Qiu Chenglong, Zhao ChenXia, Sun Xiang, Deng Shengwei, Zhuang Guilin, Zhong Xing, Wei ZhongZhe, Yao Zihao, Wang Jian-Guo
Institute of Industrial Catalysis, College of Chemical Engineering, State Key Laboratory Breeding Base of Green-Chemical Synthesis Technology , Zhejiang University of Technology , Hangzhou 310014 , China.
Langmuir. 2019 May 14;35(19):6393-6402. doi: 10.1021/acs.langmuir.9b00129. Epub 2019 May 2.
The structural and electronic properties of the interface are critical for the morphology of supported metal nanoparticles and thus the performance in catalysis, photonics, biomedical research, and other areas. To reveal the intrinsic mechanism of the formation of various morphologies, a multiscale simulation strategy is adopted to bridge the macroscopic structures by experimental observations and microscopic properties by theoretical calculations. This strategy incorporates the density functional theory (DFT) for the interaction energy calculation, the molecular dynamics (MD) simulation for the structure evolution, and theoretical model for the correlation with contact angles. The interaction energies between Pt atoms (four-atom clusters) and substrates are applied for the force field parametrization in the following MD simulation. Simulation results show the binding energies and structural properties such as radial distribution function and coordination number for supported metal nanoparticles with various sizes in detail. Notably, the contact angles of supported nanoparticles are well correlated by the strength of metal-support interactions. This work yields guidelines on the structure modulation of supported metal nanoparticles via interfacial control.
界面的结构和电子性质对于负载型金属纳米颗粒的形态至关重要,进而对催化、光子学、生物医学研究及其他领域的性能产生影响。为揭示各种形态形成的内在机制,采用多尺度模拟策略,通过实验观测连接宏观结构,并通过理论计算连接微观性质。该策略包括用于相互作用能计算的密度泛函理论(DFT)、用于结构演化的分子动力学(MD)模拟以及与接触角相关的理论模型。Pt原子(四原子簇)与基底之间的相互作用能被用于后续MD模拟中的力场参数化。模拟结果详细展示了不同尺寸负载型金属纳米颗粒的结合能以及诸如径向分布函数和配位数等结构性质。值得注意的是,负载型纳米颗粒的接触角与金属-载体相互作用的强度密切相关。这项工作为通过界面控制实现负载型金属纳米颗粒的结构调控提供了指导方针。