化学学报    

苯并三氮唑类化合物的电化学N-三氟甲基化-N'-烃基化反应

朱淑萍, 韦倩倩, 张延华*   

  1. 南京工业大学 化学与分子工程学院 南京 211816
  • 投稿日期:2026-08-26
  • 基金资助:
    南京工业大学科研启动基金(Nos. 39837126)资助.

Electrochemical N-Trifluoromethylation-N'-Alkylation of Benzotriazole compounds

Shuping Zhu, Qianqian Wei, Yanhua Zhang*   

  1. School of Chemistry and Molecular Engineering, Nanjing Tech University, Nanjing 211816, P. R. China
  • Received:2026-08-26
  • Contact: * E-mail: ias_yhzhang@njtech.edu.cn
  • Supported by:
    Start-up Fund from Nanjing Tech University (Nos. 39837126).

本文利用电化学策略,成功实现了苯并三氮唑类化合物的N-三氟甲基化-N'-烃基化。在以碳布为阳极、铂片为阴极、Ag/AgCl为参比电极的三电极体系中,当以CF3SO2Na为三氟甲基源、n-Bu4NOAc为支持电解质和甲基源以及乙腈/水为溶剂时,多种含不同取代基的苯并三氮唑类化合物在1.7 V恒电位条件下可顺利进行N-三氟甲基化-N'-甲基化反应,以良好的产率得到目标产物。添加剂Co(OAc)2·4H2O被证实对该反应有明显的促进作用。此外,采用含有不同羧酸根离子的钠盐为支持电解质,进一步拓展了氮原子上烃基取代基的适用范围,包括各种类型的烷基取代基、苯基和羰基等。机理研究表明,反应可能涉及三氟甲基自由基和烃基自由基的生成及其与氮杂环的依次加成与偶联步骤。该电化学合成方法无需使用化学计量的氧化剂或贵金属催化剂,具有良好的官能团耐受性,为构建N-CF3功能化分子提供了一条绿色、高效的合成途径。

关键词: 电化学, 苯并三氮唑类化合物, N-三氟甲基化-N'-烃基化反应, 羧酸钠, 三氟甲基亚磺酸钠

The conventional methods for constructing fluorinated nitrogen‑containing heterocycles often rely on the use of expensive fluorinating reagents, noble‑metal catalysts, or harsh reaction conditions, which significantly limit their practical utility in pharmaceutical and materials chemistry. To overcome these limitations, researchers have devoted considerable effort to developing more efficient and selective fluorination strategies, particularly those compatible with sustainable synthetic protocols. In recent years, electrochemistry has emerged as a powerful and environmentally benign platform for enabling challenging bond‑formation processes without the need for stoichiometric oxidants. Its ability to generate reactive intermediates—such as radicals and radical cations—directly at electrode surfaces offers unique opportunities for precise control over reaction pathways. Among various fluorinated motifs, the trifluoromethyl (CF3) group stands out due to its remarkable ability to modulate the physicochemical properties of bioactive molecules. Benzotriazole derivatives, as privileged nitrogen heterocycles, are widely present in pharmaceuticals, agrochemicals, and functional materials, yet their N-CF3 functionalization remains underdeveloped, especially under mild conditions. In this study, an electrochemical approach for the N-trifluoromethylation-N'-alkylation of benzotriazoles and related azoles under ambient conditions was developed. In a three-electrode electrochemistry system with carbon cloth as the anode, platinum plate as the cathode and Ag/AgCl as the reference electrode, the reaction proceeded smoothly with CF3SO2Na as the CF3 source and carboxylate salts as both the supporting electrolyte and alkyl source. The addition of Co(OAc)2·4H2O was essential for enhancing the reactivity, likely through facilitation of anodic oxidation processes. The reaction results revealed that a MeCN/H2O (8:1) solvent system and a constant applied potential of 1.7 V delivered optimal efficiency, affording up to 95% HPLC yield and 84% isolated yield for the model benzotriazole substrate within 3 h. The methodology demonstrated broad substrate scope, accommodating diverse benzotriazole derivatives, with product isomers dictated by the symmetry of the azole ring. Furthermore, variation of the carboxylate component enabled introduction of alkyl, aryl and acyl groups at the N'-position, showcasing good applicability. A possible mechanism involving anodic generation of alkyl radicals and CF3· radicals, followed by sequential addition to the azole framework was proposed. Gram-scale experiments with model substrate proceeded smoothly and afforded 77% yield of target product, demonstrating potential synthetic practicality of this strategy in the future. Overall, this electrochemical synthesis method provides a green and efficient synthesis route to construct N-CF3 functionalized heterocycles, without the use of stoichiometric oxidants or noble metal catalysts.

Key words: electrochemistry, benzotriazole compounds, N-Trifluoromethylation-N'-alkylation, sodium carboxylate, sodium trifluoromethanesulfinate