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Prussian blue analogues-derived carbon composite with cobalt nanoparticles as an efficient bifunctional electrocatalyst for oxygen reduction and hydrogen evolution

机译:普鲁士蓝色类似物衍生的碳复合材料与钴纳米粒子作为氧还原和氢气进化的有效双官能电催化剂

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摘要

Oxygen reduction reaction and hydrogen evolution reaction are two key reactions involved in several renewable energy technologies. Herein, a nonprecious bifunctional electrocatalyst for oxygen reduction reaction and hydrogen evolution reaction is facilely synthesized through directly pyrolyzing the mixture of Prussian blue analogues, graphene oxide and graphitic carbon nitride in the presence of silica colloids. Post-synthesis removal of silica hard templates leads to a cobalt and nitrogen co-doped reduced graphene oxide composite with Co nanoparticles, which comprises abundant mesoporous textures and a high specific surface area of 703.26 cm(2) g(-1). The resultant composite shows marked oxygen reduction reaction activity, with a more positive half-wave potential of +0.848 V, a higher limiting current, a stronger immunity to fuel crossover effect and higher operation stability, as compared with commercial Pt/C catalyst in alkaline solution. Besides, such composite can also serve as efficient and stable hydrogen evolution reaction catalyst in alkaline electrolyte, and an over potential of only 180 mV is required to reach 10 mA cm(-2). The remarkable bifunctional catalytic activities are attributed to the synergistic effects of Co nanoparticles and graphene substrate. These results highlight the high potential of present strategy in synthesis of multifunctional nonprecious electrocatalysts. (C) 2018 Elsevier Ltd. All rights reserved.
机译:氧还原反应和氢进化反应是涉及几种可再生能源技术的两个关键反应。在此,通过直接热解在二氧化硅胶体存在下,通过直接热解释放普鲁士蓝类似物,石墨烯和石墨碳氮化物的混合物来施加氧还原反应和氢进化反应的非迫害双功能电催化剂。合成后的二氧化硅硬模板去除钴和氮气共掺杂的碳烯氧化物复合材料,其包括富有的介孔纹理和高比表面积为703.26cm(2)g(-1)。所得复合材料显示出明显的氧还原反应活性,具有+ 0.848V的更高的半波电位,较高的限制电流,与碱中的商业Pt / C催化剂相比,燃料交叉效应的较强的免疫力和更高的操作稳定性解决方案。此外,这种复合材料还可以用作碱性电解质中的高效且稳定的氢气进化反应催化剂,并且仅需要180mV的电位以达到10mA cm(-2)。显着的双官能催化活性归因于CO纳米颗粒和石墨烯基材的协同作用。这些结果突出了多功能非尊重电催化剂合成中目前策略的高潜力。 (c)2018年elestvier有限公司保留所有权利。

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