Mahmood Waleed K, Dakhal Ghaith Y, Younus Dhurgham, Issa Ali Abdullah, El-Sayed Doaa S
Computer Department, Faculty of Basic Education, Mustansiriyah University, Baghdad, Iraq.
Department of Applied Sciences, University of Technology, Baghdad, Iraq.
J Mol Model. 2024 May 13;30(6):165. doi: 10.1007/s00894-024-05956-7.
A computational representation was used to model the doping and nanomodification of ZnO nanoparticles incorporated in Au/Fe nanocomposite. Au/Fe nanostructure was geometrically and discussed to investigate its electronic properties such electronic band structure and PDOS spectra. Moreover, the ZnO interacted with Au/Fe system was illustrated concerning the modified properties present on the surface of the nanocomposite as it may behave different attribution of band gap evaluated after ZnO modification included. Molecular dynamic simulation of the whole nano system was studied to predict the system stability concerning temperature and energy parameters during 100 ps simulation time. The most effective models under investigation were evaluated using adsorption annealing computations associated with the adsorption energy surface. A highly stable energetic adsorption system was anticipated by the periodic adsorption-annealing calculation.
Au and Fe pure metals nanostructures were studied as a separate molecule with (0 0 1) plane surface for optimum energy minimization. Dmol module in/materials studio software was utilized for this protocol. The designed Au/Fe layers for nanostructure building material was computationally optimized, where DFT level was considered involving generalized gradient approximation (GGA) with Perdew-Burke-Ernzerh (PBE) exchange functional. In the computations of the structure matrix simulation, the global orbital cutoff was selected. To address the weak quantification of the standard DFT functionals, Tkatchenko-Schefer (TS) (DFT + D) was utilized to precisely correct the pairwise dispersion of the functionals. The electrical parameters were interpreted using the reciprocal space of the ultrasoft pseudopotential representation. To overcome the issues of self-electron interaction, the nonlocal hybrid functional with PBE0 method was utilized to calculate the electronic properties of the studied systems. The computations generated are predicated on a particular trajectory of the gamma k-point band energy interpolations proposed in this examination. An investigation into the position of adsorption came after geometric optimization. Adsorbed on an optimized Au/Fe surface, ZnO nanostructure was computationally explored using the Dmol simulation software.
采用一种计算表示法对掺入金/铁纳米复合材料中的氧化锌纳米颗粒的掺杂和纳米改性进行建模。从几何角度对金/铁纳米结构进行了研究,并探讨了其电子性质,如电子能带结构和态密度谱。此外,还阐述了氧化锌与金/铁体系的相互作用,涉及纳米复合材料表面出现的改性性质,因为在氧化锌改性后所评估的带隙可能表现出不同的归因。研究了整个纳米体系的分子动力学模拟,以预测在100皮秒模拟时间内关于温度和能量参数的体系稳定性。使用与吸附能表面相关的吸附退火计算对所研究的最有效模型进行评估。通过周期性吸附退火计算预期得到一个高度稳定的能量吸附体系。
将金和铁纯金属纳米结构作为具有(0 0 1)平面表面的单独分子进行研究,以实现最佳能量最小化。为此协议使用了Materials Studio软件中的Dmol模块。对用于纳米结构建筑材料的设计金/铁层进行了计算优化,其中考虑了密度泛函理论(DFT)水平,涉及采用佩德韦 - 伯克 - 恩泽尔霍夫(PBE)交换泛函的广义梯度近似(GGA)。在结构矩阵模拟计算中,选择了全局轨道截止值。为了解决标准DFT泛函的弱定量问题,采用了特卡琴科 - 舍费尔(TS)(DFT + D)方法来精确校正泛函的成对色散。使用超软赝势表示的倒易空间来解释电学参数。为了克服自电子相互作用的问题,采用具有PBE0方法的非局部杂化泛函来计算所研究体系的电子性质。所生成的计算基于本研究中提出的伽马k点能带能量插值的特定轨迹。在几何优化之后对吸附位置进行了研究。使用Dmol模拟软件对吸附在优化后的金/铁表面上的氧化锌纳米结构进行了计算探索。