Liu Suli, Zhou Liangliang, Zhang Wanjia, Jin Junyu, Mu Xueqin, Zhang Sudi, Chen Changyun, Mu Shichun
Department of Chemistry, Nanjing Xiaozhuang University, Nanjing, Jiangsu 211171, P. R. China.
Nanoscale. 2020 May 14;12(18):9943-9949. doi: 10.1039/d0nr01693d.
Defect engineering is widely applied in transition metal dichalcogenides to produce high-purity hydrogen. However, the instability of vacancy states on catalysis still remains a considerable challenge. Here, our first-principles calculations showed that, by optimizing the asymmetric S vacancy in the highly asymmetric 1T' crystal of layered bitransition metal dichalcogenides (Co-MoS2) in light of Pd modulation, the relative amount of metastable phase and the quantity of active sites in the structure can be reduced and increased, respectively, leading to a further boosted hydrogen evolution reaction (HER) activity toward layered bi-transition metal dichalcogenides. Thus, we then used a "click" chemistry strategy to make such a catalyst with engineered unsaturated sulfur edges via a strong coupling effect between ultrafine Pd ensembles and Co-MoS2 nanosheets. As expected, the Pd-modulated Co-MoS2 nanosheets exhibited a very low overpotential of 60 mV at 10 mA cm-2 with a small Tafel slope (56 mV dec-1) for the HER in 1.0 M PBS, comparable to those of commercial Pt/C. In addition, their high HER activity was retained in acidic and alkaline conditions. Both the theoretical and experimental results revealed that Pd ensembles can efficiently activate and stabilize the inert basal plane S sites during HER processes as a result of the formation of Pd-S in Co-MoS2. This work not only provides a deeper understanding of the correlation between defect sites and intrinsic HER catalytic properties for transition metal chalcogenide (TMD)-based catalysts, but also offers new insights into better designing earth-abundant HER catalysts displaying high efficiency and durability.
缺陷工程在过渡金属二硫属化物中被广泛应用于制备高纯度氢气。然而,空位态在催化过程中的不稳定性仍然是一个相当大的挑战。在此,我们的第一性原理计算表明,通过基于钯调制优化层状双过渡金属二硫属化物(Co-MoS2)高度不对称的1T'晶体中的不对称硫空位,可以分别减少亚稳相的相对量并增加结构中活性位点的数量,从而进一步提高层状双过渡金属二硫属化物的析氢反应(HER)活性。因此,我们随后采用“点击”化学策略,通过超细钯团簇与Co-MoS2纳米片之间的强耦合效应,制备出具有工程化不饱和硫边缘的催化剂。正如预期的那样,钯调制的Co-MoS2纳米片在1.0 M PBS中进行HER时,在10 mA cm-2下表现出非常低的过电位60 mV,塔菲尔斜率较小(56 mV dec-1),与商业Pt/C相当。此外,它们在酸性和碱性条件下都保持了高HER活性。理论和实验结果均表明,由于在Co-MoS2中形成了Pd-S,钯团簇在HER过程中可以有效地激活并稳定惰性基面硫位点。这项工作不仅为基于过渡金属硫族化物(TMD)的催化剂的缺陷位点与固有HER催化性能之间的相关性提供了更深入的理解,也为更好地设计具有高效率和耐久性的地球丰富型HER催化剂提供了新的见解。