Xiao Jie, Wang Yanzhi, Xiao Bo, Liu Ben
Key Laboratory of Green Chemistry and Technology of Ministry of Education, College of Chemistry, Sichuan University Chengdu 610064 China
Chem Sci. 2025 Apr 15. doi: 10.1039/d4sc08608b.
Azobenzene (AZO) and its derivatives are of great importance in the dyestuff and pharmaceutical industries; however, their sustainable synthesis is much slower than expected due to the lack of high-performance catalysts. In this work, we report a robust yet highly efficient catalyst of PdS mesoporous nanospheres (MNSs) with confined mesostructures and binary elemental composition that achieved sustainable electrosynthesis of value-added AZO by selective hydrogenative coupling of nitrobenzene (NB) feedstocks in HO under ambient conditions. Using a renewable electricity source and HO, binary PdS MNSs exhibited a remarkable NB conversion of 95.4%, impressive AZO selectivity of 93.4%, and good cycling stability in selective NB hydrogenation reaction (NBHR) electrocatalysis. Detailed mechanism studies revealed that the confined mesoporous microenvironment of PdS MNSs facilitated the hydrogenative coupling of key intermediates (nitrosobenzene and phenylhydroxylamine) into AZO and/or azoxybenzene (AOB), while their electron-deficient S sites stabilized the Pd-spillovered active H* and inhibited the over-hydrogenation of AZO/AOB into AN. By coupling with the anodic methanol oxidation reaction (MOR), the (-)NBHR‖MOR(+) two-electrode system exhibits much better NB-to-AZO performance in a sustainable and energy-efficient manner. This work thus paves the way for designing functional mesoporous metal alloy electrocatalysts applied in the sustainable electrosynthesis of industrial value-added chemicals.
偶氮苯(AZO)及其衍生物在染料和制药行业具有重要意义;然而,由于缺乏高性能催化剂,它们的可持续合成速度比预期要慢得多。在这项工作中,我们报道了一种具有受限介观结构和二元元素组成的稳健且高效的PdS介孔纳米球(MNSs)催化剂,该催化剂在环境条件下通过硝基苯(NB)原料在HO中的选择性氢化偶联实现了增值AZO的可持续电合成。使用可再生电源和HO,二元PdS MNSs在选择性NB加氢反应(NBHR)电催化中表现出95.4%的显著NB转化率、93.4%的令人印象深刻的AZO选择性以及良好的循环稳定性。详细的机理研究表明,PdS MNSs的受限介孔微环境促进了关键中间体(亚硝基苯和苯胲)氢化为AZO和/或氧化偶氮苯(AOB),而其缺电子的S位点稳定了Pd溢出的活性H*并抑制了AZO/AOB过度氢化为苯胺(AN)。通过与阳极甲醇氧化反应(MOR)耦合,(-)NBHR‖MOR(+)双电极系统以可持续和节能的方式表现出更好的NB到AZO的性能。因此,这项工作为设计用于工业增值化学品可持续电合成的功能性介孔金属合金电催化剂铺平了道路。