School of Physics and Electric Engineering, Anyang Normal University, Anyang 455000, China.
College of Science, Institute of Materials Physics and Chemistry, Nanjing Forestry University, Nanjing 210037, China.
Molecules. 2023 Feb 8;28(4):1644. doi: 10.3390/molecules28041644.
As is well known, NO adsorption plays an important role in gas sensing and treatment because it expands the residence time of compounds to be treated in plasma-catalyst combination. In this work, the adsorption behaviors and mechanism of NO over pristine and Se-vacancy defect-engineered WSSe monolayers have been systematically investigated using density functional theory (DFT). The adsorption energy calculation reveals that introducing Se vacancy acould result in a physical-to-chemical adsorption transition for the system. The Se vacancy, the most possible point defect, could work as the optimum adsorption site, and it dramatically raises the transferred-electron quantities at the interface, creating an obviously electronic orbital hybridization between the adsorbate and substrate and greatly improving the chemical activity and sensing sensitivity of the WSSe monolayer. The physical-to-chemical adsorption transition could meet different acquirements of gas collection and gas treatment. Our work broadens the application filed of the Janus WSSe as NO-gas-sensitive materials. In addition, it is found that both keeping the S-rich synthetic environments and applying compression strain could make the introduction of Se vacancy easier, which provides a promising path for industrial synthesis of Janus WSSe monolayer with Se vacancy.
众所周知,由于 NO 的吸附在等离子体-催化剂组合中延长了待处理化合物的停留时间,因此它在气体传感和处理中起着重要作用。在这项工作中,我们使用密度泛函理论(DFT)系统地研究了原始和 Se 空位缺陷工程 WSSe 单层中 NO 的吸附行为和机制。吸附能计算表明,引入 Se 空位可以导致体系发生物理吸附到化学吸附的转变。Se 空位是最有可能的点缺陷,可以作为最佳吸附位,它极大地增加了界面处的转移电子数量,在吸附物和衬底之间产生明显的电子轨道杂化,极大地提高了 WSSe 单层的化学活性和传感灵敏度。这种物理吸附到化学吸附的转变可以满足气体收集和处理的不同需求。我们的工作拓宽了 Janus WSSe 作为 NO 气敏材料的应用领域。此外,研究还发现,保持富含 S 的合成环境和施加压缩应变都可以使 Se 空位的引入更容易,这为工业合成具有 Se 空位的 Janus WSSe 单层提供了有前途的途径。