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February 28, 2026Proceedings of the National Academy of Sciences0 citationsOpen Access

Leveraging the kinetic isotope effect by compact H-bond motifs for electrochemical hydrogen isotope separation

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GWGuobin WenHLHaiqi LiangSLShuxuan Liu

Key Points

  • Investigate methods to enhance electrochemical hydrogen isotope separation by leveraging kinetic isotope effects.
  • Screened a series of additives to improve hydrogen bonding connectivity.
  • Measured the H-bond length and its effects on quantum tunneling behaviors.
  • Utilized path integral molecular dynamics simulations to analyze proton transfer.
  • Conducted experiments on Arrhenius plots to validate findings.
  • Achieved a record-high water separation factor of 276 at room temperature.
  • Increased the kinetic isotope effect constant to 10,165.
  • Realized continuous enrichment of heavy water with deuterium fraction over 80%.

Abstract

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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Cite This Study

Wen et al. (2026) studied this question.

synapsesocial.com/papers/69a287130a974eb0d3c028a5https://doi.org/10.1073/pnas.2533803123
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