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乙酸钴辅助酰肼在温和条件下直接合成酰腙

Co(II) Acetate-Assisted Direct Synthesis of Acyl Hydrazones from Acyl Hydrazides under Mild Conditions.

作者信息

Pal Adwitiya, Das Krishna Mohan, Sau Subham, Thakur Arunabha

机构信息

Department of Chemistry, Jadavpur University, Kolkata, 700032, West Bengal, India.

出版信息

Chem Asian J. 2023 Nov 16;18(22):e202300755. doi: 10.1002/asia.202300755. Epub 2023 Oct 24.

DOI:10.1002/asia.202300755
PMID:37814533
Abstract

Acyl hydrazones are a class of synthetically important organic compounds that are recurrently in high demand for synthesis and use in various fields of chemistry and biology. We report the first Co(II) catalyzed one-component one-pot sustainable synthesis of acyl hydrazones only from acyl hydrazides under mild reaction conditions. Traditional and contemporary methodologies use two components (usually acyl hydrazides and aldehydes/ketones/alcohols/styrene) as the coupling partners. Our protocol, on the other hand, involves the in situ generation of aldehyde intermediate (detected by gas chromatography) from the acyl hydrazide, which then undergoes condensation with another molecule of the same acyl hydrazide in the same pot to yield acyl hydrazones in presence of mild base K CO and low-cost Co(OAc)  ⋅ 4H O as catalyst. This method shows good functional group tolerance with good to excellent yield of products. Furthermore, some of the resulting acyl hydrazones have been used as synthetic precursors and explored in various post-synthetic modifications to afford N-heterocyclic compounds. Furthermore, photoswitchable properties of few synthesized acyl hydrazones are also explored using their E/Z isomerization around the C=N bond, as realized by high-pressure liquid chromatography (HPLC) and UV-vis spectroscopic studies.

摘要

酰腙是一类具有重要合成意义的有机化合物,在化学和生物学的各个领域中,其合成和应用一直有着很高的需求。我们报道了首例在温和反应条件下仅以酰肼为原料,由钴(II)催化的单组分一锅法可持续合成酰腙的方法。传统和现代方法通常使用两种组分(通常是酰肼和醛/酮/醇/苯乙烯)作为偶联伙伴。另一方面,我们的方法涉及从酰肼原位生成醛中间体(通过气相色谱检测),然后在温和的碱碳酸钾和低成本的醋酸钴·4H₂O作为催化剂的存在下,该醛中间体在同一反应釜中与另一分子相同的酰肼发生缩合反应,生成酰腙。该方法对官能团具有良好的耐受性,产物收率良好至优异。此外,一些所得的酰腙已被用作合成前体,并在各种合成后修饰中进行探索,以得到氮杂环化合物。此外,还利用少数合成酰腙围绕C=N键的E/Z异构化,通过高压液相色谱(HPLC)和紫外可见光谱研究,探索了它们的光开关性质。

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