Singh Arunima, Jain Manjari, Bhumla Preeti, Bhattacharya Saswata
Department of Physics, Indian Institute of Technology Delhi Hauz Khas New Delhi 110016 India
Nanoscale Adv. 2023 Aug 22;5(19):5332-5339. doi: 10.1039/d3na00215b. eCollection 2023 Sep 26.
Molecular hydrogen (H) production by the electrochemical hydrogen evolution reaction (HER) is being actively explored for non-precious metal-based electrocatalysts that are earth-abundant and low cost like MoS. Although it is acid-stable, its applicability is limited by catalytically inactive basal planes, poor electrical transport and inefficient charge transfer at the interface. Therefore, the present work examines its bilayer van der Waals heterostructure (vdW HTS). The second constituent monolayer boron phosphide (BP) is advantageous as an electrode material owing to its chemical stability in both oxygen and water environments. Here, we have performed first-principles based calculations under the framework of density functional theory (DFT) for the HER in an electrochemical double layer model with the BP monolayer, MoS/BP and MoSSe/BP vdW HTSs. The climbing image nudged elastic band method (CI-NEB) has been employed to determine the minimum energy pathways for Tafel and Heyrovsky reactions. The calculations reveal that the Tafel reaction shows no reaction barrier. Thereafter, for the Heyrovsky reaction, we obtained a low reaction barrier in the vdW HTSs as compared to that in the BP monolayer. Subsequently, we have observed no significant difference in the reaction profile of MoS/BP and MoSSe/BP vdW HTSs in the case of 2 × 2 supercell configuration. However, in the case of 3 × 3 and 4 × 4 configurations, MoSSe/BP shows a feasible Heyrovsky reaction with no reaction barrier. The coverages with 1/4H concentration (conc.) deduced high coverage with low conc. and low coverage with high conc. to be apt for the HER the Heyrovsky reaction path. Finally, on observing the activation barrier of the Heyrovsky pathway along with that of second H adsorption at the surface, the Heyrovsky path is expected to be favoured.
通过电化学析氢反应(HER)生产分子氢(H₂)的研究正在积极探索基于非贵金属的电催化剂,这些电催化剂像二硫化钼(MoS₂)一样储量丰富且成本低廉。尽管它在酸性环境中稳定,但其适用性受到催化惰性基面、不良的电子传输以及界面处低效的电荷转移的限制。因此,本工作研究了其二层范德华异质结构(vdW HTSs)。第二种组成单层磷化硼(BP)作为电极材料具有优势,因为它在氧气和水环境中都具有化学稳定性。在此,我们在密度泛函理论(DFT)框架下,针对具有BP单层、MoS₂/BP和MoSSe/BP vdW HTSs的电化学双层模型中的HER进行了基于第一性原理的计算。采用爬山图像推挤弹性带方法(CI-NEB)来确定塔菲尔反应和海洛夫斯基反应的最小能量路径。计算结果表明,塔菲尔反应没有反应势垒。此后,对于海洛夫斯基反应,我们发现与BP单层相比,vdW HTSs中的反应势垒较低。随后,在2×2超胞构型的情况下,我们观察到MoS₂/BP和MoSSe/BP vdW HTSs的反应轮廓没有显著差异。然而,在3×3和4×4构型的情况下,MoSSe/BP显示出海洛夫斯基反应可行且没有反应势垒。推导得出1/4H浓度(conc.)的覆盖率在低浓度下具有高覆盖率,在高浓度下具有低覆盖率,这对于HER的海洛夫斯基反应路径是合适的。最后,观察海洛夫斯基路径的活化势垒以及表面第二次H吸附的活化势垒,预计海洛夫斯基路径更有利。