论文标题
酸性介质中的MOS $ _2 $/BP和MOSSE/BP的氢进化反应的电催化研究
Electrocatalytic Study for Hydrogen Evolution Reaction on MoS$_2$/BP and MoSSe/BP in Acidic Media
论文作者
论文摘要
电化学氢进化反应(HER)的分子氢(H $ _2 $)的生产正在积极探索,用于基于地球的非偏见的电催化剂,这些电催化剂是地球含量且成本低,例如MOS $ _2 $。尽管它是酸稳定的,但其适用性受到催化无效的基础平面的限制,电气传输差和界面处的电荷转移效率低下。因此,目前的工作检查其双层范德华异质结构(VDW HTS)。第二个成分单层磷化物(BP)是有利的,因为它在氧气和水环境中都具有化学稳定性,因此是一种有利的电极材料。在这里,我们在用BP单层,MOS $ _2 $/bp和MOSSE/BP VDW HTSS的电化学双层模型中为她的密度功能理论框架(DFT)进行了基于第一原理的计算。攀岩图像弹性弹性带方法(CI-NEB)已被用来确定Tafel和Heyrovsky反应的最小能量途径。计算结果表明Tafel反应没有反应屏障。此后,对于Heyrovsky反应,与BP单层相比,我们在VDW HTSS中获得了低反应屏障。随后,我们观察到MOS $ _2 $/bp和MOSSE/BP VDW HTSS的反应轮廓没有显着差异,以防高覆盖率(25%)和1/3 H $^+$浓度(conc。)。但是,在覆盖范围较小(11%)和1/3 H $^+$浓度的情况下,Mosse/bp显示出可行的Heyrovsky反应,没有反应屏障。最后,在将覆盖范围与1/4 H $^+$浓度进行比较时,我们推断出低浓度的高覆盖范围。和低覆盖范围高。通过Heyrovsky反应路径适合她。
Molecular hydrogen (H$_2$) production by electrochemical hydrogen evolution reaction (HER) is being actively explored for non-precious-metal based electrocatalysts that are earth-abundant and low cost like MoS$_2$. Although it is acid-stable, its applicability is limited by catalytically inactive basal plane, 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 HER in an electrochemical double layer model with the BP monolayer, MoS$_2$/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 yield that Tafel reaction shows no reaction barrier. Thereafter, for Heyrovsky reaction, we have obtained 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$_2$/BP and MoSSe/BP vdW HTSs in case of high coverage (25 %) and 1/3 H$^+$ concentration (conc.). However, in the case of small coverage (11 %) and 1/3 H$^+$ conc., MoSSe/BP shows feasible Heyrovsky reaction with no reaction barrier. Finally, on comparing the coverages with 1/4 H$^+$ conc., we deduce high coverage with low conc. and low coverage with high conc. to be apt for HER via Heyrovsky reaction path.