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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >N-, P- and Fe-tridoped nanoporous carbon derived from plant biomass: an excellent oxygen reduction electrocatalyst for zinc-air batteries
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N-, P- and Fe-tridoped nanoporous carbon derived from plant biomass: an excellent oxygen reduction electrocatalyst for zinc-air batteries

机译:来自植物生物质的N,P和Fe掺杂的纳米多孔碳:锌-空气电池的一种出色的氧还原电催化剂

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The zinc-air battery is a promising energy device because of its high energy density and high safety. Developing efficient electrocatalysts for the oxygen reduction reaction (ORR) in air electrode is of great importance for high-performance zinc air batteries. Herein, we first report N, P and Fe-tridoped nanoporous carbon ORR electrocatalysts derived from plant biomass corn silk. It is a cheap, accessible and recyclable biomass, which can offer a good basis for developing catalysts with low-cost and high yield production. The electrocatalysts were prepared by a hydrothermal process and a two step heat treatment process. The Fe element doped in the catalyst mainly came from FeCl3 and the P element came from corn silks. The N was from NH3 and corn silks. The biomass-derived catalyst exhibited a remarkably higher ORR activity, superior stability and tolerance to methanol poisoning effects in alkaline media than Pt/C catalyst. The catalyst also showed higher voltage and higher specific capacity than the Pt/C in a zinc air battery and it may be an alternative to Pt/C in the practical application of the zinc air battery. This study showed the possibility for rational design and preparation of high-performance electrocatalysts with a low-cost from a highly available and recyclable plant biomass.
机译:锌空气电池由于其高能量密度和高安全性而成为有前途的能源设备。开发用于空气电极中的氧还原反应(ORR)的高效电催化剂对于高性能锌空气电池至关重要。在本文中,我们首先报道了源自植物生物量玉米丝的N,P和Fe三价掺杂的纳米多孔碳ORR电催化剂。它是一种廉价,可获取和可回收的生物质,可以为开发低成本,高产量的催化剂提供良好的基础。通过水热法和两步热处理法制备电催化剂。催化剂中掺杂的Fe元素主要来自FeCl3,P元素来自玉米丝。 N来自NH3和玉米丝。与Pt / C催化剂相比,源自生物质的催化剂在碱性介质中表现出显着更高的ORR活性,优异的稳定性和对甲醇中毒的耐受性。该催化剂还显示出比锌空气电池中的Pt / C更高的电压和更高的比容量,并且在锌空气电池的实际应用中它可以替代Pt / C。这项研究表明,可以合理地设计和制备具有高可用性和可回收利用的植物生物质的低成本低成本高性能电催化剂。

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