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首页> 外文期刊>Journal of Advanced Research >NiSn nanoparticle-incorporated carbon nanofibers as efficient electrocatalysts for urea oxidation and working anodes in direct urea fuel cells
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NiSn nanoparticle-incorporated carbon nanofibers as efficient electrocatalysts for urea oxidation and working anodes in direct urea fuel cells

机译:掺有NiSn纳米颗粒的碳纳米纤维作为尿素氧化的有效电催化剂和直接尿素燃料电池中的工作阳极

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Synthesis of NiSn alloy nanoparticle-incorporated carbon nanofibers was performed by calcining electrospun mats composed of nickel acetate, tin chloride and poly(vinyl alcohol) under vacuum. The electrochemical measurements indicated that utilization of tin as a co-catalyst could strongly enhance the electrocatalytic activity if its content and calcination temperature were optimized. Typically, the nanofibers prepared from calcination of an electrospun solution containing 15?wt% SnClsub2/sub at 700?°C have a current density almost 9-fold higher than that of pristine nickel-incorporated carbon nanofibers (77 and 9?mA/cmsup2/sup, respectively) at 30?°C in a 1.0?M urea solution. Furthermore, the current density increases to 175?mA/cmsup2/sup at 55?°C for the urea oxidation reaction. Interestingly, the nanofibers prepared from a solution with 10?wt% of co-catalyst precursor show an onset potential of 175?mV ( vs. Ag/AgCl) at 55?°C, making this proposed composite an adequate anode material for direct urea fuel cells. Optimization of the co-catalyst content to maximize the generated current density resulted in a Gaussian function peak at 15?wt%. However, studying the influence of the calcination temperature indicated that 850?°C was the optimum temperature because synthesizing the proposed nanofibers at 1000?°C led to a decrease in the graphite content, which dramatically decreased the catalyst activity. Overall, the study opens a new venue for the researchers to exploit tin as effective co-catalyst to enhance the electrocatalytic performance of the nickel-based nanostructures. Moreover, the proposed co-catalyst can be utilized with other functional electrocatalysts to improve their activity toward oxidation of different fuels.
机译:通过在真空下煅烧由乙酸镍,氯化锡和聚乙烯醇组成的电纺垫,可以合成掺入NiSn合金纳米颗粒的碳纳米纤维。电化学测量表明,如果优化锡的含量和煅烧温度,利用锡作为助催化剂可以大大增强电催化活性。通常,由包含15wt%SnCl 2 的电纺溶液在700°C下煅烧制得的纳米纤维的电流密度几乎比原始含镍碳纳米纤维的电流密度高9倍(77)。分别在30?C和1.0?M尿素溶液中达到9?mA / cm 2 。此外,在尿素氧化反应中,电流密度在55?C下增加到175?mA / cm 2 。有趣的是,由含10wt%助催化剂前体的溶液制备的纳米纤维在55°C下的起始电势为175?mV(相对于Ag / AgCl),从而使该复合材料成为直接尿素的合适阳极材料。燃料电池。优化助催化剂含量以使产生的电流密度最大化,会导致高斯函数峰达到15?wt%。但是,研究煅烧温度的影响表明最佳温度为850℃,因为在1000℃下合成所提出的纳米纤维会导致石墨含量的降低,从而大大降低了催化剂的活性。总体而言,该研究为研究人员利用锡作为有效的助催化剂以增强镍基纳米结构的电催化性能开辟了新的场所。此外,提出的助催化剂可以与其他功能性电催化剂一起使用,以提高其对不同燃料氧化的活性。

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