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1.
以水热法并进一步焙烧合成脊椎状NiCo2O4纳米棒,通过透射电子显微镜(TEM)、X射线衍射仪(XRD)、X射线光电子能谱仪(XPS)和热重分析仪(TG)等来表征其结构形态及热稳定性.采用线性扫描法(LSV)、循环伏安(CV)研究所制备催化剂的在玻碳和旋转圆盘电极上的电催化活性:在0.1 mol·L-1 KOH溶液中的电催化析氧反应(OER)和电催化氧还原反应(ORR).研究结果表明,所制备的脊椎状NiCo2O4纳米棒有大量的不饱和态,200℃焙烧制备的脊椎状NiCo2O4纳米棒析氧过电位最小可达309 mV,Tafel斜率145.6 mV/dec,其氧还原极限电流密度在1600 rmp可达到5.095 mA·cm-2,电子转移数在3.2~3.8之间,接近四电子转移机理,其优良电化学性能可能是由于暴露了更多的边缘缺陷的缘故.  相似文献   

2.
以偏钨酸铵为钨源, 铁黄(FeOOH)为载体, 将表面包覆法与原位还原碳化技术相结合, 制备出了具有核壳结构的碳化钨(WC)/碳化二钨(W2C)纳米复合材料; 应用X射线衍射(XRD)分析、透射电子显微镜(TEM)和X射线能量散射谱(EDS)等手段对不同阶段样品的晶相、形貌、微结构和化学组成等特征进行了表征. 结果表明, 负载体经煅烧后, 载体及包裹层的物相均发生了变化, 形貌也相应地发生了改变; 经盐酸处理及还原碳化后, 样品由WC和W2C纳米颗粒构成, 并构成了以W2C为壳, 以WC为核的典型核壳结构; 结合表征结果对核壳结构的形成机理进行了探讨. 采用三电极体系循环伏安法测试了样品在酸性、中性和碱性溶液中对甲醇的电催化氧化活性. 结果表明, 与颗粒状碳化钨和介孔空心球状碳化钨相比, 样品的电催化活性有了明显的提高. 这说明W2C与WC构成核壳结构纳米复合材料后, 其电化学性能有了明显的提升, 核壳结构纳米复合材料是提高碳化钨催化材料活性的有效途径之一.  相似文献   

3.
采用浸渍沉淀法制备出WO3-碳纳米管(WO3-CNTs)纳米复合材料, 微波辅助乙二醇法在其表面负载活性成分Pt, 得到纳米Pt/WO3-CNTs 催化剂. 采用X射线衍射(XRD), 透射电子显微镜(TEM)和X射线光电子能谱(XPS)等测试手段对催化剂的结构和形貌进行表征, 结果表明Pt 纳米粒子为面心立方晶体结构, 粒径大小在3-5 nm之间, 均匀地分布在WO3-CNTs 纳米复合材料表面, 同时发现催化剂中的Pt 主要以金属态的形式存在. 采用循环伏安和计时电流法研究了在酸性溶液中Pt/WO3-CNTs 催化剂对甲醇的电催化氧化性能, 结果表明Pt/WO3-CNTs 催化剂比用硝酸处理的碳纳米管载铂催化剂(Pt/CNTs)对甲醇呈现出更高的电催化氧化活性和抗CO中毒性能.  相似文献   

4.
以Ni (Ac)2·4H2O和生物质材料丝瓜络为原料,通过先浸渍后热解的方法制备了低成本的镍纳米颗粒/丝瓜络衍生氮掺杂多孔碳纳米复合材料(Ni/T-dNPCN)。研究复合材料对甲醇的电催化性能,并讨论热解温度对复合材料结构和性能的影响。结果表明,Ni/T-dNPCN修饰玻碳电极(GCE)在碱性条件下对甲醇氧化反应(MOR)具有良好的电催化活性。其中,800℃煅烧得到的Ni/T-dNPCN800/GCE对1 mol·L-1甲醇具有最低的起始电位(0.344 V (vs Ag/AgCl))、最高的催化电流密度(质量活性:1 902 mA·mgNi-1;比活性:1.61 mA·cm-2)和最快的动力学反应过程(Tafel斜率:50.23 mV·dec-1),其催化活性约为商业化Pt/C/GCE的3.92倍。且计时电流测试表明,Ni/T-dNPCN800/GCE具有良好的稳定性。  相似文献   

5.
采用静电纺丝-溶胶凝胶法,以SnCl2、InCl3、聚乙烯吡咯烷酮(PVP)等为原料,乙醇胺为水解控制剂,合成了超细氧化铟锡(ITO)纳米纤维及富氧缺陷的ITO纳米颗粒。采用透射电子显微镜(TEM)、选区电子衍射(SAED)、扫描电子显微镜(SEM)、热重分析(TGA)、X射线衍射(XRD)、X射线电子能谱(XPS)、四探针电阻仪,系统研究了超细ITO纤维及颗粒的形貌、晶型、氧缺陷及导电性能。在400℃空气煅烧后,纤维中的PVP高分子骨架发生热分解,获得超细、多孔ITO纳米纤维,晶型为立方相。进一步升高煅烧温度至800℃,ITO纳米纤维转变为富氧缺陷的纳米颗粒,晶格氧空位含量高达38.9%。随着煅烧温度升高,Sn4+掺入到In2O3晶格中,发生晶格膨胀,晶面间距增大。煅烧温度由400℃升高至800℃,未发生立方相向六方相的转变,晶型稳定,晶粒尺寸从32 nm生长到44 nm,晶格应变(ε0)从1.42×10-2减小至1.04×10-2,应变诱导的晶格弛豫逐渐减小。此外,高温煅烧可抑制In2O3晶粒(111)晶面的增长,随着In2O3的(400)与(222)晶面比值(I(400)/I(222))的增加,ITO电导率逐渐升高。在800℃获得的ITO纳米晶粒导电率最高。  相似文献   

6.
碳纳米管/SnO2复合电极的制备及其电催化性能研究   总被引:4,自引:0,他引:4  
采用液相沉积法制备碳纳米管(CNTs)/SnO2复合材料, 并制备成电极, 分别与石墨/SnO2及活性炭/SnO2复合电极比较, 考察电催化降解有机废水的性能. 由于CNTs高的比表面积及优良的导电性能, 结合SnO2良好的催化活性, CNTs/SnO2复合电极电催化降解有机废水性能优越. 研究发现, CNTs的预处理情况、SnO2负载量以及煅烧温度对复合电极的电催化性能有重要影响. 当功能化CNTs负载40% SnO2, 煅烧温度600 ℃时, 所得CNTs/SnO2复合电极电催化降解有机废水的能力是纯CNTs电极的2倍. 最后, 初步探讨了CNTs/SnO2复合电极电催化降解有机废水的机理.  相似文献   

7.
采用水热法以Hummers氧化法制备的氧化石墨和钛酸四丁酯为原料制备了部分还原的氧化石墨烯/二氧化钛(RGO/TiO2)复合光催化剂, 并研究了该复合材料在可见光以及紫外光下对亚甲基蓝的光催化降解活性.结果表明, 通过改变反应温度和氧化石墨加入量可以调控TiO2的晶相组成及其在复合材料中的分散性; 在水热反应过程中氧化石墨烯发生了部分还原; 所制备的RGO/TiO2复合材料的可见光和紫外光催化活性均高于纯TiO2; 部分还原的氧化石墨烯在复合材料中担当载体和电子受体, 同时可以使TiO2的初始吸收边向可见光区域红移, 增强了TiO2在可见光区域的吸收, 能有效提高对目标污染物的吸附性和光催化降解活性.  相似文献   

8.
利用液相沉淀法可控合成了均匀的棒状CuFe4Ox催化剂。通过原位X射线粉末衍射(XRD)、高分辨透射电子显微镜(TEM)及程序升温还原(TPR)等手段表征其晶相结构、形貌和还原性能。通过还原棒状CuFe4Ox获得Cu0/Fe3O4 纳米棒,原位X射线光电子能谱(XPS)用于确定Cu0/Fe3O4 表面的相组成。通过液相沉淀法制备棒状CuFe4Ox,在120℃保持3 h后加入Na2CO3溶液至pH等于9时所得棒状形貌最为规整。以异戊醇脱氢反应作为探针反应,比较了Cu0/Fe3O4 纳米棒和Cu0/Fe3O4 纳米颗粒的催化反应性能,发现Cu0/Fe3O4 纳米棒比Cu0/Fe3O4 纳米粒子具有更好的活性和稳定性,表明棒状Fe3O4 担载的Cu纳米粒子具有更好的结构稳定性。  相似文献   

9.
采用溶胶-凝胶法制备了一系列La1-xSrxNi1-yFeyO3 (x=0, 0.1, 0.2, 0.5; y=0~1.0)型的钙钛矿催化剂, 以活性碳为载体, PTFE乳液为粘接剂制备双功能氧电极. 对催化剂进行了XRD结构分析以及SEM分析和BET比表面积测量. 采用三电极体系测试了氧电极的稳态极化曲线和电化学交流阻抗谱并对其阴极极化和阳极极化的交流阻抗谱图进行分析. 通过等效电路的拟合研究了该系列双功能氧电极氧还原反应的工作机理. 实验表明对于LaNiO3化合物, B位掺杂可显著提高催化剂的电催化性能; 电极氧还原反应的极化主要由电荷转移反应和Nernstian扩散过程造成. 通过各个电极对于催化分解H2O2的分解速率常数的测定得知, Ni离子对于催化H2O2分解反应的活性大于Fe离子, 继续在对于氧还原反应和氧析出反应都具有较高电催化活性的LaNi0.8Fe0.2O3催化剂上进行A位掺杂Sr离子后显著提高了催化剂分解H2O2的催化活性, 主要是因为氧空位的增多和金属离子d电子含量的降低有利于催化分解H2O2的活性的提高, 但由于氧空位的增多导致催化剂电导率的降低, 所以其电催化活性降低了. 通过多圈循环伏安扫描的测试, 催化剂LaNi0.8Fe0.2O3有很好的稳定性.  相似文献   

10.
利用液相沉淀法可控合成了均匀的棒状CuFe4Ox催化剂。通过原位X射线粉末衍射(XRD)、高分辨透射电子显微镜(TEM)及程序升温还原(TPR)等手段表征其晶相结构、形貌和还原性能。通过还原棒状CuFe4Ox获得Cu0/Fe3O4纳米棒,原位X射线光电子能谱(XPS)用于确定Cu0/Fe3O4表面的相组成。通过液相沉淀法制备棒状CuFe4Ox,在120℃保持3 h后加入Na2CO3溶液至pH等于9时所得棒状形貌最为规整。以异戊醇脱氢反应作为探针反应,比较了Cu0/Fe3O4纳米棒和Cu0/Fe3O4纳米颗粒的催化反应性能,发现Cu0/Fe3O4纳米棒比Cu0/Fe3O4纳米粒子具有更好的活性和稳定性,表明棒状Fe3O4担载的Cu纳米粒子具有更好的结构稳定性。  相似文献   

11.
Highly methanol-tolerant CoSe nanoparticles supported on different carbon substrates were synthesized by microwave heating of glycerol solutions of cobalt(II) acetate and sodium selenite at different Se/Co mole ratios in the presence of different concentrations of acetic acid and ammonia. The resulting CoSe catalysts were used for the electrochemical oxygen reduction reaction (ORR) in acidic solution in the presence of methanol. The ORR activity of the catalyst was increased by increasing its Se content up to 50?mol%. The presence of acetic acid or ammonia in the synthesis solution significantly affects the electrocatalytic performance of the CoSe catalyst; highest activity was observed when the catalyst was synthesized at NH3/Co(II) mole ratio of 6. Among the catalysts prepared on different supports including carbon black (Vulcan XC-72R), and nanoporous carbons synthesized from resorcinol-formaldehyde and phloroglucinol-formaldehyde resins, the one supported on the carbon prepared from the last resin exhibited highest electrocatalytic activity for ORR.  相似文献   

12.
Perovskite‐type oxides based on rare‐earth metals containing lanthanum manganate are promising catalysts for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) in alkaline electrolyte. Perovskite‐type LaMnO3 shows excellent ORR performance, but poor OER activity. To improve the OER performance of LaMnO3, the element cobalt is doped into perovskite‐type LaMnO3 through a sol–gel method followed by a calcination process. To assess electrocatalytic activities for the ORR and OER, a series of LaMn1?xCoxO3 (x=0, 0.05, 0.1, 0.2, 0.3, 0.4, and 0.5) perovskite oxides were synthesized. The results indicate that the amount of doped cobalt has a significant effect on the catalytic performance of LaMn1?xCoxO3. If x=0.3, LaMn0.7Co0.3O3 not only shows a tolerable electrocatalytic activity for the ORR, but also exhibits a great improvement (>200 mV) on the catalytic activity for the OER; this indicates that the doping of cobalt is an effective approach to improve the OER performance of LaMnO3. Furthermore, the results demonstrate that LaMn0.7Co0.3O3 is a promising cost‐effective bifunctional catalyst with high performance in the ORR and OER for application in hybrid Li?O2 batteries.  相似文献   

13.
Carbon-supported Pd nanocubes with the size of 30, 10 and 7 nm were prepared and their electrocatalytic activity towards the oxygen reduction reaction (ORR) in alkaline solution was studied. For comparison carbon-supported spherical Pd nanoparticles and commercial Pd/C catalyst were used. The catalysts were characterised by transmission electron microscopy, electro-oxidation of carbon monoxide and cyclic voltammetry and the ORR activity was evaluated using the rotating disk electrode method. The ORR on all studied Pd/C catalysts proceeded via four-electron pathway where the rate-limiting step was the transfer of the first electron to O2 molecule. The specific activity of Pd nanocubes was more than two times higher than that of spherical Pd nanoparticles and increased with increasing the particle size.  相似文献   

14.
Metal (cobalt)/nitrogen codoped carbon was first fabricated by pyrolysis of coordinated “noncarbonizable” polymer as bifunctional catalyst for ORR and HER, which showed better electrocatalytic performances than most bifunctional doped carbon catalysts in alkaline electrolyte.  相似文献   

15.
Nonprecious metal catalysts for the oxygen reduction reaction are the ultimate materials and the foremost subject for low‐temperature fuel cells. A novel type of catalysts prepared by high‐pressure pyrolysis is reported. The catalyst is featured by hollow spherical morphologies consisting of uniform iron carbide (Fe3C) nanoparticles encased by graphitic layers, with little surface nitrogen or metallic functionalities. In acidic media the outer graphitic layers stabilize the carbide nanoparticles without depriving them of their catalytic activity towards the oxygen reduction reaction (ORR). As a result the catalyst is highly active and stable in both acid and alkaline electrolytes. The synthetic approach, the carbide‐based catalyst, the structure of the catalysts, and the proposed mechanism open new avenues for the development of ORR catalysts.  相似文献   

16.
A systematic study on the electrocatalytic properties of Pt nanoparticles supported on nitrobenzene-modified graphene (Pt-NB/G) as catalyst for oxygen reduction reaction (ORR) in alkaline solution was performed. Graphene nanosheets were spontaneously grafted with nitrophenyl groups using 4-nitrobenzenediazonium salt. The electrocatalytic activity towards the ORR and stability of the prepared catalysts in 0.1 M KOH solution have been studied and compared with that of the commercial Pt/C catalyst. The results obtained show that the NB-modified graphene nanosheets can be good Pt catalyst support with high stability and excellent electrocatalytic properties. The specific activity of Pt-NB/G for O2 reduction was 0.184 mA cm−2, which is very close to that obtained for commercial 20 wt% Pt/C catalyst (0.214 mA cm−2) at 0.9 V vs. RHE. The Pt-NB/G hybrid material promotes a four-electron reduction of oxygen and can be used as a promising cathode catalyst in alkaline fuel cells.  相似文献   

17.
The construction of nano-scale hybrid materials with a smart interfacial structure, established by using rare earth oxides and carbon as building blocks, is essential for the development of economical and efficient catalysts for oxygen reduction reactions (ORRs). In this work, hexagonal La2O3 nanocrystals on a nitrogen-doped porous carbon (NPC) derived from crop radish, served as building bricks, are prepared by chemical precipitation and then calcination at elevated temperatures. The obtained La2O3/NPC hybrid exhibits a very high ORR activity with a half-wave potential of 0.90 V, exceeding that of commercial Pt/C (0.83 V). Both DFT theoretical and experimental results have verified that the significantly enhanced catalytic performance is ascribed to the formation of the C−O−La covalent bonds between carbon and La2O3. Through the covalent bonds, electrons can transfer from the carbon to La2O3 and occupy the unfilled eg orbital of the La2O3 phase. This results in the accelerated adsorption of active oxygen and the facilitated desorption of the surface hydroxides (OHad), thereby promoting the ORR over the catalyst.  相似文献   

18.
本文采用溶胶凝胶法制备了一系列不同Ca含量的钙钛矿型氧化物La1-xCaxMnO3(x=0~0.4)纳米颗粒,X射线粉末衍射及精修、扫描电镜表征显示其相纯度和结晶度高,颗粒平均粒径约40 nm。在0.1 mol.L-1KOH水溶液中进行的氧还原电催化性能测试显示,La0.7Ca0.3MnO3样品催化活性最高,表观电子转移数接近4,还原电流密度与Pt/C催化剂相当,而催化稳定性优于Pt/C。进一步研究了La1-xCaxMnO3样品中Mn价态、晶胞参数的改变对氧还原催化活性的影响,结果表明当x=0.3时,催化剂中Mn处于混合价态,Mn-O键长适中,最有利于电催化反应。  相似文献   

19.
本文采用溶胶凝胶法制备了一系列不同Ca含量的钙钛矿型氧化物La1-xCaxMnO3(x=0~0.4)纳米颗粒, X射线粉末衍射及精修、扫描电镜表征显示其相纯度和结晶度高, 颗粒平均粒径约40 nm。在0.1 mol·L-1 KOH水溶液中进行的氧还原电催化性能测试显示, La0.7Ca0.3MnO3样品催化活性最高, 表观电子转移数接近4, 还原电流密度与Pt/C催化剂相当, 而催化稳定性优于Pt/C。进一步研究了La1-xCaxMnO3样品中Mn价态、晶胞参数的改变对氧还原催化活性的影响, 结果表明当x=0.3时, 催化剂中Mn处于混合价态, Mn-O键长适中, 最有利于电催化反应。  相似文献   

20.
《Journal of Energy Chemistry》2017,26(6):1168-1173
Developing non-precious metal catalyst with high activity, good stability and low cost for electrocatalytic oxygen reduction reaction(ORR) is critical for the wide application of energy conversion system. Here, we developed a cost–effective synthetic strategy via silica assistance to obtain a novel Fe_3C/Fe–N_x–C(named as COPBP-PB-Fe-900-SiO_2) catalyst with effective active sites of Fe–N_xand Fe_3C from the rational design two-dimensional covalent organic polymer(COPBP-PB). The nitrogen-rich COP effectively promotes the formation of active Fe–N_x sites. Additionally, the silica not only can effectively suppress the formation of large Fe-based particles in the catalysts, but also increases the degree of carbonization of the catalyst.The as-prepared COPBP-PB-Fe-900-SiO_2 catalyst exhibits high electrocatalytic activity for ORR with a halfwave potential of 0.85 V vs. reversible hydrogen electrode(RHE), showing comparable activity as compared with the commercial Pt/C catalysts in alkaline media. Moreover, this catalyst also shows a high stability with a nearly constant onset potential and half-wave potential after 10,000 cycles. The present work is highly meaningful for developing ORR electrocatalysts toward wide applications.  相似文献   

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