Kim Nayong, Kim Yongman, Tsotsis Theodore T, Sahimi Muhammad
Department of Chemical Engineering, University of Southern California, Los Angeles, California 90089-1211, USA.
J Chem Phys. 2005 Jun 1;122(21):214713. doi: 10.1063/1.1902945.
An atomistic model of layered double hydroxides, an important class of nanoporous materials, is presented. These materials have wide applications, ranging from adsorbents for gases and liquid ions to nanoporous membranes and catalysts. They consist of two types of metallic cations that are accommodated by a close-packed configuration of OH- and other anions in a positively charged brucitelike layer. Water and various anions are distributed in the interlayer space for charge compensation. A modified form of the consistent-valence force field, together with energy minimization and molecular dynamics simulations, is utilized for developing an atomistic model of the materials. To test the accuracy of the model, we compare the vibrational frequencies, x-ray diffraction patterns, and the basal spacing of the material, computed using the atomistic model, with our experimental data over a wide range of temperature. Good agreement is found between the computed and measured quantities.
本文提出了一种层状双氢氧化物的原子模型,层状双氢氧化物是一类重要的纳米多孔材料。这些材料具有广泛的应用,从气体和液体离子吸附剂到纳米多孔膜和催化剂。它们由两种金属阳离子组成,这些阳离子被带正电的类水镁石层中OH-和其他阴离子的紧密堆积结构所容纳。水和各种阴离子分布在层间空间以进行电荷补偿。一种改进形式的一致价力场,结合能量最小化和分子动力学模拟,被用于开发该材料的原子模型。为了测试模型的准确性,我们将使用原子模型计算得到的材料振动频率、X射线衍射图谱和基面间距与我们在广泛温度范围内的实验数据进行了比较。计算值与测量值之间发现了良好的一致性。