Karthick Kannimuthu, Sam Sankar Selvasundarasekar, Kumaravel Sangeetha, Karmakar Arun, Madhu Ragunath, Bera Krishnendu, Kundu Subrata
Electrochemical Process Engineering (EPE) division, CSIR-Central Electrochemical Research Institute (CECRI), Karaikudi-630003, Tamil Nadu, India.
Academy of Scientific and Innovative Research (AcSIR), Ghaziabad-201002, India.
Dalton Trans. 2021 Oct 5;50(38):13176-13200. doi: 10.1039/d1dt01645h.
The replacement of noble metals with alternative electrocatalysts is highly demanded for water splitting. From the exploration of 3D -transition metal based heterostructures, engineering at the nano-level brought more enhancements in active sites with reduced overpotentials for both the oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). However, recent developments in 3D transition metal based heterostructures like direct growth on external substrates (Ni foam, Cu foam) gave highly impressive activities and stabilities. Research needs to be focused on how the active sites can be enhanced further with 3D heterostructures of transition metals by studying them with various counterparts like hydroxides, layered double hydroxides and phosphides for empowering both OER and HER applications. This perspective covers the way to enlarge the utilization of 3D heterostructures successfully in terms of reduced overpotentials, highly exposed active sites, increased electrical conductivity, porosity and high-rate activity. From the various approaches of growth of transition metal based 3D heterostructures, it is easy to fine tune the active sites to have a viable production of hydrogen with less applied energy input. Overall, this perspective outlines a direction to increase the number of active sites on 3D transition metal based heterostructures by growing on 3D foams for enhanced water splitting applications.
水分解领域迫切需要用替代电催化剂取代贵金属。通过对基于3D过渡金属的异质结构的探索,纳米级工程在析氧反应(OER)和析氢反应(HER)的活性位点方面带来了更多增强,同时降低了过电位。然而,最近基于3D过渡金属的异质结构的发展,如在外部基底(泡沫镍、泡沫铜)上直接生长,展现出了令人印象深刻的活性和稳定性。研究需要聚焦于如何通过与氢氧化物、层状双氢氧化物和磷化物等各种对应物一起研究基于过渡金属的3D异质结构,进一步增强活性位点,以推动OER和HER应用。这一观点涵盖了在降低过电位、高度暴露的活性位点、增加电导率、孔隙率和高倍率活性方面成功扩大3D异质结构利用的方法。从基于过渡金属的3D异质结构的各种生长方法来看,很容易微调活性位点,以在较少的外加能量输入下实现可行的氢气生产。总体而言,这一观点概述了一个方向,即通过在3D泡沫上生长来增加基于3D过渡金属的异质结构上的活性位点数量,以增强水分解应用。