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Direct computation of general chemical energy differences:Application to ionization potentials,excitation,and bond energies

机译:直接计算一般化学能差:应用于电离势,激发和键能

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Chemists are mainly interested in energy differences.In contrast,most quantum chemical methods yield the total energy which is a large number compared to the difference and has therefore to be computed to a higher relative precision than would be necessary for the difference alone.Hence,it is desirable to compute energy differences directly,thereby avoiding the precision problem.Whenever it is possible to find a parameter which transforms smoothly from an initial to a final state,the energy difference can be obtained by integrating the energy derivative with respect to that parameter (cf.thermodynamic integration or adiabatic connection methods).If the dependence on the parameter is predominantly linear,accurate results can be obtained by single-point integration.In density functional theory and Hartree-Fock,we applied the formalism to ionization potentials,excitation energies,and chemical bond breaking.Example calculations for ionization potentials and excitation energies showed that accurate results could be obtained with a linear estimate.For breaking bonds,we introduce a nongeometrical parameter which gradually turns the interaction between two fragments of a molecule on.The interaction changes the potentials used to determine the orbitals as well as the constraint on the orbitals to be orthogonal.
机译:化学家主要对能量差感兴趣。相反,大多数量子化学方法产生的总能量比该差大得多,因此必须以比单独计算差所需的更高的相对精度进行计算。希望直接计算能量差,从而避免精度问题。每当可以找到从初始状态到最终状态平滑转换的参数时,可以通过对该参数积分能量导数来获得能量差。 (参见热力学积分或绝热连接方法)。如果对参数的依赖性主要是线性的,则可以通过单点积分获得准确的结果。在密度泛函理论和Hartree-Fock中,我们将形式主义应用于电离势,激发能量,化学键断裂。电离势和激发能的实例计算表明:线性估计可以得出准确的结果。对于断裂键,我们引入一个非几何参数,该参数逐渐打开一个分子的两个片段之间的相互作用。该相互作用改变了用于确定轨道的电势以及对轨道的约束正交。

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