Mahmoud Amna H M, Aziz Muhrail E S, Rabee Abdallah I M, El-Tayeb Mohamed A, Mekhemer Gamal A H, Shoeib Tamer, Ibrahim Mahmoud A A
Computational Chemistry Laboratory, Chemistry Department, Faculty of Science, Minia University, Minia, 61519, Egypt.
Leibniz-Institut für Katalyse, Albert-Einstein-Str. 29 A, 18059, Rostock, Germany.
ChemistryOpen. 2025 Jun;14(6):e202400415. doi: 10.1002/open.202400415. Epub 2025 Jan 29.
The potential of the two-dimensional ruthenium carbide (RuC) nanosheet to detect highly toxic environmental compounds - namely, Furan (Fur) and 1,n-Dioxane (1,n-Diox) - was investigated utilizing the density functional theory (DFT) approach. The adsorption features of the Fur and 1,n-Diox molecules on the RuC nanosheet were evaluated in parallel and vertical configurations. From energetic manifestations, Fur and 1,n-Diox molecules preferred to be adsorbed in the parallel configuration rather than the vertical one on the RuC nanosheet with negative E values of -27.80 and -9.30 kcal/mol, respectively, for Fur⋅⋅⋅RuC complexes. Bader charge findings demonstrated an electron-accepting property for the Fur and 1,n-Diox molecules during the adsorption process over the RuC nanosheet, as indicated by positive Q values. From the FMO findings, the E and E values of Fur/1,n-Diox molecules, and the pure RuC nanosheet varied considerably after the adsorption process in both configurations. The band structure and TDOS/PDOS plots of Fur/1,n-Diox⋅⋅⋅RuC complexes showed new bands and peaks for the RuC nanosheet after the adsorption process, proving the capability of the RuC nanosheet to detect the investigated small molecules. The outcomes of the current work can serve as a foundation for using the RuC nanosheets to detect highly toxic small molecules.
利用密度泛函理论(DFT)方法研究了二维碳化钌(RuC)纳米片检测剧毒环境化合物——即呋喃(Fur)和1,n -二氧六环(1,n - Diox)的潜力。在平行和垂直构型下评估了Fur和1,n - Diox分子在RuC纳米片上的吸附特征。从能量表现来看,Fur和1,n - Diox分子更倾向于以平行构型吸附在RuC纳米片上,而不是垂直构型,对于Fur⋅⋅⋅RuC配合物,其E值分别为 - 27.80和 - 9.30 kcal/mol,均为负值。巴德电荷研究结果表明,在RuC纳米片上的吸附过程中,Fur和1,n - Diox分子具有电子接受性质,Q值为正即表明了这一点。从前线分子轨道(FMO)研究结果来看,在两种构型下吸附过程后,Fur/1,n - Diox分子以及纯RuC纳米片的E和E值都有很大变化。Fur/1,n - Diox⋅⋅⋅RuC配合物的能带结构和总态密度/分态密度(TDOS/PDOS)图显示,吸附过程后RuC纳米片出现了新的能带和峰,证明了RuC纳米片检测所研究小分子的能力。当前工作的结果可为利用RuC纳米片检测剧毒小分子奠定基础。