Cheruvathoor Poulose Aby, Zoppellaro Giorgio, Konidakis Ioannis, Serpetzoglou Efthymis, Stratakis Emmanuel, Tomanec Ondřej, Beller Matthias, Bakandritsos Aristides, Zbořil Radek
Regional Centre of Advanced Technologies and Materials, Czech Advanced Technology and Research Institute, Palacký University, Olomouc, Czech Republic.
Institute of Electronic Structure and Laser Foundation for Research and Technology-Hellas, Heraklion, Greece.
Nat Nanotechnol. 2022 May;17(5):485-492. doi: 10.1038/s41565-022-01087-3. Epub 2022 Mar 28.
Reduction of nitroaromatics to the corresponding amines is a key process in the fine and bulk chemicals industry to produce polymers, pharmaceuticals, agrochemicals and dyes. However, their effective and selective reduction requires high temperatures and pressurized hydrogen and involves noble metal-based catalysts. Here we report on an earth-abundant, plasmonic nano-photocatalyst, with an excellent reaction rate towards the selective hydrogenation of nitroaromatics. With solar light as the only energy input, the chalcopyrite catalyst operates through the combined action of hot holes and photothermal effects. Ultrafast laser transient absorption and light-induced electron paramagnetic resonance spectroscopies have unveiled the energy matching of the hot holes in the valence band of the catalyst with the frontier orbitals of the hydrogen and electron donor, via a transient coordination intermediate. Consequently, the reusable and sustainable copper-iron-sulfide (CuFeS) catalyst delivers previously unattainable turnover frequencies, even in large-scale reactions, while the cost-normalized production rate stands an order of magnitude above the state of the art.
将硝基芳烃还原为相应的胺是精细和大宗化学品行业生产聚合物、药品、农用化学品和染料的关键过程。然而,它们的有效和选择性还原需要高温、高压氢气,并且涉及基于贵金属的催化剂。在此,我们报道了一种储量丰富的等离子体纳米光催化剂,它对硝基芳烃的选择性氢化具有优异的反应速率。以太阳光作为唯一的能量输入,黄铜矿催化剂通过热空穴和光热效应的联合作用运行。超快激光瞬态吸收和光致电子顺磁共振光谱揭示了催化剂价带中的热空穴与氢和电子供体的前沿轨道通过瞬态配位中间体实现能量匹配。因此,这种可重复使用且可持续的铜铁硫化物(CuFeS)催化剂即使在大规模反应中也能提供以前无法达到的周转频率,而成本归一化生产率比现有技术高出一个数量级。