致潮剂
化学
溶剂化
电化学
氢键
无机化学
盐(化学)
反应性(心理学)
霍夫迈斯特系列
电解质
离子
分子
疏水效应
氢
溶剂化壳
水溶液
烷基
溶剂
电化学电位
有机化学
拉曼光谱
作者
Hao Zhang,David Raciti,Anthony Shoji Hall
摘要
Although anions are known to affect CO and CO2 electroreduction, the underlying mechanisms have not been clearly defined. We propose that they control the reactivity by altering the interfacial solvation. This hypothesis is informed by the Hofmeister series from chemical biology, which ranks ions by their ability to salt proteins in or out of solution through alteration of the water structure. Kosmotropic anions strengthen hydrogen bonding and promote water ordering, while chaotropic anions disrupt it. We examined four representative anions from this series: CH3COO–, Cl–, CF3SO3–, and ClO4–. The most chaotropic anion, ClO4–, enhanced C2+ product formation by 3.7 times relative to CH3COO–, achieving a total current density of −782 ± 34 mA cm–2 at −1.50 V versus the Normal Hydrogen Electrode. Temperature-dependent measurements showed that chaotropic anions increase the activation entropy, consistent with greater interfacial water disorder observed by in situ Raman spectroscopy. These results highlight anion-driven water structuring as a powerful lever to enhance multicarbon product formation.
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