Department of Chemistry, Washington State University, Pullman, Washington 99164, USA.
Phys Chem Chem Phys. 2021 Apr 28;23(16):9822-9831. doi: 10.1039/d1cp01266e.
Electron transfer promoted by the coordination of a substrate molecule to a Lewis acid or hydrogen bonding group is a critical step in many biological and catalytic transformations. This computational study investigates the nature of the interaction between benzoquinone and one and two Lewis acids by examining the influence of Lewis acid strength on the ability to alter the two reduction potentials of the coordinated benzoquinone molecule. To investigate this interaction, the coordination of the neutral (Q), singly reduced ([Q]˙-), and doubly reduced benzoquinone ([Q]2-) molecule to eight Lewis acids was analyzed. Coordination of benzoquinone to a Lewis acid became more favorable by 25 kcal mol-1 with each reduction of the benzoquinone fragment. Coordination of benzoquinone to a Lewis acid also shifted each of the reduction potentials of the coordinated benzoquinone anodically by 0.50 to 1.5 V, depending on the strength of the Lewis acid, with stronger Lewis acids exhibiting a larger effect on the reduction potential. Coordination of a second Lewis acid further altered each of the reduction potentials by an additional 0.70 to 1.6 V. Replacing one of the Lewis acids with a proton resulted in the ability to modify the pKa of the protonated Lewis acid-Q/[Q]˙-/[Q]2- adducts by about 10 pKa units, in addition to being able to alter the ability to transfer a hydrogen atom by 10 kcal mol-1, and the capacity to transfer a hydride by about 30 kcal mol-1.
电子转移由底物分子与路易斯酸或氢键基团的配位促进,是许多生物和催化转化中的关键步骤。本计算研究通过考察路易斯酸强度对改变配位苯醌分子的两个还原电势的能力的影响,研究了苯醌与一个和两个路易斯酸之间相互作用的性质。为了研究这种相互作用,分析了中性(Q)、单还原([Q]˙-)和双还原苯醌([Q]2-)分子与八个路易斯酸的配位。苯醌与路易斯酸的配位通过苯醌片段的每次还原稳定 25 kcal mol-1。苯醌与路易斯酸的配位也使配位苯醌的每个还原电势阳极移动 0.50 到 1.5 V,具体取决于路易斯酸的强度,强度更强的路易斯酸对还原电势的影响更大。配位第二个路易斯酸进一步使每个还原电势发生额外的 0.70 到 1.6 V 的变化。用质子取代一个路易斯酸,除了能够改变转移氢原子的能力 10 kcal mol-1 之外,还能够将质子化的路易斯酸-Q/[Q]˙-/[Q]2-加合物的 pKa 值改变约 10 pKa 单位,并能够改变转移氢化物的能力约 30 kcal mol-1。