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用于全势X射线吸收近边结构模拟的优化有限差分方法:在金属有机框架中的分子吸附几何结构和金属-配体系间窜越瞬态中的应用

Optimized Finite Difference Method for the Full-Potential XANES Simulations: Application to Molecular Adsorption Geometries in MOFs and Metal-Ligand Intersystem Crossing Transients.

作者信息

Guda Sergey A, Guda Alexander A, Soldatov Mikhail A, Lomachenko Kirill A, Bugaev Aram L, Lamberti Carlo, Gawelda Wojciech, Bressler Christian, Smolentsev Grigory, Soldatov Alexander V, Joly Yves

机构信息

Department of Chemistry, NIS and CrisDi Centers, Turin University and INSTM Reference Center , 10125 Turin, Turin, Italy.

European XFEL, Albert-Einstein-Ring 19, 22761 Hamburg, Germany.

出版信息

J Chem Theory Comput. 2015 Sep 8;11(9):4512-21. doi: 10.1021/acs.jctc.5b00327. Epub 2015 Aug 11.

Abstract

Accurate modeling of the X-ray absorption near-edge spectra (XANES) is required to unravel the local structure of metal sites in complex systems and their structural changes upon chemical or light stimuli. Two relevant examples are reported here concerning the following: (i) the effect of molecular adsorption on 3d metals hosted inside metal-organic frameworks and (ii) light induced dynamics of spin crossover in metal-organic complexes. In both cases, the amount of structural models for simulation can reach a hundred, depending on the number of structural parameters. Thus, the choice of an accurate but computationally demanding finite difference method for the ab initio X-ray absorption simulations severely restricts the range of molecular systems that can be analyzed by personal computers. Employing the FDMNES code [Phys. Rev. B, 2001, 63, 125120] we show that this problem can be handled if a proper diagonalization scheme is applied. Due to the use of dedicated solvers for sparse matrices, the calculation time was reduced by more than 1 order of magnitude compared to the standard Gaussian method, while the amount of required RAM was halved. Ni K-edge XANES simulations performed by the accelerated version of the code allowed analyzing the coordination geometry of CO and NO on the Ni active sites in CPO-27-Ni MOF. The Ni-CO configuration was found to be linear, while Ni-NO was bent by almost 90°. Modeling of the Fe K-edge XANES of photoexcited aqueous Fe(bpy)3 with a 100 ps delay we identified the Fe-N distance elongation and bipyridine rotation upon transition from the initial low-spin to the final high-spin state. Subsequently, the X-ray absorption spectrum for the intermediate triplet state with expected 100 fs lifetime was theoretically predicted.

摘要

为了阐明复杂体系中金属位点的局部结构及其在化学或光刺激下的结构变化,需要对X射线吸收近边光谱(XANES)进行精确建模。本文报道了两个相关实例:(i)分子吸附对金属有机框架内3d金属的影响;(ii)金属有机配合物中自旋交叉的光诱导动力学。在这两种情况下,根据结构参数的数量,用于模拟的结构模型数量可达数百个。因此,选择一种精确但计算要求高的有限差分方法进行从头算X射线吸收模拟,严重限制了个人计算机能够分析的分子体系范围。使用FDMNES代码[《物理评论B》,2001年,63卷,125120],我们表明,如果应用适当的对角化方案,这个问题是可以解决的。由于使用了专门的稀疏矩阵求解器,与标准高斯方法相比,计算时间减少了一个多数量级,而所需的随机存取存储器(RAM)数量减半。通过该代码的加速版本进行的Ni K边XANES模拟,能够分析CPO - 27 - Ni金属有机框架中Ni活性位点上CO和NO的配位几何结构。发现Ni - CO构型为线性,而Ni - NO弯曲近90°。对光激发的含水Fe(bpy)3在延迟100 ps时的Fe K边XANES进行建模,我们确定了从初始低自旋态转变为最终高自旋态时Fe - N距离的伸长和联吡啶的旋转。随后,从理论上预测了预期寿命为100 fs的中间三重态的X射线吸收光谱。

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