Liu Shangguo, Li Zijian, Chang Yaxiang, Gyu Kim Min, Jang Haeseong, Cho Jaephil, Hou Liqiang, Liu Xien
College of Chemical Engineering, Qingdao University of Science and Technology, Qingdao, 266042, China.
Department of Chemistry, City University of Hong Kong, 999077, Hong Kong SAR, China.
Angew Chem Int Ed Engl. 2024 Mar 18;63(12):e202400069. doi: 10.1002/anie.202400069. Epub 2024 Feb 14.
Although great efforts on the delicate construction of a built-in electric field (BIEF) to modify the electronic properties of active sites have been conducted, the substantial impact of BIEF coupled with electrode potential on the electrochemical reactions has not been clearly investigated. Herein, we designed an alkaline hydrogen evolution reaction (HER) catalyst composed of heterogeneous Ru-CoP urchin arrays on carbon cloth (Ru-CoP/CC) with a strong BIEF with the guidance of density functional theory (DFT) calculations. Impressively, despite its unsatisfactory activity at 10 mA cm (overpotential of 44 mV), Ru-CoP/CC exhibited better activity (357 mV) than the benchmark Pt/C catalyst (505 mV) at 1 A cm . Experimental and theoretical studies revealed that strong hydrogen adsorption on the interfacial Ru atoms created a high energy barrier for hydrogen desorption and spillover, resulting in unsatisfactory activity at low current densities. However, as the electrode potential became more negative (i.e., the current density increased), the barrier for hydrogen spillover from the interfacial Ru to the Co site, which had near-zero hydrogen adsorption energy, significantly decreased, thus greatly accelerating the whole alkaline HER process. This explains why the activity of Ru-CoP is relatively susceptible to the electrode potential compared to Pt/C.
尽管人们已经在精细构建内建电场(BIEF)以改变活性位点的电子性质方面付出了巨大努力,但BIEF与电极电势对电化学反应的实质性影响尚未得到明确研究。在此,我们在密度泛函理论(DFT)计算的指导下,设计了一种由碳布上的异质Ru-CoP海胆阵列组成的碱性析氢反应(HER)催化剂(Ru-CoP/CC),其具有很强的BIEF。令人印象深刻的是,尽管Ru-CoP/CC在10 mA cm²时活性不尽人意(过电位为44 mV),但在1 A cm²时,它表现出比基准Pt/C催化剂(505 mV)更好的活性(357 mV)。实验和理论研究表明,界面Ru原子上强烈的氢吸附为氢解吸和溢流创造了高能垒,导致在低电流密度下活性不佳。然而,随着电极电势变得更负(即电流密度增加),氢从具有接近零氢吸附能的界面Ru溢流到Co位点的能垒显著降低,从而极大地加速了整个碱性HER过程。这解释了为什么与Pt/C相比,Ru-CoP的活性相对更容易受到电极电势的影响。