Gray Daisy E, Munshi Tasnim, Scowen Ian J, Brett Dan J L, He Guanjie
Joseph Banks Laboratories, School of Chemistry, University of Lincoln, Lincoln, United Kingdom.
Department of Chemical Engineering, University College London, London, United Kingdom.
Front Chem. 2022 Mar 4;10:865214. doi: 10.3389/fchem.2022.865214. eCollection 2022.
Overcoming the slow oxygen reduction reaction (ORR) kinetics at the cathode of the hydrogen fuel cells requires the use of electrocatalysts containing expensive and scare platinum to achieve reasonable performance, hampering widespread use of the technology due to high material costs and sustainability issues. One option available to tackle this issue is to use new designs to create nanomaterials which achieve excellent electrocatalytic performances and long-lasting stabilities whilst using less platinum than is currently required. Reliably producing nanomaterials with predictable activities and stabilities using simple, safe, and scalable methods is an important research topic to the advancement of fuel cell technologies. The oxygen reduction reaction occurs at the surface of electrocatalytic materials, and since nanomaterial structures exhibit different catalytic activities, their shapes have a strong relationship to the final performance. Seed-mediated synthesis can be used to control the shape of materials with the aim of obtaining products with the most desirable surface properties for the ORR. This review summarized the current advancement of the synthesis of platinum-based ORR and provided the insights for the future development of this field.
克服氢燃料电池阴极上缓慢的氧还原反应(ORR)动力学需要使用含有昂贵且稀缺的铂的电催化剂,以实现合理的性能,由于材料成本高和可持续性问题,这阻碍了该技术的广泛应用。解决这个问题的一个选择是使用新设计来制造纳米材料,这些纳米材料在使用比目前所需更少的铂的同时,能实现优异的电催化性能和持久的稳定性。使用简单、安全且可扩展的方法可靠地生产具有可预测活性和稳定性的纳米材料是燃料电池技术进步的一个重要研究课题。氧还原反应发生在电催化材料的表面,由于纳米材料结构表现出不同的催化活性,它们的形状与最终性能有很强的关系。种子介导合成可用于控制材料的形状,目的是获得具有最理想的ORR表面性质的产物。本综述总结了铂基ORR合成的当前进展,并为该领域的未来发展提供了见解。