动力学同位素效应
氘
电化学
化学
质子
动能
同位素
氢
量子隧道
阿累尼乌斯方程
分析化学(期刊)
化学物理
重水
分数(化学)
无机化学
分子动力学
物理化学
电化学电位
稳定同位素比值
氢键
反应速率常数
热力学
活化能
材料科学
结合能
分子
水溶液
作者
Guobin Wen,Haiqi Liang,Shuxuan Liu,Ningce Zhang,Shuai Chen,Guoqiang Shen,Tehua Wang,Ru Chen,Tao Li,Bohua Ren,Shuangyin Wang
标识
DOI:10.1073/pnas.2533803123
摘要
Electrochemical hydrogen isotope separation has been constrained for decades by the similar energy barriers of the rate-determining O–H and O–D bond cleavage step in water isotopologues. Herein, we compact H-bond connectivity through screening a series of additives to stimulate electrochemical proton quantum tunneling (QT) behaviors of “through-barrier”, which are virtually impossible for heavier D-relevant motions. The average H-bond length of H 2 O⋯OH − is 3.4% shorter (2.78 Å) with isopropanol additive at the engineered interface. Fundamentally, QT effects are magnified by selectively promoting proton transfer-involved reactions through strengthening the H-bond and filling the H-bond gap, which are further proved by both experimental Arrhenius plots with near small-curvature tunneling approximation and a stronger proton excursion in path integral molecular dynamics simulations. Hence, a record-high H 2 O separation factor of 276 is realized at room temperature with a three-order-of-magnitude growth of H/D kinetic isotope effect constant up to 10,165. Significantly, a large-scale multistage reactor is engineered to obtain continuous enrichment of heavy water with a deuterium atomic fraction over 80%.
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