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Modeling solvent effects on electron-spin-resonance hyperfine couplings by frozen-density embedding

机译:通过冻结密度嵌入来模拟溶剂对电子自旋共振超精细偶合的影响

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In this study,we investigate the performance of the frozen-density embedding scheme within density-functional theory [J.Phys.Chem.97,8050 (1993)] to model the solvent effects on the electron-spin-resonance hyperfine coupling constants (hfcc's) of the H_2NO molecule.The hfcc's for this molecule depend critically on the out-of-plane bending angle of the NO bond from the molecular plane.Therefore,solvent effects can have an influence on both the electronic structure for a given configuration of solute and solvent molecules and on the probability for different solute (plus solvent) structures compared to the gas phase.For an accurate modeling of dynamic effects in solution,we employ the Car-Parrinello molecular-dynamics (CPMD) approach.A first-principles-based Monte Carlo scheme is used for the gas-phase simulation,in order to avoid problems in the thermal equilibration for this small molecule.Calculations of small H_2NO-water clusters show that microsolvation effects of water molecules due to hydrogen bonding can be reproduced by frozen-density embedding calculations.Even simple sum-of-molecular-densities approaches for the frozen density lead to good results.This allows us to include also bulk solvent effects by performing frozen-density calculations with many explicit water molecules for snapshots from the CPMD simulation.The electronic effect of the solvent at a given structure is reproduced by the frozen-density embedding.Dynamic structural effects in solution are found to be similar to the gas phase.But the small differences in the average structures still induce significant changes in the computed shifts due to the strong dependence of the hyperfine coupling constants on the out-of-plane bending angle.
机译:在这项研究中,我们在密度泛函理论[J.Phys.Chem.97,8050(1993)]中研究冷冻密度嵌入方案的性能,以模拟溶剂对电子自旋共振超精细耦合常数的影响( H_2NO分子的hfcc's。该分子的hfcc's关键取决于NO键与分子平面的平面外弯曲角。因此,对于给定的结构,溶剂效应可能会影响电子结构溶质和溶剂分子以及与气相相比具有不同溶质(加溶剂)结构的可能性。为了精确模拟溶液中的动力学效应,我们采用了卡尔·帕里内罗分子动力学(CPMD)方法。为了避免该小分子的热平衡问题,采用基于Monte Carlo的Monte Carlo方案进行了气相模拟。小H_2NO-水团簇的计算表明,水分子的微溶剂化作用氢键的键合可以通过冻结密度嵌入计算得到,即使简单的分子密度求和方法也能获得良好的结果,这使得我们可以通过进行许多冻结密度计算来包括本体溶剂效应通过CPMD模拟获得用于快照的显式水分子。在给定结构中溶剂的电子效应通过冻结密度嵌入得以再现。在溶液中的动态结构效应被发现与气相相似,但是在溶液中的微小差异由于超精细耦合常数对平面外弯曲角的强烈依赖性,平均结构仍会在计算出的位移中引起显着变化。

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