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首页> 外文期刊>Electrochimica Acta >Development of highly efficient bimetallic nanocomposite cathode catalyst, composed of Ni:Co supported sulfonated polyaniline for application in microbial fuel cells
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Development of highly efficient bimetallic nanocomposite cathode catalyst, composed of Ni:Co supported sulfonated polyaniline for application in microbial fuel cells

机译:高效双金属纳米复合材料阴极催化剂的研制,由Ni:Co负载磺化聚苯胺组成,用于在微生物燃料电池中施用

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摘要

To develop a cost-effective efficient non-noble cathode electrocatalyst with enhanced oxygen reduction is one of the major concerns in optimizing electrical efficiency in microbial fuel cells (MFCs). The study here demonstrates the evaluation of synthesized non-noble bi-metallic [1:1 Nickel (Ni): Cobalt (Co)] nanocatalyst supported on sulfonated polyaniline (SPAni) in MFC. The homogeneous dispersion of nanoparticles on supporting matrix was confirmed with scanning electron microscopy (SEM) and transmission electron microscopy (TEM). The Inductive coupled plasma - optical emission spectroscopy (ICP-OES) also shows the uniform distribution of (1:1) Co and Ni nanoparticles over the polyaniline hetero-structure for Ni-Co/SPAni and Ni-Co/PAni nanocatalyst system. Furthermore, the high specific surface area [Multipoint Brunauer-Emmett-Teller (MBET)] of Ni-Co/SPAni catalyst associated with the uniform dispersion and high porosity makes it promising catalyst material for fuel cell applications. Among all the synthesized electrocatalysts, 1:1 Ni-Co/SPAni catalyst revealed the highest catalytic activity with the enhanced stability towards oxygen reduction reactions (ORR). Moreover, in MFC, a maximum power density of ~659.79?mWm?2was observed with prospective Ni-Co/SPAni catalyst compared to the corresponding Pt/C catalyst (~483.48?mWm?2). The results indicate the potential application of a conducting polymer such as SPAni as supporting matrix in bimetallic Ni-Co catalyst system that could alternatively serve as an efficient cathode catalyst over the traditionally used costly Pt/C catalyst in MFCs operation.
机译:为了开发具有增强的氧气减少的经济高效的非高级阴极电催化剂是优化微生物燃料电池(MFC)中的电效率的主要问题之一。本研究表明,在MFC中负载在磺化聚苯胺(SPANI)上的合成的非贵宾双金属[1:1镍(Ni):钴(CO)]纳米催化剂的评价。用扫描电子显微镜(SEM)和透射电子显微镜(TEM)确认纳米颗粒对支撑基质上的均匀分散体。电感耦合等离子体 - 光发射光谱(ICP-OES)还显示出Ni-Co / Spani和Ni-Co / Pani纳米催化剂体系的聚苯胺杂结构上的(1:1)CO和Ni纳米颗粒的均匀分布。此外,与均匀分散体和高孔隙率相关的Ni-Co / SPANI催化剂的高比表面积[多点Brunauer-Emmett-excer-exculer(MBET)]使其具有燃料电池应用的催化剂材料。在所有合成的电催化剂中,1:1 NI-CO / SPAI催化剂揭示了最高的催化活性,并具有增强的氧还原反应(ORR)的稳定性。此外,在MFC中,最大功率密度为〜659.79?MWMα200as,与预期的Ni-Co / SPANI催化剂相比,观察到相应的Pt / C催化剂(〜483.48Ω·mWMα2)。结果表明导电聚合物如SPANI作为支撑基质在双金属Ni-Co催化剂体系中的潜在施加,其可以作为在MFCS操作中传统上使用的昂贵的Pt / C催化剂上的有效阴极催化剂。

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