Salah Abdulwahab, Ren Hong-Da, Al-Ansi Nabilah, Al-Salihy Adel, Qaraah Fahim A, Mahyoub Samah A, Ahmed Anas A, Drmosh Qasem A
Interdisciplinary Research Center for Hydrogen Technologies and Carbon Management, King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.
Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education, Faculty of Chemistry, Northeast Normal University, Changchun 130024, P. R. China.
ACS Appl Mater Interfaces. 2024 Nov 6;16(44):60310-60320. doi: 10.1021/acsami.4c13769. Epub 2024 Oct 23.
Electrochemical water splitting is a promising approach for hydrogen evolution reactions (HER); however, the oxygen evolution reaction (OER) remains a major bottleneck due to its high energy requirements. High-performance electrocatalysts capable of facilitating HER, OER, and overall water splitting (OWS) are highly needed to improve OER kinetics. In this work, we synthesized a trimetallic heterostructure of Ru, Ni, and Co incorporated into N-doped carbon (denoted as Ru/Ni/Co@NC) by first synthesizing Ni/Co@NC from Ni-ZIF-67 polyhedrons via high-temperature carbonization, followed by Ru doping using the galvanic replacement method. Benefiting from increased active surface sites, modulated electronic structure, and enhanced interfacial synergistic effects, Ru/Ni/Co@NC exhibited exceptional electrocatalytic performance for both HER and OER processes. The optimized Ru/Ni/Co@NC catalyst, with a minimal Ru mass ratio of ∼2.07%, demonstrated significantly low overpotential values of 34 mV for HER and 174 mV for OER at a current density of 10 mA/cm with corresponding Tafel slope values of 33.42 and 34.39 mV/dec, respectively. Further, the optimized catalyst was loaded onto carbon paper and used as anode and cathode materials for alkaline water splitting. Interestingly, a low cell voltage of just 1.44 V was obtained. The enhanced electrolytic performance was further elaborated by density functional theory (DFT) calculations, which confirmed that Ru doping in Ni/Co introduced additional active sites for H*, enhancing adsorption/desorption abilities for HER (Δ = -0.30 eV), lowering water dissociation barrier (Δ = 0.49 eV) and reducing the energy barrier for the rate-determining step of OER (O* → OOH*) to 1.62 eV in an alkaline environment. These findings reflect the significant potential of ZIF-67-based catalysts in energy conversion and storage applications.
电化学水分解是一种很有前景的析氢反应(HER)方法;然而,析氧反应(OER)由于其高能量需求仍然是一个主要瓶颈。迫切需要能够促进HER、OER和整体水分解(OWS)的高性能电催化剂来改善OER动力学。在这项工作中,我们通过首先将Ni-ZIF-67多面体经高温碳化合成Ni/Co@NC,然后使用电置换法进行Ru掺杂,合成了一种掺入N掺杂碳中的Ru、Ni和Co的三金属异质结构(表示为Ru/Ni/Co@NC)。得益于活性表面位点增加、电子结构调制和界面协同效应增强,Ru/Ni/Co@NC在HER和OER过程中均表现出优异的电催化性能。优化后的Ru/Ni/Co@NC催化剂,Ru质量比最低为~2.07%,在电流密度为10 mA/cm时,HER的过电位值低至34 mV,OER的过电位值低至174 mV,相应的塔菲尔斜率值分别为33.42和34.39 mV/dec。此外,将优化后的催化剂负载到碳纸上,并用作碱性水分解的阳极和阴极材料。有趣的是,仅获得了1.44 V的低电池电压。密度泛函理论(DFT)计算进一步阐述了增强的电解性能,该计算证实Ni/Co中Ru的掺杂引入了额外的H活性位点,增强了HER的吸附/解吸能力(Δ = -0.30 eV),降低了水离解势垒(Δ = 0.49 eV),并将碱性环境中OER速率决定步骤(O → OOH*)的能垒降低至1.62 eV。这些发现反映了基于ZIF-67的催化剂在能量转换和存储应用中的巨大潜力。