首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 78 毫秒
1.
目前,为了有效解决电化学能量转化反应动力学过程缓慢和商业化应用等问题,需要大力提高催化剂的电催化活性和稳定性,并大幅降低贵金属催化剂的用量.通常,铂(Pt)基催化剂对燃料电池的氧还原反应(ORR)和水电解过程的氢析出反应(HER)表现出很高的活性.然而,对于高效的金属-空气电池和水电解装置,其中的氧析出反应(OER)则需要高活性的非Pt电催化剂来降低电化学过电位及提高其对高电位的耐受性.虽然相较于Pt催化剂,IrO2和RuO2等贵金属催化剂表现出了更高的OER活性,然而,它们的稳定性差,难以满足实际应用需求,严重阻碍了其在金属-空气电池和水电解中的应用.通常,Pt对OER的低效催化主要归因于在OER电催化过程中Pt与电解液直接接触,导致Pt表面快速被氧化,形成Pt氧化物(Pt^+4O2和Pt^+2O)层.形成的Pt氧化物对OER不起催化作用,从而降低了Pt的利用率和总的水电解效率.为了避免Pt表面的快速氧化,实现高的OER性能,我们将Pt金属纳米粒子有效地限域在超薄功能多孔碳层内.前期,已有大量的有关金属基ORR和HER催化剂研究证明,这种策略对于稳定金属纳米颗粒非常有效,可有效避免金属催化剂的快速氧化,而且还可抑制金属颗粒迁移和团聚;此外,还有利于增强催化剂的导电性和离子物种的扩散能力,从而提高催化剂的电催化性能.然而,要达到提高金属催化剂OER电催化性能的目的,还需要设计一种具有优良结构的功能化异质原子掺杂多孔碳基限域材料.金属有机框架(MOF),特别是MOF-253,由于具有较高的柔韧性、丰富的孔、可控的几何结构和高比表面积,被认为是制备功能多孔碳基限域材料的理想前驱体.为此,通过结合功能多孔碳基材料的限域作用及MOF-253和超细Pt纳米单晶的优势,本文合成了MOF-253衍生氮掺杂碳(N/C)限域的Pt纳米单晶(Pt@N/C)核壳型电催化剂.制备的Pt-N-C框架不仅具有超薄的氮掺杂活性多孔碳保护层壳体(平均厚度为0.51 nm),还有具高度分散和稳定化的Pt纳米单晶核体;值得指出的是,因受到碳层的限域作用,即使经900℃的高温处理,Pt纳米单晶仍保持了较小的晶体尺寸(平均粒径仅为6.7 nm);此外,该催化剂的Pt载量较低,仅为6.1wt%(Pt@N/C-10).将其作为OER电催化剂,表现出优异的OER性能:在10 mA cm^-2电流密度下,其过电位仅为298 mV,低于商业IrO2催化剂(353 mV);而且,经2000周加速电位扫描后,其电位仅降低19.4 mV,也低于IrO2(23.3 mV).本文很好地证明了通过构建空间限域结构可以有效解决Pt等金属催化剂因表面氧化而导致OER动力学活性和稳定性低的问题.  相似文献   

2.
氮掺杂碳载非贵金属氧还原反应(ORR)催化剂已被广泛研究,以解决燃料电池Pt基催化剂的高成本问题.通过溶剂热法制备了无定形Zn基金属有机框架,并进一步经热处理得到Zn/N共掺杂碳催化剂.测试表明ZnN/C-900催化剂(热处理温度为900C)具有形貌均一的球形特征且比表面积高达961 m2·g-1,N、Zn的原子含量分...  相似文献   

3.
目前,为了有效解决电化学能量转化反应动力学过程缓慢和商业化应用等问题,需要大力提高催化剂的电催化活性和稳定性,并大幅降低贵金属催化剂的用量.通常,铂(Pt)基催化剂对燃料电池的氧还原反应(ORR)和水电解过程的氢析出反应(HER)表现出很高的活性.然而,对于高效的金属-空气电池和水电解装置,其中的氧析出反应(OER)则需要高活性的非Pt电催化剂来降低电化学过电位及提高其对高电位的耐受性.虽然相较于Pt催化剂,IrO2和RuO2等贵金属催化剂表现出了更高的OER活性,然而,它们的稳定性差,难以满足实际应用需求,严重阻碍了其在金属-空气电池和水电解中的应用.通常,Pt对OER的低效催化主要归因于在OER电催化过程中Pt与电解液直接接触,导致Pt表面快速被氧化,形成Pt氧化物(Pt+4O2和Pt+2O)层.形成的Pt氧化物对OER不起催化作用,从而降低了Pt的利用率和总的水电解效率.为了避免Pt表面的快速氧化,实现高的OER性能,我们将Pt金属纳米粒子有效地限域在超薄功能多孔碳层内....  相似文献   

4.
质子交换膜燃料电池(PEMFCs)因具有工作温度低、结构紧凑、无腐蚀、启动快和灵活性好等优点,受到人们广泛关注.但其工作时动力学迟缓且易受CO毒化影响,往往需要负载Pt等贵金属催化剂,导致PEMFCs的成本高昂,阻碍了其商业化应用.为提高Pt贵金属的利用率,通常将Pt负载在载体材料上来提高Pt的分散性以减少Pt颗粒集聚...  相似文献   

5.
温和条件下将CO2电催化还原(CO2RR)为高能量密度燃料和高附加值碳产品是降低大气中CO2浓度、储存间歇性可再生能源、实现碳中和的重要途径之一。设计和开发对电催化CO2RR兼具高活性、高选择性、高稳定性、且对析氢反应(HER)具有显著抑制作用的高性能廉价催化剂是CO2RR研究的关键。单原子催化剂(SACs)由于其独特的电子结构和几何结构对许多重要化学反应(如CO氧化反应、加氢反应、析氧反应、氧还原反应、析氢反应等)显示出优异的催化活性而广受关注。近年来,N掺杂多孔碳载体过渡金属单原子催化材料(M-N-C)显示出对电化学二氧化碳还原的广阔前景、并有望成为在水相电解质中还原CO2的贵金属(Au,Ag)催化剂的替代品。本文从单原子催化材料M-N-C的制备、影响电催化性能的因素及MNx活性基团三个方向介绍了单原子催化剂M-N-C电催化CO2RR的研究现状和进展。最后,就目前该方向研究中尚待解决的问题进行了总结、并对下一步的研究进行了展望。  相似文献   

6.
用于煤气化CO2还原反应的一种催化剂   总被引:1,自引:0,他引:1  
  相似文献   

7.
工业规模的化石能源消耗导致大气中二氧化碳含量不断增加,CO2转化利用成为人们日益关注的热点问题. 金属铜因其成本低廉、储量丰富,并且具有独特的CO2亲和力能够生成多碳化合物,是目前CO2电还原中研究最为广泛深入的电极材料. 由于阴、阳离子的特征吸附对Cu电极性能有显著影响,并且不同反应体系中对Cu电极上CO2吸附、活化影响也有所不同,因此导致金属Cu电极上报道的电催化活性、产物种类与选择性等都非常宽泛. 基于此,有必要系统地研究各种反应条件对金属Cu电极电催化CO2还原性能的影响. 作者选择了平均粒径为600 nm的商品化金属Cu颗粒作为电还原CO2的催化剂,研究了不同反应条件包括各种常用电解质溶液、KHCO3的浓度以及H型电解池和流动池. 实验结果表明,浓度为0.5 mol·L -1的KHCO3作为电解质溶液具有较好催化活性和较高的产物分电流密度,流动池可以进一步提高主要产物甲酸盐和CO的分电流密度. 本研究工作从反应条件的角度对CO2还原的电催化转化进行了系统研究,有助于理解电解液和反应器等因素对CO2电还原反应过程的影响规律.  相似文献   

8.
双原子位点M-N-C催化剂是催化CO2还原反应(CO2RR)性能最佳的催化剂之一. 然而, 目前的研究主要集中于M-N-C活性中心原子类型的调控, 低估了活性位点的配位模式及分布对其催化性能的影响. 本文选取典型的双原子位点M-N-C催化剂(NiFe-N-C)为研究对象, 采用密度泛函理论方法探究了9种活性位点具有不同配位环境的NiFe-N-C催化剂电催化CO2RR的反应机理. 结果表明, 随着金属原子配位数、 双原子位点间距离的增加, M-N-C催化剂的稳定性、 催化CO2还原至CO的活性及抑制氢析出反应的选择性均呈现先升高后下降的趋势. 其中, 金属原子四配位且对称分布的NiFe-N-C-model 3催化剂, 因其双原子位点的强相互作用表现出最优的催化性能.  相似文献   

9.
在太阳光驱动下,将温室气体CO2还原为燃料分子有望解决人类社会面临的环境污染和能源危机问题.此外,CO通常被用作C1源进行精细化学品制备.因此,开发高活性光催化体系将CO2高选择性还原到CO具有重要科学和实用意义.光催化体系主要由光敏剂、催化剂和电子给体构成,其中光敏剂作为光吸收中心和电子转移桥梁在光催化进程中扮演着极其重要的角色.半个多世纪以来,贵金属配合物光敏剂(如[Ru(bpy)3]2+)因其良好的可见光吸收能力和适中的氧化还原能力,被广泛用于光催化CO2还原体系中.然而,贵金属配合物存在光化学稳定性较差、难以回收利用等问题,严重限制了其广泛应用.因此,开发高效、稳定且易于循环利用的贵金属光敏剂用于CO2光还原具有重要意义.本文采用溶剂热合成法,成功将[Ru(bpy)3]2+限域到金属有机框架中,通过调控钌配体的引入比例制得了一系列非均相钌基光敏剂(UiO-Ru-1,UiO-Ru-2和UiO-Ru-3).通过X射线衍射、高分辨场发射扫描电镜和高分辨场发射透射电镜等技术证明了UiO-Ru的结构和形貌(正八面体).将UiO-Ru用于光催化CO2还原,以四联吡啶铁作为催化剂,UiO-Ru-2表现出极高的敏化能力,在300W氙灯下反应8h,CO的产率可达171mmol/g,同时选择性达到100%,是目前活性较高的光催化CO2还原体系之一.该体系中,UiO-Ru-2循环利用三次,其催化效率没有明显衰减,表明其具有良好的光催化稳定性和可循环利用性.值得注意的是,钌含量增加(UiO-Ru-3)或者降低(UiO-Ru-1)催化活性均有所下降.为解释这一现象,本文利用稳态/瞬态光谱和电化学等技术手段对材料的光电化学性质进行了系统的研究.稳态光谱测试结果表明,随着Ru含量的增加,UiO-Ru的吸光和发光性能逐渐提升,但激发态寿命却在逐渐降低.此外,Ru含量增加会占据孔道,减小金属有机框架的孔径,阻碍底物和活性中心的接触.因此,UiO-Ru-2中钌光敏中心含量适中,较好地平衡了可见光吸收能力、激发态寿命和孔道大小之间的关系,使得其催化活性显著优于其它光敏剂(UiO-Ru-1和UiO-Ru-3).此外,本文利用瞬态吸收光谱和电化学深入研究了光催化机制和电子转移路径,将为高活性贵金属光敏剂异相化并用于构建高效、可持续的CO2还原体系提供重要借鉴.  相似文献   

10.
11.
Single site catalysts(SSCs) are a new type of heterogeneous catalysts formed by isolated metal atoms supported on kinds of substrates. SSCs have shown great potential for energy conversion and storage in recent years, especially for oxygen reduction reactions(ORR). Typically, SSCs are confined on the substrate by strong chemical interactions, such as coordination bonds. Therefore, the surface chemical environment and porous properties of the supports are crucial to the performance of SSCs. In recent years, COFs have become excellent candidates for preparing SSCs as they can precisely assemble monomers into highly ordered crystalline porous materials with a fine structure and definite components. In this review, we not only summarize the characteristics and advantages of COFs based SSCs, but also highlight the applications of COFs constructed from different single active sites for ORR in recent years. Finally, challenges in practical application, feasible strategies and perspectives are proposed for the of COFs based SSCs.  相似文献   

12.
The ensemble effect due to variation of Pd content in Pd−Au alloys have been widely investigated for several important reactions, including CO2 reduction reaction (CO2RR), however, identifying the stable Pd arrangements on the alloyed surface and picking out the active sites are still challenging. Here we use a density functional theory (DFT) based machine-learning (ML) approach to efficiently find the low-energy configurations of Pd−Au(111) surface alloys and the potentially active sites for CO2RR, fully covering the Pd content from 0 to 100 %. The ML model is actively learning process to improve the predicting accuracy for the configuration formation energy and to find the stable Pd−Au(111) alloyed surfaces, respectively. The local surface properties of adsorption sites are classified into two classes by the K-means clustering approach, which are closely related to the Pd content on Au surface. The classification is reflected in the variation of adsorption energy of CO and H: In the low Pd content range (0–60 %) the adsorption energies over the surface alloys can be tuned significantly, and in the medium Pd content (37-68 %), the catalytic activity of surface alloys for CO2RR can be increased by increase the Pd content and attributed to the meta-stable active site over the surface. Thus, the active site-dependent reaction mechanism is elucidated based on the ensemble effect, which provides new physical insights to understand the surface-related properties of catalysts.  相似文献   

13.
The development of a non-noble metal cathode ORR catalyst with low cost, high activity and high stability has become an inevitable trend in MFC. The purpose of this study is to develop an efficient and stable Cu, N-codoped porous carbons catalysts with multi-pore structure for MFC. Herein, Cu, N-codoped porous carbons materials (Cu−NC−T) with high N content and multi-pore structure were successfully developed by co-pyrolysis with MOF-199 and melamine. By contrast, Cu-doped porous carbon (Cu−C−T) without melamine was synthesized using MOF-199 as template. The results showed that Cu−NC−T possessed a rough octahedral crystal with a unique multi-mesopore structure with pore centers of 3.4 nm and 11.2 nm, respectively. Owing to high N content, abundantly exposed Cu−Nx active sites and the multi-pore structure, Cu−NC−800 had a pronounced electrochemical ORR activity in neutral solution (onset potential and limiting current density were 0.161 V and −6.256 mA ⋅ cm−2), which were slightly lower than 20 wt % Pt/C (0.189 V and −6.479 mA ⋅ cm−2). Moreover, the MFC with Cu−NC−800 showed a power density of 662.8±3.6 mW ⋅ m−2, which was higher than that of Cu−C−800 (425.7±3.9 mW ⋅ m−2) and was slightly lower than that 20 wt % Pt/C (815.0±6.2 mW ⋅ m−2). The output voltage of MFC with Cu−NC−T had no obvious decreasing trend in 30 days, demonstrating that the Cu−NC−T had great stability.  相似文献   

14.
Closing the anthropogenic carbon cycle by converting CO2 into reusable chemicals is an attractive solution to mitigate rising concentrations of CO2 in the atmosphere. Herein, we prepared Ni metal catalysts ranging in size from single atoms to over 100 nm and distributed them across N-doped carbon substrates which were obtained from converted zeolitic imidazolate frameworks (ZIF). The results show variance in CO2 reduction performance with variance in Ni metal size. Ni single atoms demonstrate a superior Faradaic efficiency (FE) for CO selectivity (ca. 97 % at −0.8 V vs. RHE), while results for 4.1 nm Ni nanoparticles are slightly lower (ca. 93 %). Further increase the Ni particle size to 37.2 nm allows the H2 evolution reaction (HER) to compete with the CO2 reduction reaction (CO2RR). The FE towards CO production decreases to under 30 % and HER efficiency increase to over 70 %. These results show a size-dependent CO2 reduction for various sizes of Ni metal catalysts.  相似文献   

15.
周睿  韩娜  李彦光 《电化学》2019,25(4):445-454
二氧化碳(CO2)作为一种经济、安全、可再生的碳资源化合物,其高效回收利用一直是全社会关注的焦点. 利用电化学方法,将CO2还原转化生成一系列高附加值的化学品或燃料,对于缓解能源与环境双重压力具有重要的现实意义. 本论文介绍了电化学CO2还原反应的基本原理与过程,综述了近年来铋基催化材料的发展现状,重点对这类催化材料的制备合成、结构调控、催化反应机理研究等方面进行了总结,最后对其未来发展方向进行了探讨与展望.  相似文献   

16.
Oxygen reduction reaction(ORR) is a significant reaction for energy conversion systems(such as fuel cells, metal-air batteries, etc.). It is an urgent need to develop cheap, durable and highly-active catalysts for efficient ORR. Hence, we report a metal-free nitrogen and sulfur co-doped porphyrin-based covalent organic framework(COF) as a high-efficiency ORR catalyst[the onset potential(Eo) is 0.79 V and the half-wave potential(E1/2) is 0.70 V]. The double doping of N and S atoms causes uneven charge distribution around carbon atoms, which can act as catalytic active centers, improving ORR activity. Compared with single-atom doping, double atoms doping exhibits a higher activity due to the synergistic effect between different elements. These results demonstrate that reasonable design of stable metal-free COFs with a high electrochemical activity can promote their wide applications.  相似文献   

17.
Xiao ZHAI  Yi DING 《物理化学学报》2017,33(7):1366-1378
燃料电池是将化学能直接转化为电能的能量转换装置,具有绿色、高效、便携等特点。对于大多数使用氧气或者空气为氧化剂的燃料电池而言,其阴极氧还原反应动力学缓慢、稳定性差是阻碍该技术走向商业化的主要因素,因此开发高催化活性和良好稳定性的低成本氧还原催化剂非常重要。基于脱合金法制得的纳米多孔金属是一类新型的宏观尺度纳米结构材料,其独特的开放型孔道结构、优良的导电性和结构的可调控性使其在电催化相关领域具有广泛的应用。本文侧重于讨论纳米多孔金属作为氧还原催化剂时所展示的一系列结构特性,及其在发展新一代高性能一体化燃料电池催化剂中所展示的机会。  相似文献   

18.
Metal oxides or sulfides are considered to be one of the most promising CO2 reduction reaction (CO2RR) precatalysts, owing to their electrochemical conversion in situ into highly active electrocatalytic species. However, further improvement of the performance requires new tools to gain fine control over the composition of the active species and its structural features [e.g., grain boundaries (GBs) and undercoordinated sites (USs)], directly from a predesigned template material. Herein, we describe a novel electrochemically driven cation exchange (ED‐CE) method that enables the conversion of a predesigned CoS2 template into a CO2RR catalyst, Cu2S. By means of ED‐CE, the final Cu2S catalyst inherits the original 3 D morphology of CoS2, and preserves its high density of GBs. Additionally, the catalyst's phase structure, composition, and density of USs were precisely tuned, thus enabling rational design of active CO2RR sites. The obtained Cu2S catalyst achieved a CO2‐to‐formate Faradaic efficiency of over 87 % and a record high activity (among reported Cu‐based catalysts). Hence, this study opens the way for utilization of ED‐CE reactions to design advanced electrocatalysts.  相似文献   

19.
Due to the increasing global energy demands, scarce fossil fuel supplies, and environmental issues, the pursued goals of energy technologies are being sustainable, more efficient, accessible, and produce near zero greenhouse gas emissions. Electrochemical water splitting is considered as a highly viable and eco-friendly energy technology. Further, electrochemical carbon dioxide (CO2) reduction reaction (CO2RR) is a cleaner strategy for CO2 utilization and conversion to stable energy (fuels). One of the critical issues in these cleaner technologies is the development of efficient and economical electrocatalyst. Among various materials, metal-organic frameworks (MOFs) are becoming increasingly popular because of their structural tunability, such as pre- and post- synthetic modifications, flexibility in ligand design and its functional groups, and incorporation of different metal nodes, that allows for the design of suitable MOFs with desired quality required for each process. In this review, the design of MOF was discussed for specific process together with different synthetic methods and their effects on the MOF properties. The MOFs as electrocatalysts were highlighted with their performances from the aspects of hydrogen evolution reaction (HER), oxygen evolution reaction (OER), and electrochemical CO2RR. Finally, the challenges and opportunities in this field are discussed.  相似文献   

20.
We present herein a Cp*Co(III)‐half‐sandwich catalyst system for electrocatalytic CO2 reduction in aqueous acetonitrile solution. In addition to an electron‐donating Cp* ligand (Cp*=pentamethylcyclopentadienyl), the catalyst featured a proton‐responsive pyridyl‐benzimidazole‐based N,N‐bidentate ligand. Owing to the presence of a relatively electron‐rich Co center, the reduced Co(I)‐state was made prone to activate the electrophilic carbon center of CO2. At the same time, the proton‐responsive benzimidazole scaffold was susceptible to facilitate proton‐transfer during the subsequent reduction of CO2. The above factors rendered the present catalyst active toward producing CO as the major product over the other potential 2e/2H+ reduced product HCOOH, in contrast to the only known similar half‐sandwich CpCo(III)‐based CO2‐reduction catalysts which produced HCOOH selectively. The system exhibited a Faradaic efficiency (FE) of about 70% while the overpotential for CO production was found to be 0.78 V, as determined by controlled‐potential electrolysis.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号