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通过钯阴极促进从重水到不饱和键的高通量D⁺转移以实现无溶剂氘代。

Boosted high-throughput D⁺ transfer from D₂O to unsaturated bonds via Pd cathode for solvent-free deuteration.

作者信息

Zhang Xiu-Feng, Zhang Shi-Nan, Zhang Zhao, Leng Bing-Liang, Lu Kai-Yuan, Chen Jie-Sheng, Li Xin-Hao

机构信息

State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, 200240, Shanghai, P. R. China.

出版信息

Nat Commun. 2025 May 15;16(1):4503. doi: 10.1038/s41467-025-59776-1.

Abstract

Deuterated organic compounds have gained significant attention due to their diverse applications, including reaction mechanism studies, probes for metabolism and pharmacokinetics, and raw materials for labeled compounds and polymers. Conventional reductive deuteration methods are limited by the high cost of deuterium sources (e.g., D₂ gas) and challenges in product separation and D₂O recycling. Electrochemical deuteration using D₂O is promising, but existing methods still suffer from low Faradaic efficiency (FE) and high separation costs. Herein, we report a deuterium ion diffusion-based all-solid electrolyser, featuring a RuO₂ anode for D generation from pure DO and a Pd/nitrogen-doped carbon-based liquid diffusion cathode (Pd/NC LDC) with tunable electron deficiencies Pd/NC to enhance selective deuteration. This system achieves over 99% selectivity for deuterated benzyl alcohol with a FE of 72%, and demonstrates broad applicability for the deuteration of aldehydes, ketones, imines, and alkenes with high FE and selectivity. Moreover, the Pd/NC-based electrolyser can achieve ten-gram-scale production of deuterated benzyl alcohol over 500 hours, showcasing its potential for high-throughput, solvent-free deuteration reactions in practical applications.

摘要

氘代有机化合物因其多样的应用而备受关注,包括反应机理研究、代谢和药代动力学探针以及标记化合物和聚合物的原料。传统的还原氘代方法受到氘源(如D₂气体)成本高以及产物分离和D₂O循环利用挑战的限制。使用D₂O的电化学氘代很有前景,但现有方法仍存在法拉第效率(FE)低和分离成本高的问题。在此,我们报道了一种基于氘离子扩散的全固态电解槽,其具有用于从纯D₂O生成D的RuO₂阳极和具有可调电子缺陷的Pd/氮掺杂碳基液体扩散阴极(Pd/NC LDC),以增强选择性氘代。该系统对氘代苯甲醇的选择性超过99%,FE为72%,并展示了对醛、酮、亚胺和烯烃进行氘代时具有高FE和选择性的广泛适用性。此外,基于Pd/NC的电解槽在500多小时内可实现十克规模的氘代苯甲醇生产,展示了其在实际应用中进行高通量、无溶剂氘代反应的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff8a/12081598/6dfa82090c23/41467_2025_59776_Fig1_HTML.jpg

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