大学化学

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吡啶间位卤化反应——从经典定位效应到自旋密度控制的自由基偶联位点选择性

张继华, 戚孝天, 程强   

  1. 武汉大学化学与分子科学学院, 湖北 武汉 430072
  • 收稿日期:2026-06-25 录用日期:2026-09-18
  • 通讯作者: 戚孝天, 程强 E-mail:qi7xiaotian@whu.edu.cn;chengqiang@whu.edu.cn Xiaotian Qi, Qiang Cheng
  • 基金资助:
    国家自然科学基金(22571240)

meta-Selective halogenation of pyridines: from classical directing effects to spin-density-controlled site-selective radical coupling

Jihua Zhang, Xiaotian Qi, Qiang Cheng   

  1. College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, Hubei Province, China
  • Received:2026-06-25 Accepted:2026-09-18
  • Contact: Xiaotian Qi, Qiang Cheng E-mail:qi7xiaotian@whu.edu.cn;chengqiang@whu.edu.cn

摘要: 吡啶及其衍生物的间位选择性C–H键官能团化一直是有机合成化学的重大挑战。经典定位效应指出,吡啶的芳香亲电取代(SEAr)反应受其固有电子效应控制而发生在间位,但反应活性很低,需要苛刻的反应条件才能实现。本文结合我们发表于《自然·合成》上的最新研究成果,从教学视角系统梳理了吡啶卤化的经典机理与前沿策略。我们报道了一种吡啶自由基阳离子介导的间位选择性自由基-自由基偶联卤化反应新策略,利用密度泛函理论(DFT)计算揭示了该自由基物种的自旋密度分布及其对自由基偶联反应性和选择性的影响,并结合π–π堆积结构特征阐明实验观测到的C5优于C3的位点选择性。本文进一步从教学角度提出将该前沿案例融入本科基础有机化学等课程的设计建议,进一步加深学生对经典定位效应的理解,并初步奠定自由基反应学习基础,理解自由基化学反应区域选择性的独特性,从而培养学生对有机化学反应机理的灵活思辨能力。

关键词: 吡啶卤化, 间位选择性, 吡啶自由基阳离子, 自由基化学, 自旋密度, 本科化学教学

Abstract: meta-Selective C–H functionalization of pyridines and their derivatives has long remained a formidable challenge in organic synthesis. Classical directing effects dictate that electrophilic aromatic substitution (SEAr) of pyridines occurs at the meta-position due to their intrinsic electronic properties; however, the low reactivity of pyridines necessitates harsh reaction conditions. Building on our recent study published in Nature Synthesis, this article provides a systematic overview of classical mechanisms and emerging strategies for pyridine halogenation from a pedagogical perspective. In that study, we reported a novel strategy for meta-selective halogenation via radical–radical cross-coupling mediated by pyridinium radical cations. Density functional theory (DFT) calculations reveal the spin density distribution of this radical species and its influence on the reactivity and selectivity of radical coupling. Furthermore, the experimentally observed preference for C5 over C3 functionalization is rationalized by π–π stacking interactions. From a teaching standpoint, we propose incorporating this cutting-edge example into undergraduate courses such as introductory organic chemistry. This approach aims to deepen students’ understanding of classical directing effects, establish a foundational knowledge of radical chemistry, and illustrate the unique regioselectivity of radical reactions, thereby fostering flexible critical thinking regarding organic reaction mechanisms.

Key words: Pyridine halogenation, Meta-Selectivity, Pyridinium radical cation, Radical chemistry, Spin density, Undergraduate chemistry course