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首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >A DFT-based simulated annealing method for the optimization of global energy in zeolite framework systems: Application to natrolite, chabazite and clinoptilolite
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A DFT-based simulated annealing method for the optimization of global energy in zeolite framework systems: Application to natrolite, chabazite and clinoptilolite

机译:基于DFT的模拟退火方法,用于沸石框架系统中全球能量的优化:应用于Natrolite,Chabazite和Clinopholite的应用

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摘要

Modeling zeolites structure including strongly interaction extra-framework species by using DFT is still a difficult task now a day. To face this problem, we have introduced here a simulated annealing (SA) method to obtain global minimum energies. This approximation has been applied to describing the structure of free common zeolites. Basically, the SA idea is to perform a molecular dynamics (MD) by increasing the temperature steps by steps to overcome local energy minima, after that, by subsequent energy optimization it is possible to move to a different local minimum. This procedure was done up to the temperatures of 300 and 400 K. MD, as well as, geometry optimization were carried out in a periodic framework and dispersion corrected Density Functional Theory (DFT) calculations using VASP. The results show that it seems to be very important to accomplish SA calculation in order to obtain an adequate global minimum, reducing the energy of the system up to 0.072 eV(/TO2). The impact on computing interaction energies with adsorbed molecules is high, with large implications in predicting adsorption, separation, ion-exchange and catalytic properties. Our results are in good agreement with known experimental and theoretical literature.
机译:使用DFT模拟沸石结构包括强烈互动的框架种类,现在仍然是一天艰巨的任务。要面对这个问题,我们在这里介绍了模拟退火(SA)方法,以获得全局最小能量。该近似已经应用于描述游离常见沸石的结构。基本上,SA思想是通过增加克服局部能量最小值的步骤来提高局部能量的温度步骤来执行分子动力学(MD),之后通过随后的能量优化可以移动到不同的局部最小值。该过程最多可达300和400k.MD的温度,以及使用VASP的周期性框架和色散校正密度泛函理论(DFT)计算中进行几何优化。结果表明,完成SA计算似乎是非常重要的,以便获得足够的全局最小值,从而减少系统的能量高达0.072eV(/至2)。对吸附分子计算相互作用能量的影响很高,具有较大的意义在预测吸附,分离,离子交换和催化性质方面具有很大的意义。我们的结果与已知的实验和理论文献一致。

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