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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Transition Metal-Functionalized Janus MoSSe Monolayer: A Magnetic and Efficient Single-Atom Photocatalyst for Water Splitting Applications
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Transition Metal-Functionalized Janus MoSSe Monolayer: A Magnetic and Efficient Single-Atom Photocatalyst for Water Splitting Applications

机译:过渡金属官能化Janus Mosse Monolayer:用于水分裂应用的磁性高效单原子光催化剂

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Janus MoSSe monolayers are recently proposed as a potential water-splitting photocatalyst. However, the weak van der Waals (vdW) interaction between water molecules and the surfaces of MoSSe significantly inhibits the photocatalytic efficiency. On the basis of first-principles calculations, in this work, we explore the possibility of single-atom functionalization in remedying this deficiency of MoSSe. Specifically, we investigate the single atom adsorption effects of first row Sc-Zn transition metal (TM) elements on the interaction mechanism between the water molecule and MoSSe and on the other intrinsic properties of MoSSe as a water-splitting photocatalyst. It is found that all the TMs except Zn can adsorb strongly and chemically on both S and Se sides of MoSSe, and the initial weak vdW interaction between H2O and pure MoSSe is successfully transformed into strong chemical interactions in the TM-modified MoSSe, where TMs play the role of very active sites for photo-catalyzing water-splitting. Additionally, other intrinsic properties of MoSSe, such as intrinsic dipole and optical absorption, are further improved by proper TM adsorption, suggesting higher solar conversion efficiency. Astonishingly, all the TM-modified MoSSe except for Ni are magnetic, rendering them magnetic photocatalysts; this is not only beneficial for efficient recycling of the photocatalysts but also suggests potential applications of them in spintronics. Our work demonstrates the potential role of single-atom functionalization technology in improving and enriching the intrinsic properties of two-dimensional monolayer materials for photocatalytic and electronic applications.
机译:剑锋莫斯单层最近提出作为一个潜在的水分解光催化剂。然而,弱范德华水分子和莫斯的表面之间范德华(范德华)相互作用显著抑制光催化效率。在第一原理计算的基础上,在这项工作中,我们将探讨在纠正莫斯的这一缺陷单原子功能化的可能性。具体地,我们研究了第一行钪-Zn系的过渡金属(TM)上的水分子和莫斯之间和莫斯的其他固有性质为水分解的光催化剂的相互作用机理元素的单原子吸附效果。据发现,除了锌所有的记忆库能强烈地和化学地吸附在莫斯的两个S和Se侧,和H 2 O和纯莫斯之间的初始弱范德华相互作用被成功地变换为TM改性的莫斯,其中的TM强的化学相互作用玩光催化水分解非常活跃站点的作用。另外,莫斯的其它固有特性,如固有偶极子和光吸收,进一步通过适当TM吸附改善,这表明更高的太阳能转换效率。令人惊讶的是,所有的除了镍的TM-改性莫斯是磁性的,使得它们的磁光催化剂;这不仅是光触媒的高效循环利用有益的,但也表明在自旋电子学他们的潜在应用。我们的工作表明单原子功能化技术的完善和丰富的二维单层材料的固有特性的光催化和电子应用中的潜在作用。

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