Hydrogenolysis of Urethanes and Ureas Catalyzed by Manganese Complex Supported by Bidentate PN Ligand

IF 2.5 3区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR
Takanori Iwasaki*, Ninna Saito, Yuto Yamada, Sota Ajiro and Kyoko Nozaki*, 
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引用次数: 0

Abstract

Hydrogenolysis of less reactive carbonyl compounds such as urethanes and ureas is a challenging but promising transformation to utilize new chemical feedstocks, such as plastic waste and carbon dioxide fixation products. In these transformations, pincer-type complexes consisting of Ru and Mn have been intensively investigated but catalyst design with bidentate ligand systems has rarely been explored. We report here the synthesis of a Mn complex supported by a PN bidentate ligand consisting of phosphino and pyrrolido coordination sites, the molecular structure of which has been fully characterized. The Mn complex catalyzed the hydrogenolysis of urethanes and ureas. In the case of the hydrogenolysis of 1,3-diphenylurea, formanilide was obtained as a product. In addition, the present Mn complex did not promote the hydrogenation of carboxamides, showing a unique reactivity that preferentially reduces urethanes and ureas over carboxamides, in contrast to the general reactivity order of carbonyl compounds.

Abstract Image

Abstract Image

双齿 PN 配体支持的锰络合物催化的尿烷和尿素氢解反应
活性较低的羰基化合物(如氨基甲酸乙酯和氨基脲)的氢解是一种具有挑战性但前景广阔的转化,可用于利用新的化学原料(如塑料废料和二氧化碳固定产品)。在这些转化过程中,由 Ru 和 Mn 组成的钳型配合物已经得到了深入研究,但采用双齿配体系统的催化剂设计却鲜有探索。我们在此报告了由膦和吡咯烷配位位点组成的 PN 双叉配体支持的锰配合物的合成,该配合物的分子结构已完全表征。该锰配合物催化了氨基甲酸乙酯和脲的氢解。在 1,3-二苯基脲的氢解过程中,产物为甲酰苯胺。此外,这种锰络合物并不促进羧酰胺的氢化,显示出一种独特的反应活性,即优先还原氨基甲酸乙酯和脲,而不是羧酰胺,这与羰基化合物的一般反应活性顺序截然不同。
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来源期刊
Organometallics
Organometallics 化学-无机化学与核化学
CiteScore
5.60
自引率
7.10%
发文量
382
审稿时长
1.7 months
期刊介绍: Organometallics is the flagship journal of organometallic chemistry and records progress in one of the most active fields of science, bridging organic and inorganic chemistry. The journal publishes Articles, Communications, Reviews, and Tutorials (instructional overviews) that depict research on the synthesis, structure, bonding, chemical reactivity, and reaction mechanisms for a variety of applications, including catalyst design and catalytic processes; main-group, transition-metal, and lanthanide and actinide metal chemistry; synthetic aspects of polymer science and materials science; and bioorganometallic chemistry.
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