoS2的惰性平面,从而使其更有利于吸附H*.除此之外,接触角数据表明:该催化剂具有良好的亲水性,有利于电解液渗透及气体分子的迅速扩散,从而促进HER反应速率.由于异质结构间具有强烈的相互作用,该催化剂可表现出良好的结构稳定性.本工作基于Co9S8/MoS2异质结构的成功构筑及对其HER催化机理的充分探讨,为后续硫化物异质结及其在电催化中的应用提供了良好的思路和研究基础.  相似文献   

4.
尤运城  曾甜  刘劲松  胡廷松  台国安 《化学进展》2015,27(11):1578-1590
类石墨烯过渡金属硫属化合物如MoS2、WS2、MoSe2、WSe2等因为具有层数依赖的带隙结构而受到了广泛关注。尤其是本征态的WS2为双极性半导体,它同时具有n型和p型电输运特性,有望在电子电路、存储器件、光电探测和光伏器件方面得以广泛应用。近年来,化学气相沉积技术已经被广泛用于制备大面积二维硫属化合物(如MoS2, MoSe2, WS2 和WSe2)原子层薄膜。目前关于其他二维材料体系的综述文献介绍较多,但是针对WS2介绍的综述文献还鲜有报道。因此,本文综述了类石墨烯WS2薄膜的化学气相沉积法制备和相关器件的国内外研究进展,讨论了WS2薄膜的化学气相沉积法制备机理及生长因素如硫粉含量、载气的成分、反应温度、基底材料等对薄膜成膜质量的影响,介绍了WS2薄膜在晶体管、光电器件及与其他二维材料构成的异质结构器件的最新研究成果,并对可能存在的问题进行了分析和述评。  相似文献   

5.
唐美瑶  王岩岩  申赫  车广波 《化学进展》2018,30(11):1646-1659
作为二维(2D)过渡金属硫族化合物(TMDs)的成员之一,MoS2因其独特的物理化学性质及在自然界中丰富的含量成为目前研究最广泛的一种半导体。凭借超薄的层状结构和可调控的禁带宽度,单层和多层的二维MoS2纳米材料在众多研究领域都备受关注。基于溶液法的合成工艺(如超声辅助液相剥离和湿化学合成法)有望实现大规模、高产量地制备二维MoS2纳米材料,更重要的是,基于溶液法合成的二维MoS2纳米材料便于作为模板或者载体来制备功能性复合纳米材料,有利于进一步提升其在相关应用中的性能。本文重点介绍了基于溶液制备二维MoS2纳米材料的各种合成方法,同时特别关注了溶液法制备的二维MoS2复合纳米材料及其在光、电催化方面的应用,并展望了溶液法合成二维MoS2及其复合材料的应用前景和挑战。  相似文献   

6.
目前,生态污染和能源短缺成为威胁人类生存的全球性问题,绿色、低碳的光催化技术对解决环境及能源问题具有战略性意义。作为三元奥里维里斯型(Aurivillius)化合物,Bi2MoO6凭借独特的层状结构引起研究者的广泛关注。然而,由于高的载流子复合率限制了其在光催化技术中的应用。本文重点总结概括对Bi2MoO6基光催化剂性能改性的策略,如表面结构调控、缺陷工程、金属沉积、构建异质结及光敏化处理。在诸多改性策略中重点论述Bi2MoO6基异质结的构建对光催化性能的影响。并对Bi2MoO6基光催化剂当前在光催化技术中面临的挑战及未来的发展前景进行展望,为加快Bi2MoO6基光催化剂的发展提供新思路。  相似文献   

7.
利用半导体作为催化剂,将水光催化还原为H2,为缓解全球能源危机以及环境污染问题提供了一种经济环保的途径。优化调控载流子动力学行为对提高半导体光催化分解水还原为绿色燃料-H2的活性具有十分重要的意义。目前,基于半导体异质结效应或局域表面等离激元共振的敏化过程来设计和调控半导体基异质结构体系已成为调控载流子动力学行为的一种经典策略。然而,通过精细设计异质结构,合理耦合上述敏化过程,实现载流子动力学的级联调制,从而获得高效的光催化产H2活性仍然任重道远。在本文中,我们通过原位氧化(g-C3N4的剥离和Ag2S)和还原(Ag)反应,将等离激元Ag纳米颗粒(NPs)和两种不同的半导体Ag2SNPs和g-C3N4纳米片(NSs)组装在电纺TiO2纳米纤维(NFs)中,形成了一种新型四元异质组分纳米纤维(HNFs)体系。结合时间分辨光致发光光谱,3D时域有限差分模拟以及对照实验,我们...  相似文献   

8.
采用巨正则蒙特卡洛(GCMC)及分子动力学(MD)方法探讨了石墨烯/碳纳米管三维骨架结构(GNHS)对等摩尔CO2/CH4二元混合物的吸附分离性能. 模拟结果表明CO2比CH4更易吸附于GNHS中, GNHS与(6, 6)SWCNT (单壁碳纳米管)相比具有更高的分离性能. 随着温度升高, CO2的吸附量快速降低, 而CH4的吸附量则呈现出先升高后降低的趋势. 最后采用分子动力学方法计算了CO2与CH4的自扩散系数及停留时间等动力学相关参数, 发现CO2在GNHS内扩散的阻力更大. 而各组分在吸附剂外部吸附层内的扩散过程对混合物的分离也存在一定影响.  相似文献   

9.
氨及其产物在储氢、农业和工业上都不可或缺,与此同时环境问题日益受到关注,二氧化碳零排放、低电能消耗的电催化固氮已经成为世界各国能源发展的重要战略目标.本工作中,从生物固氮酶中的Fe-Mo-S辅助因子获得灵感,一锅法合成了FeS2/MoS2双金属硫化物催化剂,用于电化学氮还原(NRR).FeS2/MoS2催化剂由纳米片构筑形成的纳米花形貌,增大了催化剂的活性表面积.并且FeS2/MoS2双金属硫化物之间的协同作用和异质界面有助于界面间电子转移,提高催化剂的活性.对FeS2/MoS2催化剂在0.1mol·L-1 HCl电解质中进行电化学氮还原测试,-0.2V (νs.RHE)下氨产率最高可达(11.3±0.18)μg·h-1·mg-1,法拉第效率为(5.29±0.12)%.在酸性介质中既表现出良好的NRR活性也展示出极好的稳定性.这为进一步探索具有异质...  相似文献   

10.
赵路超  曹蓉  夏杰桢  吴琪 《化学通报》2023,86(5):543-550,542
二硫化钼(MoS2)已成为电化学析氢反应(HER)中铂催化剂的廉价替代品。1T-MoS2是MoS2的金属相,由于其具有优异的导电性和更多的电化学活性位点,因此成为了比2H-MoS2更具前景的理想催化剂材料。本文综述了1T相MoS2的制备及在HER中的应用。首先,比较了1T-MoS2和2H-MoS2几何结构及电子结构的差异,从“自上而下”及“自下而上”的角度概述了1T-MoS2常用制备方法,总结1T-MoS2及1T-MoS2基材料在HER领域的应用;最后指出现阶段关于1T-MoS2的研究中仍存在的一些关键问题。  相似文献   

11.
提高光催化分解水制氢的效率是能量转换领域的关键挑战。本研究首先合成了二维多孔氮化碳(PCN),然后在二维PCN上原位生长了一维W18O49 (WO),形成了一种新型的梯形(S型)异质结。该异质结可以加快界面电荷的分离和转移,赋予WO/PCN体系更好的氧化还原能力。此外,具有多孔结构的PCN提供了更多的催化活性位点。与WO和PCN相比,20% WO/PCN复合材料具有更高的H2产率(1700 μmol·g-1·h-1),是PCN (30 μmol·g-1·h-1)的56倍。本研究提供了一种新S型光催化剂用于光催化制氢领域。  相似文献   

12.
随着工业技术的飞速发展,大量有机污染物被应用于生活的各个领域,由此带来了严重的环境问题。众所周知,半导体光催化技术是一种有效且环境友好的降解去除典型污染物的方法,而光催化剂在该技术的应用中起着关键作用。因此,在光催化污染物降解领域,人们已经尝试研究了各种半导体材料。其中石墨相氮化碳(g-C3N4)是近年来公认的“明星”材料之一。因其独特的二维层状结构和良好的可见光响应而引起了人们的极大兴趣。由于带隙较窄(~2.7 eV)、能带结构可调以及良好的物理化学稳定性,g-C3N4对太阳光谱的吸收可达450 nm,具有一定的可见光光催化性能。然而,g-C3N4在去除抗生素和染料方面的降解效率仍然存在不足,例如光生电荷的快速复合以及空穴的氧化能力弱等。为了优化这种有前景的光催化材料,人们尝试了多种方法来改善g-C3N4的电子能带结构,例如金属/非金属元素掺杂、形貌调控和官能团修饰等。最近,人们提出了由两种N型半导体光催化剂组成的梯形异质结理念,它可以利用半导体材料更正的价带和更负的导带。相关结果表明,构筑梯形异质结是提高g-C3N4光催化活性的最有效方法之一。因此,本文通过简单的原位溶剂热生长法制备了新型0D/2D Bi4V2O11/g-C3N4梯形异质结光催化剂。Bi4V2O11/g-C3N4复合材料对去除土霉素(OTC)和活性红染料展示出了优异的光催化活性。尤其是BVCN-50复合材料对OTC和活性红的降解效率高达74.1%和84.2%,该过程的主要活性物种为·O2-。大幅增强的光催化性能归因于Bi4V2O11和g-C3N4之间形成的梯形异质结保持了光催化体系的强氧化还原能力(Bi4V2O11的强氧化能力和g-C3N4的强还原能力),并促进了光生电荷的空间分离。此外,金属Bi0的表面等离子共振效应可以拓宽异质结系统的光吸收范围。此外,基于高效液相色谱-质谱联用(LC-MS)分析,我们研究了OTC降解过程中可能的中间体和降解路径。这项工作为设计和制备g-C3N4基梯形异质结用于抗生素和活性染料降解提供了一种新的策略。  相似文献   

13.
Sustainable photocatalytic H2 evolution has attracted extensive attention in recent years because it can address both energy shortage and environmental pollution issues. In particular, metal sulfide solid-solution photocatalysts have been widely applied in photocatalytic hydrogen generation owing to their excellent light harvesting properties, narrow enough band gap, and suitable redox potentials of conduction and valance bands. However, it is still challenging to develop low-cost and high-efficiency sulfide solid-solution photocatalysts for practical photocatalytic hydrogen evolution. Recently, 1D MnxCd1-xS nanostructures have shown superior light absorption, charge separation, and H2-evolution activity owing to their shortened diffusion pathway of carriers and high length-to-diameter ratios. Thus, 1D MnxCd1-xS nanostructures have been applied in photocatalytic H2 evolution. However, a single MnxCd1-xS photocatalyst still has some disadvantages for photocatalytic H2 evolution, such as the rapid recombination of photogenerated electron-hole pairs and low quantum efficiency. Herein, to further boost the separation of photogenerated charge carriers and H2-evolution kinetics, an in situ solvothermal method was used to synthesize the 1D/2D Schottky-based heterojunctions between the Mn0.2Cd0.8S nanorods (MCS NRs) and Ti3C2 MXene nanosheets (NSs). Furthermore, various characterization methods have been used to investigate the crucial roles and underlying mechanisms of metallic Ti3C2 MXene NSs in boosting the photocatalytic H2 evolution over the Mn0.2Cd0.8S nanorods. X-ray Diffraction (XRD), Transmission Electron Microscope (TEM), High Resolution Transmission Electron Microscopy (HRTEM), element mapping images, and X-ray Photoelectron Spectroscopy (XPS) results clearly demonstrate that hybrid low-cost Schottky-based heterojunctions have been successfully constructed for practical applications in photocatalytic H2 evolution. Additionally, the photocatalytic hydrogen evolution reaction (HER) was also carried out in a mixed solution of Na2SO3 and Na2S using as the sacrificial agents. The highest hydrogen evolution rate of the optimized 1D/2D Schottky-based heterojunction is 15.73 mmol·g-1·h-1, which is 6.72 times higher than that of pure MCS NRs (2.34 mmol·g-1·h-1). An apparent quantum efficiency of 19.6% was achieved at 420 nm. The stability measurements of the binary photocatalysts confirmed their excellent photocatalytic stability for practical applications. More interestingly, the UV-Vis diffuse reflection spectra, photoluminescence (PL) spectrum, transient photocurrent responses, and Electrochemical Impedance Spectroscopy (EIS) Nyquist plots clearly confirmed the promoted charge separation between the MCS NRs and Ti3C2 MXene NSs. The linear sweep voltammetry also showed that the loading of MXene cocatalysts could greatly decrease the overpotential of pure MCS NRs, suggesting that the 2D Ti3C2 NSs could act as an electronic conductive bridge to improve the H2-evolution kinetics. In summary, these results show that the 2D/1D hybrid Schottky-based heterojunctions between metallic Ti3C2 MXene NSs and MCS NRs can not only improve the separation of photogenerated electrons and holes but also decrease the H2-evolution overpotential, thus resulting in significantly enhanced photocatalytic H2 generation. We believe that this study will inspire new ideas for constructing low-cost Schottky-based heterojunctions for practical applications in photocatalytic H2 evolution.   相似文献   

14.
析氧反应(OER)被认为是电解水的关键限制步骤,已被广泛作为清洁能源方式用于解决能源和环境问题。钙钛矿氧化物(ABO3)具有可调的电子结构、高灵活性的元素组成,能在OER中表现出良好的催化活性。然而,钙钛矿氧化物的合成通常需要经历长时间的高温,极易导致金属的聚集和影响材料的本征活性。气相微波技术可以显著缩短热处理时间,从而减少相关的碳排放。这项技术不仅解决了对碳中性过程日益增长的需求,而且还增加了对合成的控制,以避免产品的不良团聚。本文采用微波热冲法快速制备了二维(2D)多孔La0.2Sr0.8CoO3钙钛矿。伴随微波过程的快速熵增可以有效地暴露La0.2Sr0.8CoO3结构中丰富的活性位点。此外,高能微波冲击过程可以精准地将Sr2+引入到LaCoO3的晶格中,通过增加Co的氧化态来增加氧空位量。这种锶元素取代镧引入的氧空位能极大提高催化剂的本征催化活性。对于碱性电解液中的OER应用,制备的La0.2Sr0.8CoO3在10 mA∙cm−2下展现出了360 mV的过电位,Tafel斜率为76.6 mV∙dec−1。且在经历30000秒的长时间循环测试后仍能维持初始电流密度的97%。这项研究为高活性二维钙钛矿的合成提供了一种简便、快速的策略。  相似文献   

15.
S型异质结不但可以提高载流子的分离效率,还可以维持较强的氧化还原能力。因此,构建S型异质是提高光催化二氧化碳还原反应的有效途径。本研究通过静电自组装法构建了具有近红外光响应(> 780 nm)的二维BiOBr0.5Cl0.5纳米片和一维WO3纳米棒S型异质结光催化剂,并用于高效还原二氧化碳。能带位置和界面电子相互作用的综合分析表明:在光催化二氧化碳还原反应过程中,BiOBr0.5Cl0.5/WO3遵循S型电子转移路径;不仅提高了载流子的高效分离,还维持了两相(BiOBr0.5Cl0.5和WO3)较高的氧化还原能力。此外,二维纳米片/一维纳米棒的结构使得半导体之间具备良好的界面接触,有利于载流子的分离,且暴露更多的活性位点,最终提高催化效率。结果显示,BiOBr0.5Cl0.5/WO3异质结催化剂表现出较高的CO2还原能力和CO选择性,CO的产率高达16.68 μmol∙g-1∙h-1,分别是BiOBr0.5Cl0.5的1.7倍和WO3的9.8倍。本工作为构建S型二维/一维异质结光催化剂高效还原二氧化碳提供了新的思路。  相似文献   

16.
S-scheme heterojunction is a major breakthrough in the field of photocatalysis. In this study, NiS2 and MoSe2 were prepared by a typical solvothermal method, and compounded by an in situ growth method to construct an S-scheme heterojunction. The obtained composite showed excellent performance in photocatalytic hydrogen evolution; the hydrogen production rate was approximately 7 mmol·h-1·g-1, which was 2.05 times and 2.44 times those of pure NiS2 and MoSe2, respectively. Through a series of characterizations, it was found that NiS2 and MoSe2 coupling can enhance the light absorption intensity, which is vital for the light reaction system. The efficiency of electron-hole pair separation is also among the important factors restricting photocatalytic reactions. Compared with pure NiS2 and MoSe2, NiS2/MoSe2 exhibited a higher photocurrent density, lower cathode current, and lower electrochemical impedance, which proves that the NiS2/MoSe2 complex can effectively promote photogenerated electron transfer. Simultaneously, the lower emission intensity of fluorescence indicated effective inhibition of electron-hole recombination in the NiS2/MoSe2 complex, which is favorable for the photocatalytic hydrogen evolution reaction. Further, scanning electron microscopy (SEM) and transmission electron microscopy (TEM) showed that MoSe2 is an amorphous sample surrounded by the NiS2 nanomicrosphere, which greatly increased the contact area between the two, thus increasing the active site of the reaction. Secondly, as a photosensitizer, Eosin Y (EY) effectively enhanced the absorption of light by the catalyst in the photoreaction system. Meanwhile, during sensitization, electrons were provided to the catalyst, which effectively improved the photocatalytic reaction efficiency. The establishment of S-scheme heterojunctions contributed to improving the redox capacity of the reaction system and was the most important link in the photocatalytic hydrogen reduction of aquatic products. It was also the main reason for the improvement of the hydrogen evolution effect in this study. The locations of the conduction band and valence band of NiS2 and MoSe2 were determined by Mott-Schottky plots and photon energy curves, and further proved the establishment of the S-scheme heterojunction. This work provides a new reference for studying the S-scheme heterojunction to effectively improve the photocatalytic hydrogen production efficiency.   相似文献   

17.
Photocatalytic reduction of carbon dioxide into chemical fuels is a promising route to generate renewable energy and curtail the greenhouse effect. Therefore, various photocatalysts have been intensively studied for this purpose. Among them, g-C3N4, a 2D metal-free semiconductor, has been a promising photocatalyst because of its unique properties, such as high chemical stability, suitable electronic structure, and facile preparation. However, pristine g-C3N4 suffers from low solar energy conversion efficiency, owing to its small specific surface area and extensive charge recombination. Therefore, designing g-C3N4 (CN) nanosheets with a large specific surface area is an effective strategy for enhancing the CO2 reduction performance. Unfortunately, the performance of CN nanosheets remains moderate due to the aforementioned charge recombination. To counter this issue, loading a cocatalyst (especially a two-dimensional (2D) one) can enable effective electron migration and suppress electron-hole recombination during photo-irradiation. Herein, CN nanosheets with a large specific surface area (97 m2·g-1) were synthesized by a two-step calcination method, using urea as the precursor. Following this, a 2D/2D FeNi-LDH/g-C3N4 hybrid photocatalyst was obtained by loading a FeNi layered double hydroxide (FeNi-LDH) cocatalyst onto CN nanosheets by a simple hydrothermal method. It was found that the production rate of methanol from photocatalytic CO2 reduction over the FeNi-LDH/g-C3N4 composite is significantly higher than that of pristine CN. Following a series of characterization and analysis, it was demonstrated that the FeNi-LDH/g-C3N4 composite photocatalyst exhibited enhanced photo-absorption, which was ascribed to the excellent light absorption ability of FeNi-LDH. The CO2 adsorption capacity of the FeNi-LDH/g-C3N4 hybrid photocatalyst improved, owing to the large specific surface area and alkaline nature of FeNi-LDH. More importantly, the introduction of FeNi-LDH on the CN nanosheet surface led to the formation of a 2D/2D heterojunction with a large contact area at the interface, which could promote the interfacial separation of charge carriers and effectively inhibit the recombination of the photogenerated electrons and holes. This subsequently resulted in the enhancement of the CO2 photo-reduction activity. In addition, by altering the loading amount of FeNi-LDH for photocatalytic performance evaluation, it was found that the optimal loading amount was 4% (w, mass fraction), with a methanol production rate of 1.64 μmol·h-1·g-1 (approximately 6 times that of pure CN). This study provides an effective strategy to improve the photocatalytic CO2 reduction activity of g-C3N4 by employing 2D layered double hydroxide as the cocatalyst. It also proposes a protocol for the successful design of 2D/2D photocatalysts for solar energy conversion.   相似文献   

18.
由于正交相五氧化二铌(T-Nb2O5)为ReO3型层状结构,锂、钠离子可以在其(001)平面快速脱嵌,而在[001]方向的传输一般较难。本研究通过原位透射电子显微镜(Transmission Electron Microscope,TEM)方法研究钠在T-Nb2O5纳米片(001)面内及[001]方向的钠离子电化学嵌入行为,发现由于纳米片晶体存在大量的位错和畴界,钠离子可通过这些缺陷穿越(001)面扩散,并进而在深层的(001)面内快速扩散。同时,本研究还发现刚合成的T-Nb2O5纳米片在[001]方向上存在调制结构,存在交替分布的压应变和张应变区域,而钠离子的嵌入可以调节这些应变分布。  相似文献   

19.
随着现代社会智能化的加速发展,传感系统中传感器的数量、密度和分布范围不断增加,传统的供能方式难以满足如此复杂多变的传感器供能需求,从周围环境中收集能量并转化为电能的自供能传感器件是解决这一难题的有效途径。石墨烯不仅具有优异的传感性能,而且在各种能源器件中有广泛的应用,这为基于石墨烯的自供能传感器件设计提供了便利。近年来,人们已经研究和发展了多种多样的石墨烯自供能传感器件。本文基于自供能器件的基本能量供给原理,包括电化学供能、光伏供能、摩擦电供能、水伏供能以及热电、压电、热释电等其它供能,分别介绍了石墨烯在自供能传感器件中的应用,并展望了基于石墨烯的自供能传感器件的未来发展、挑战和前景。  相似文献   

20.
由于水分解在绿色能源领域的重要作用,能够在碱性介质中进行析氢(HER)和析氧(OER)反应的双功能电催化剂具有重要的应用价值。本文报道一种具有丰富缺陷的表面改性NiCo2O4纳米线(NWs),在碱性介质中作为一种高效的整体水裂解电催化剂。X射线光电子能谱(XPS)分析表明,Co2+/Co3+比值的增加是表面修饰NiCo2O4纳米线具有优异双功能电催化性能的重要原因。结果表明,在1.0 mol·L-1 KOH溶液中,通过有机配体主导的表面改性,优化后的NiCo2O4纳米线在电流密度达到10 mA·cm-2时的HER过电位仅为83 mV,OER过电位仅为280 mV。更重要的是,有机配体表面改性后的NiCo2O4纳米线表现出了出色的水分解性能,在2.1 V电压下达到了100 mA·cm-2的电流密度。目前的工作凸显了提高NiCo2O4 NWs尖晶石结构中Co2+含量对促进整体水裂解的重要性。  相似文献   

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