Intramolecular Hydrogen-Bonded Networks for Tuning Anthraquinone Redox Properties

化学 分子内力 氧化还原 蒽醌 光化学 氢键 密度泛函理论 循环伏安法 咪唑 乙腈 苯并咪唑 轨道能级差 量子化学 计算化学 电化学 极化(电化学) 电子结构 红外线的 橡胶
作者
Edwin J. González López,Kai Cui,Jang Mok Yoo,Daniel A. Heredia,Sharon Hammes‐Schiffer,Thomas A. Moore,Ana L. Moore
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
标识
DOI:10.1021/jacs.6c15431
摘要

Abstract Intramolecular hydrogen-bonded networks have been designed and synthesized to control quinone redox thermodynamics in a family of anthraquinone (AQ) derivatives. The networks contain imidazole fused to AQ, which is hydrogen-bonded to the AQ carbonyl, and the extended motifs include phenol (P) and benzimidazole (BI). Cyclic voltammetry reveals a systematic anodic displacement of the AQ/AQ•– couple as the hydrogen-bonded network is extended, resulting in a cumulative +440 mV shift. Visible spectroelectrochemistry provides direct reduced-state markers: AQ exhibits AQ•– bands at ∼410 and ∼539 nm, whereas the intramolecular hydrogen-bonded constructs display only blue-shifted AQ•– signatures at ∼490 nm (BI–AQ), ∼505 nm (BIP–AQ), and ∼494 nm (BI2P–AQ), consistent with hydrogen-bond-dependent perturbation of the reduced quinone electronic structure. Infrared spectroelectrochemistry further resolves the underlying hydrogen-bonding interactions, revealing depletion of the neutral AQ ν(C═O) band (∼1667 cm–1) under reductive polarization with the emergence of hydrogen-bonded AQ•– band at ∼1480 cm–1 in the AQ derivatives. Oxidative polarization, yielding the phenoxyl radical, induces benzimidazolium formation and a blue-shifted AQ ν(C═O) band (∼1678 cm–1), highlighting the directional dependence of the perturbation and the role of the AQ carbonyl as a reporter of the interaction with the intramolecular hydrogen-bonded network. Treating the hydrogen-bonding protons quantum mechanically, nuclear−electronic orbital density functional theory calculations show strengthening of the hydrogen bonds cooperatively across the network upon one-electron reduction and oxidation, correctly predicting the observed stabilization of the AQ•– state. These fundamental insights will assist in the design of more precisely tuned catalysts.
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