合成梯度信息,动能和分子维里定理

R. Nalewajski
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引用次数: 1

摘要

引入所得梯度信息,并将其应用于化学反应性理论中的问题。包含在电子态的(复数)波函数中的结构信息的这种局部测量与结合模量(概率)和相位(电流)贡献的系统整体动能有关。开放系统热力学平衡的大集合表示证明了变分能量原理和信息原理的物理等价性。在这两种表示中,它被用于并关联系综平均泛函的总体导数,这代表了诊断电荷转移(CT)现象的反应性标准。通过使用原位势和硬度描述符来预测CT的方向和最佳量,证明了它们的等效性。维里定理被推广到热力学量中,并用于从键形成和(外/内)能反应的定性能量分布中提取动能分量。重新审视了电子动能在这类化学过程中的作用,探讨了反应性理论中Hammond公设的维里定理含义,并讨论了化学过程中结构信息的变化。建立了最大热力学信息规则,并讨论了化学反应中梯度信息的“产生”问题。Hammond公设被证明是由过渡态复形的梯度信息的几何导数索引的。
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Resultant gradient information, kinetic energy and molecular virial theorem
Resultant gradient-information is introduced and applied to problems in chemical reactivity theory. This local measure of the structural information contained in (complex) wavefunctions of electronic states is related to the system overall kinetic energy combining the modulus (probability) and phase (current) contributions. The grand-ensemble representation of thermodynamic equilibria in open systems demonstrates the physical equivalence of the variational energetic and information principles. It is used and to relate the populational derivatives of ensemble-average functionals in both these representations, which represent reactivity criteria for diagnosing the charge-transfer (CT) phenomena. Their equivalence is demonstrated by using the in situ potential and hardness descriptors to predict the direction and optimum amount of CT. The virial theorem is generalized into thermodynamic quantities and used to extract the kinetic energy component from qualitative energy profiles in the bond-formation and (exo/endo)-ergic reactions. The role of electronic kinetic energy in such chemical processes is reexamined, the virial theorem implications for the Hammond postulate of reactivity theory are explored, and variations of the structural-information in chemical processes are addressed. The maximum thermodynamic information rule is formulated and “production” of the gradient- information in chemical reactions is addressed. The Hammond postulate is shown to be indexed by the geometric derivative of resultant gradient-information at transition-state complex.
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