Chen Xiaotang, Qian Bao-Chen
College of Medical Engineering, Jining Medical University, Jining 272000, China.
Molecules. 2025 Apr 11;30(8):1711. doi: 10.3390/molecules30081711.
Traditionally employed as hydrogenation reagents, benzothiazolines have emerged as versatile carbanion and radical transfer reagents, playing a vital role in the construction of various carbon-carbon bonds. The cutting-edge progress in photochemistry and radical chemistry have prompted the study of visible light-driven radical reactions, bringing benzothiazolines into a vibrant focus. Their chemical processes have been uncovered to encompass a variety of activation mechanisms, with five distinct modes having been identified. This work reviews the innovative applications of benzothiazolines as donors of alkyl or acyl groups, achieving hydroalkylation or hydroacylation and alkyl or acyl substitution. By examining their diverse activation mechanisms, this review highlights the potential of benzothiazolines serving as alkyl and acyl groups for further research and development. Moreover, this review will offer exemplary applications and inspiration to synthetic chemists, contributing to the ongoing evolution of benzothiazolines utility in organic synthesis.
苯并噻唑啉传统上用作氢化试剂,如今已成为多功能碳负离子和自由基转移试剂,在各种碳-碳键的构建中发挥着至关重要的作用。光化学和自由基化学的前沿进展推动了对可见光驱动自由基反应的研究,使苯并噻唑啉成为备受关注的热点。已发现它们的化学过程涵盖多种活化机制,已确定有五种不同模式。本文综述了苯并噻唑啉作为烷基或酰基供体的创新应用,实现氢烷基化或氢酰化以及烷基或酰基取代。通过研究它们多样的活化机制,本综述突出了苯并噻唑啉作为烷基和酰基在进一步研发方面的潜力。此外,本综述将为合成化学家提供示例性应用和启发,推动苯并噻唑啉在有机合成中的应用不断发展。