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1.
采用溶胶-凝胶法制备了ZnO微米颗粒,电沉积Pt合成了Pt-ZnO/C复合材料。利用X射线衍射仪(XRD)和扫描电子显微镜(SEM)对产物的晶型和形貌进行了表征,并利用循环伏安法(CV)研究了所得复合材料对甲醇和乙醇的电催化活性。实验结果表明,该催化剂在ZnO的质量分数为50%时对甲醇和乙醇氧化的电催化活性最好。
  相似文献   

2.
硅磷酸铝分子筛催化羧酸的酯化反应研究   总被引:3,自引:0,他引:3  
黄奇伟  张世英 《分子催化》2003,17(6):417-420
用新型硅磷酸铝分子筛和改性的硅磷酸铝分子筛催化脂肪族羧酸与脂肪族醇的酯化反应,以正戊酸分别与正丙醇、正丁醇、正戊醇和正辛醇以及正辛醇分别与乙酸、丙酸、正丁酸、正戊酸和正己酸的酯化反应作为探针实验进行了系统研究,实验结果显示,改性的硅磷酸铝分子筛比不改性的硅磷酸铝分子筛具有更高的酯化催化活性,实验发现,反应物的结构对酯化反应产生了显著的影响,文章揭示了新型硅磷酸铝分子筛和改性的硅磷酸铝分子筛对于羧酸的直接酯化反应的系列规律性。  相似文献   

3.
采用甲醛还原、H2还原、肼还原三种方法制备了添加硅钼酸的PtMoSi/C阳极催化剂, 并用XRD、XPS和TEM技术对催化剂进行了表征. XRD表明Pt粒子呈立方面心晶态结构, TEM显示PtMoSi/C催化剂粒径小(3−4 nm), 分布窄, 分散性好. XPS分析可知Pt主要以0价, Mo主要以6价, Si主要以4价形态存在于催化剂中. 同时通过循环伏安法和线性扫描法考察了制备方法和添加硅钼酸对催化剂电化学活性的影响. 结果表明, 甲醛还原法制备的PtMoSi/C催化剂(Pt、Mo的原子比为3:1)对甲醇氧化的电化学性能和抗中毒性能优于自制的PtRu/C和E-TEK PtRu/C催化剂, 可能是因为添加硅钼酸可以使活性组分的分散度提高, 从而提高了催化剂的活性和抗毒性能.  相似文献   

4.
CO2作为一种可循环再生的C1资源和氧资源,具有储量丰富、廉价易得、安全无毒等诸多优点,可以通过多相热催化技术转化为醇类等高值化学品和燃料,引起了学术研究与产业应用领域研究者的广泛关注.其中,设计与制备兼具高活性、高选择性和高稳定性的CO2加氢催化剂是关键挑战.近年来,关于CO2加氢合成醇类的催化剂结构设计已有许多研究报道,并在典型的金属基和氧化物基催化剂上均取得了显著的进步.因此,本综述详细分析了CO2加氢制甲醇和乙醇等醇类化学品的基元反应步骤、反应机理等,并从各类活性金属、金属氧化物、碳化物和硫化物等组分的结构特点、催化性能及构效关系等方面进行了归纳和分析,阐释了目前CO2加氢制醇类领域面临的主要挑战,并对未来的发展趋势进行了展望.  相似文献   

5.
超临界CO2中醇类的分子氧氧化   总被引:1,自引:0,他引:1  
本文以催化剂体系为主线,介绍了超临界二氧化碳中以分子氧代替化学计量氧化荆的醇类清洁氧化技术的研究进展.分析了所研究的催化剂体系的催化性能,主要有钯、铂、钌、金等金属催化剂以及杂多酸催化剂体系;介绍了超临界二氧化碳体系中相行为的影响.指出超临界二氧化碳中醇类清洁氧化技术的研究才刚刚起步,其中高效催化剂体系的开发是超临界二氧化碳中醇类清洁氧化技术能否工业化的关键.  相似文献   

6.
合成了一种多级孔芳香骨架材料(PAF-70); 使用由氨基修饰过的单体, 应用该合成策略得到了同样具有窄分布介孔的含有氨基活性位点的PAF材料, 并通过硫脲单体与其氨基活性位点的反应, 将硫脲基团引入PAF-70材料中, 获得了含有硫脲催化位点的材料(PAF-70-thiourea). 氮气吸附-脱附测试结果显示, PAF-70存在孔径分布较窄的介孔, 介孔孔径为3.8 nm, 与模拟计算值(约3.7 nm)吻合. 热重分析结果表明, PAF-70具有很高的热稳定性. PAF-70在大多数溶剂中可以稳定存在, 具有良好的化学稳定性. 将PAF-70-thiourea作为催化剂, 应用在N-溴代琥珀酰亚胺(NBS)氧化醇类的反应中, 其表现出较高的催化活性、 较高的稳定性和广泛的底物适用性. 与含有相同硫脲催化位点的金属有机框架(MOF)材料(IRMOF-3-thiourea)作为催化剂对比, 进一步证实PAFs材料非常适合作为催化有机反应的固载平台.  相似文献   

7.
分子氧选择性氧化醇类的研究进展   总被引:1,自引:0,他引:1  
综述了分子氧化剂的醇类液相催化氧化的新进展。分别介绍了均相催化、水/有机两相催化、氟两相催化和液固多相催化体系。重点讨论了精细有机合成中有广泛应用前景的绿色氧化方法。预测了均相催化剂的多相化是今后工业化发展的趋势。  相似文献   

8.
田涛  刘英  张勋高 《催化学报》2015,(8):1358-1364
采用均匀沉积-沉淀法制备了氧化铜修饰羟基磷灰石负载金催化剂(Au/CuO-HAP),并用原子吸收光谱、N2吸附脱附、X射线粉末衍射、透射电镜和X射线光电子能谱等方法对催化剂结构和形貌进行了表征.考察了催化剂对醇类液相需氧氧化的催化性能.与单金属Au/HAP或CuO-HAP相比较,双金属Au/CuO-HAP对苯甲醇氧化的催化活性和苯甲醛的选择性有显著提高,120 oC反应1.5 h,苯甲醇的转化率和苯甲醛的选择性分别达到99.7%和98.4%.在Au/CuO-HAP的催化下,其它类型的芳香醇均可高选择性转化为相应的醛或酮. Au/CuO-HAP催化剂有很好的稳定性和可回收性,4次回收后,其催化活性没有明显变化.  相似文献   

9.
通过电化学循环伏安法将硅钼酸修饰到Pt/C催化剂表面, 比较了硅钼酸修饰对Pt/C催化剂上CO、甲醇及乙醇电氧化反应的影响. CO消除伏安测试结果表明, 用硅钼酸修饰后的Pt/C催化剂上吸附的CO的起始氧化电势和峰电势, 与修饰前相比分别降低了80和60 mV, 表明修饰后Pt/C催化剂的抗CO性能有明显提高. 对于甲醇的电氧化反应, 硅钼酸的修饰不仅提高了甲醇电氧化的电流密度, 而且降低了甲醇的起始氧化电势, 促进了中间氧化产物的脱除;而在乙醇的电氧化反应中, 硅钼酸修饰虽对Pt/C催化剂上乙醇的起始氧化电势没有影响, 但能增加乙醇电氧化的电流密度.  相似文献   

10.
Esterification of carboxylic acid with equimolar amount alcohol can be efficiently catalyzed by biphasic 4-(benzylamino) formoyldiphenylammonium triflate (BDPAT,3) in good yield. The catalyst can be easily recovered without loss of activity.  相似文献   

11.
实现绿色甲醇电解制氢需要高效的双功能催化剂。本文采用热处理结合乙二醇还原法成功制备了MoP-NC纳米球负载的超细Pt纳米粒子(平均粒径为2.53 nm)复合催化剂(Pt/MoP-NC)用于高效甲醇电解制氢。MoP-NC纳米球不仅能提高Pt纳米粒子的分散性并且增强Pt的抗中毒能力。电化学测试表明Pt/MoP-NC催化剂在酸性甲醇氧化反应(MOR)和析氢反应(HER)中具有较高的催化性能;其中,MOR的正向扫描峰值电流密度为90.7 mA∙cm−2,是商业Pt/C催化剂的3.2倍,在10 mA∙cm−2的电流密度下,HER的过电位低至30 mV,与商业Pt/C接近。由Pt/MoP-NC||Pt/MoP-NC组装的两电极电解槽驱动10 mA∙cm−2的电流密度仅需要0.67 V的电压,比相同条件下电解水的电压低1.02 V,大大降低了能量输入。Pt/MoP-NC的高催化性能主要来源于Pt活性中心与相邻层状多孔球形结构的MoP-NC载体之间电子效应及配体效应引起的抗一氧化碳中毒能力的提升和含氧物种的容易生成。  相似文献   

12.
Lithium (Li)-based batteries are the dominant energy source for consumer electronics, grid storage, and electrified transportation. However, the development of batteries based on graphite anodes is hindered by their limited energy density. With its ultrahigh theoretical capacity (3860 mAh∙g−1), low redox potential (−3.04 V), and satisfactorily low density (0.54 g∙cm−3), Li metal is the most promising anode for next-generation high-energy-density batteries. Unfortunately, the limited cycling life and safety issues raised by dendrite growth, unstable solid electrolyte interphase, and "dead Li" have inhibited their practical use. An effective strategy is to develop a suitable lithiophilic matrix for regulating initial Li nucleation behavior and controlling subsequent Li growth. Herein, single-atom cobalt coordinated to oxygen sites on graphene (Co-O-G SA) is demonstrated as a Li plating substrate to efficiently regulate Li metal nucleation and growth. Owing to its dense and more uniform lithiophilic sites than single-atom cobalt coordinated to nitrogen sites on graphene (Co-N-G SA), high electronic conductivity, and high specific surface area (519 m2∙g−1), Co-O-G SA could significantly reduce the local current density and promote the reversibility of Li plating and stripping. As a result, the Co-O-G SA based Li anodes exhibited a high Coulombic efficiency of 99.9% at a current density of 1 mA∙cm−2 with a capacity of 1 mAh∙cm−2, and excellent rate capability (high current density of 8 mA∙cm−2). Even at a high plating capacity of 6 mAh∙cm−2, the Co-O-G SA electrode could stably cycle for an ultralong lifespan of 1300 h. In the symmetric battery, the Co-O-G SA based Li anode (Co-O-G SA/Li) possessed a stable voltage profile of 18 mV for 780 h at 1 mA∙cm−2, and even at a high current density of 3 mA∙cm−2, its overpotential maintained a small hysteresis of approximately 24 mV for > 550 h. Density functional theory calculations showed that the surface of Co-O-G SA had a stronger interaction with Li atoms with a larger binding energy, −3.1 eV, than that of Co-N-G SA (−2.5 eV), leading to a uniform distribution of metallic Li on the Co-O-G SA surface. More importantly, when matched with a sulfur cathode, the resulting Co-O-G SA/lithium sulfur full batteries exhibited a high capacity of 1002 mAh∙g−1, improved kinetics with a small polarization of 191 mV, and an ultralow capacity decay rate of 0.036% per cycle for 1000 cycles at 0.5C (1C = 1675 mA∙g−1) with a steady Coulombic efficiency of nearly 100%. Therefore, this work provides novel insights into the coordination environment of single atoms for the chemistry of Li metal anodes for high-energy-density batteries.  相似文献   

13.
探索非贵金属材料作为高效氧还原反应催化剂是迫切需要的,但具有一定的挑战性。本文采用等离子体轰击和酸洗相结合的策略合成了Co原子团簇修饰的多孔碳载体催化剂(CoAC/NC)。通过多种表征手段证实了的原子团簇特征。所得到的CoAC/NC催化剂在三电极体系和锌-空电池方面都表现出优异的氧还原反应活性。该催化剂的氧还原反应半波电位为0.887 V,显著优于商业Pt/C催化剂,且表现出优异的稳定性。此外,该催化剂组装的锌-空电池的峰值功率密度为181.5 mW∙cm−2,同样远高于Pt/C催化剂。这项工作不仅合成了一种高效的氧还原反应催化剂,而且为原子团簇催化剂的理性设计和实际应用提供了新的见解。  相似文献   

14.
With the rapid development of human society, clean energy forms are imperative to sustain the normal operations of various mechanical and electrical facilities under a cozy environment. Hydrogen is considered among the most promising clean energy sources for the future. Recently, electrochemical water splitting has been considered as one of the most efficient approaches to harvest hydrogen energy, which generates only non-pollutant water on combustion. However, the sluggish anodic oxygen evolution reaction significantly restricts the efficiency of water splitting and requires a relatively high cell voltage to drive the electrolysis. Therefore, seeking a thermodynamically favorable anodic reaction to replace the sluggish oxygen evolution reaction by utilizing highly active bifunctional electrocatalysts for the anodic reaction and hydrogen evolution are crucial for achieving energy-efficient hydrogen production for industrial applications. Nevertheless, it is known that the oxygen evolution reaction can be replaced with other useful and thermodynamically favorable reactions to reduce the electrolysis voltage for realizing energy-efficient hydrogen production. Therefore, in this study, we present a bifunctional nickel nanoparticle-embedded carbon (Ni@C) prism-like microrod electrocatalyst synthesized via a two-step method involving the synthesis of a precursor metal-organic framework-74 and subsequent carbonization treatment for methanol oxidation and hydrogen evolution. The interfacial structure consisting of a nickel and carbon skeleton was realized via in situ carbonization. However, the dispersed nickel nanoparticles do not easily aggregate owing to the partition by the surrounding carbon as it would sufficiently expose the active Ni sites to the electrolytes, ensuring fast charge transfer between the catalyst and electrolytes by accelerating the electrochemical kinetics. In the anodic methanol oxidation, the products were detected as carbon dioxide and formate with faradaic efficiencies of 36.2% and 62.5%, respectively, at an applied potential of 1.55 V. Meanwhile, the Ni@C microrod catalyst demonstrated high activity and durability (2.7% current decay after 12 h of continuous operation) toward methanol oxidation, which demonstrates that methanol oxidation precedes oxidation under voltage forces. Notably, the bifunctional catalyst not only exhibits excellent performance toward methanol oxidation but also yields a low overpotential of 155 mV to drive 10 mA∙cm−2 toward hydrogen evolution in 1.0 mol∙L−1 KOH aqueous solution with 0.5 mol∙L−1 methanol at room temperature, which guarantees the hydrogen production efficiency. More importantly, the constructed two-electrode electrolyzer produced a current density of 10 mA∙cm−2 at a low cell voltage of 1.6 V, which decreased by 240 mV after replacing the oxygen evolution reaction with methanol oxidation.  相似文献   

15.
燃料电池作为一种清洁高效的能量转换装置,被认为是构建未来社会可再生能源结构的关键一环。不同于质子交换膜燃料电池(PEMFC),碱性聚合物电解质燃料电池(APEFC)的出现使非贵金属催化剂的使用成为可能,因而受到了日益广泛的关注和研究。APEFC的关键结构是膜电极,主要由聚合物电解质膜和阴阳极(含催化层、气体扩散层)组成,膜电极是电化学反应发生的场所,其优劣直接决定着电池性能的好坏。因此,基于现有的碱性聚合物电解质及催化剂体系,如何构筑更加优化的膜电极结构,使APEFC发挥出更高的电池性能是亟待开展的研究。本文首先通过模板法在碱性聚合物电解质膜的表面构建出有序的锥形阵列,再将具有阵列结构的一侧作为阴极来构筑膜电极,同时,作为对比,制备了由无阵列结构的聚合物电解质膜构筑而成的膜电极,最后对基于两种不同膜电极的APEFC的电化学性能进行了对比研究。实验结果表明,锥形阵列结构可以将APEFC的峰值功率密度由1.04 W·cm-2显著提高到1.48 W·cm-2,这主要归因于在APEFC的阴极侧具有锥形阵列结构的聚合物电解质膜的亲水性的提升和催化剂电化学活性面积的增加。本工作为碱性聚合物电解质燃...  相似文献   

16.
电解水是一种常用的制氢方法,但高能耗的阳极析氧反应(OER)阻碍了其应用。尿素氧化反应(UOR)具有较低的热力学电势,是最有前景的OER替代反应之一。过渡金属基水滑石具有独特的层状结构和层间阴离子可交换等优点,被认为是性能优异的UOR催化剂,然而目前大多数研究主要聚焦于后过渡金属元素。该研究通过一步法制备了具有前/后过渡金属的CoV-LDHs纳米片。与相同方法制备的Co(OH)2相比,CoV-LDHs纳米片具有以下优点:1)纳米片结构有利于暴露更多的活性位点。2) V的引入增强了CoV-LDHs的亲水性,提高了其本征电催化动力学。3) Co (3d74s2)和V (3d34s2)之间的d-电子补偿效应有利于促进尿素的吸附。因此,CoV-LDHs仅需要1.52 V (vs. RHE) 就可以达到10 mA∙cm−2的电流密度,比Co(OH)2低了70 mV,同时CoV-LDHs较低的塔菲尔斜率表明了其较快的反应动力学。此外,CoV-LDHs在连续反应10 h后,驱动电位几乎没有增加,表明其具有良好的稳定性。该研究结果不仅证明了前/后过渡金属之间的d-电子补偿效应可以提高UOR催化性能,还为设计高效的UOR催化剂提供了可行的途径。  相似文献   

17.
通过循环伏安法电沉积使直径约为7 nm的Pt纳米粒子均匀地分散于多孔硅表面, 拟用作微型质子交换膜燃料电池的催化电极. 与刷涂法相比较, 电沉积Pt纳米粒子的多孔硅电极(Pt/Si)呈现出高的Pt利用率和增强的电催化活性. 当Pt载量为0.38 mg•cm−2时, 其电化学活性比表面积高达148 cm2•mg−1, 是刷涂相近质量的纳米Pt/C催化剂的多孔硅电极Pt-C/Si的2倍多;该修饰电极对甲醇氧化也呈现了增强的催化性能和好的稳定性, 在0.5 V(vs SCE)极化1 h后电流密度为4.52 mA•cm−2, 而刷涂了相近Pt量的Pt-C/Si电极的电流密度只有0.36 mA•cm−2.  相似文献   

18.
The tliree-dimensional copper-doped zeolitic imidazolate framework ZIF-8(Cu^Ⅱ/ZIF-8) was prepared by a metal ion exchange process, using reaction of three different copper salts, zinc nitrate hexahydrate[Zn(NO)3·6H2O] and 2?methylimidazole(2-MelM) under nitrogen atmosphere at the room temperature. The TEM and PXRD results indicated that the morphology of Cu^Ⅱ/ZIF-8 was rhombic dodecahedron and the structure was intact after copper was doped into the porous ZIF-8. The synthesized Cu(NO3)2/ZIF-8 heterogeneous catalyst showed an excellent activity for tlie aerobic oxidation of primary alcohols employing molecular oxygen as oxidant. Moreover, tlie Cu(NO3)2/ZIF-8 heterogeneous catalyst can cycled 15 times without leaching of copper.  相似文献   

19.
The designs of efficient and inexpensive Pt-based catalysts for methanol oxidation reaction (MOR) are essential to boost the commercialization of direct methanol fuel cells. Here, the highly catalytic performance PtFe alloys supported on multiwalled carbon nanotubes (MWCNTs) decorating nitrogen-doped carbon (NC) have been successfully prepared via co-engineering of the surface composition and electronic structure. The Pt1Fe3@NC/MWCNTs catalyst with moderate Fe3+ feeding content (0.86 mA/mgPt) exhibits 2.26-fold enhancement in MOR mass activity compared to pristine Pt/C catalyst (0.38 mA/mgPt). Furthermore, the CO oxidation initial potential of Pt1Fe3@NC/MWCNTs catalyst is lower relative to Pt/C catalyst (0.71 V and 0.80 V). Benefited from the optimal surface compositions, the anti-corrosion ability of MWCNT, strong electron interaction between PtFe alloys and MWCNTs and the N-doped carbon (NC) layer, the Pt1Fe3@NC/MWCNTs catalyst presents an improved MOR performance and anti-CO poisoning ability. This study would open up new perspective for designing efficient electrocatalysts for the DMFCs field.  相似文献   

20.
发展了基于超分子化学的新方法实现了对石墨炔的原位氮掺杂,通过利用石墨炔与有机共轭分子间强的ππ作用,原位制备了石墨炔/卟吩复合材料薄膜,并用作锂离子电池的负极材料,其比容量增加到了1000 mAh∙g−1,该复合材料表现出优良的倍率性能和循环稳定性,为可控制备掺氮石墨炔复合材料提供了新的思路。  相似文献   

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