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通过 Ir 催化剂上的 H+/D+交换,从 D2O 中脱氢高效生成 D2:用于通过转移氘化作用合成氘代化合物。

Highly efficient D2 generation by dehydrogenation of formic acid in D2O through H+/D+ exchange on an iridium catalyst: application to the synthesis of deuterated compounds by transfer deuterogenation.

机构信息

National Institute of Advanced, Industrial Science and Technology, Tsukuba Central 5-2, 1-1-1 Higashi, Tsukuba, Ibaraki 305-8565, Japan.

出版信息

Chemistry. 2012 Jul 23;18(30):9397-404. doi: 10.1002/chem.201200576. Epub 2012 Jun 20.

Abstract

Deuterated compounds have received increasing attention in both academia and industrial fields. However, preparations of these compounds are limited for both economic and practical reasons. Herein, convenient generation of deuterium gas (D(2)) and the preparation of deuterated compounds on a laboratory scale are demonstrated by using a half-sandwich iridium complex with 4,4'-dihydroxy-2,2'-bipyridine. The "umpolung" (i.e., reversal of polarity) of a hydrogen atom of water was achieved in consecutive reactions, that is, a cationic H(+)/D(+) exchange reaction and anionic hydride or deuteride transfer, under mild conditions. Selective D(2) evolution (purity up to 89 %) was achieved by using HCO(2)H as an electron source and D(2)O as a deuterium source; a rhodium analogue provided HD gas (98 %) under similar conditions. Furthermore, pressurized D(2) (98 %) without CO gas was generated by using DCO(2)D in D(2)O in a glass autoclave. Transfer deuterogenation of ketones gave α-deuterated alcohols with almost quantitative yields and high deuterium content by using HCO(2)H in D(2)O. Mechanistic studies show that the H(+)/D(+) exchange reaction in the iridium hydride complex was much faster than β-elimination and hydride (deuteride) transfer.

摘要

氘代化合物在学术界和工业领域都受到了越来越多的关注。然而,由于经济和实际原因,这些化合物的制备受到限制。在此,通过使用具有 4,4'-二羟基-2,2'-联吡啶的半夹心铱配合物,方便地生成了氘气(D(2))并在实验室规模上制备了氘代化合物。在温和条件下,通过连续反应实现了水分子中一个氢原子的“反转”(即氢离子/氘离子的交换反应和负离子氢化物或氘化物转移)。使用 HCO(2)H 作为电子源和 D(2)O 作为氘源,可以选择性地得到 D(2)(纯度高达 89%);类似条件下,使用 Rh 类似物可以得到 HD 气体(98%)。此外,在玻璃高压釜中使用 DCO(2)D 在 D(2)O 中可以得到不含 CO 气体的 98%的高压 D(2)。使用 HCO(2)H 在 D(2)O 中进行酮的转移氘化反应,可以得到几乎定量产率和高氘含量的α-氘代醇。机理研究表明,铱氢配合物中的 H(+)/D(+)交换反应比β消除和氢化物(氘化物)转移快得多。

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