光催化CO2参与的σ键断裂羧基化反应研究进展
收稿日期: 2022-06-02
修回日期: 2022-07-13
网络出版日期: 2022-08-10
基金资助
广东省教育厅产教融合创新平台(2021CJPT014); 广东省教育厅创新团队(2022KCXTD054); 深圳职业技术学院深圳市高端人才科研启动(6022310047k); 深圳市科技创新委员会(JSGG20201103153800002); 深圳市科技创新委员会(GJHZ20200731095412037); 深圳市科技创新委员会(JCYJ20200109141808025); 深圳职业技术学院博士后基金(6021330006K)
Recent Advances in Photocatalytic Carboxylation with CO2 via σ-Bond Cleavage
Received date: 2022-06-02
Revised date: 2022-07-13
Online published: 2022-08-10
Supported by
Innovation Platform for the Integration of Production and Education of Guangdong Provincial Education Department(2021CJPT014); Innovation Team of Guangdong Education Department(2022KCXTD054); Scientific Research Startup Fund for Shenzhen High-Caliber Personnel of Shenzhen Polytechnic(6022310047k); Shenzhen Science and Technology Innovation Committee(JSGG20201103153800002); Shenzhen Science and Technology Innovation Committee(GJHZ20200731095412037); Shenzhen Science and Technology Innovation Committee(JCYJ20200109141808025); Post-doctoral Foundation Project of Shenzhen Polytechnic(6021330006K)
窦谦 , 汪太民 , 李嗣锋 , 房丽晶 , 翟宏斌 , 程斌 . 光催化CO2参与的σ键断裂羧基化反应研究进展[J]. 有机化学, 2022 , 42(12) : 4257 -4274 . DOI: 10.6023/cjoc202206003
Carbon dioxide (CO2), as the main components of greenhouse gases, is one of the most abundant carbon sources at present. In organic chemistry, CO2 is often used as C1 synthon to synthesize carboxylic acids by constructing C—C bond. Transition metal catalysis has developed as a powerful tool for the conversion and utilization of CO2. In order to achieve the strategic goal of “double carbon”, it is of great significance to develop green and sustainable CO2 conversion and utilization technology combined with contemporary hot topics in the field of organic chemistry. In recent years, the development of photocatalytic synthesis technology provied a new opportunity for the conversion and utilization of CO2. The bond breaking of C—H bond, C—O bond, C—N and C—X bond and carboxylation reactions with CO2 by photocatalysis strategy were systematically described.
Key words: photocatalysis; CO2; σ-bond cleavage; carboxylation
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