Department of Chemistry, University of Connecticut, Storrs, Connecticut 06269, United States.
Department of Materials Science and Chemical Engineering, Stony Brook University, Stony Brook, New York 11790, United States.
ACS Appl Mater Interfaces. 2023 Aug 30;15(34):40343-40354. doi: 10.1021/acsami.3c03053. Epub 2023 Aug 17.
This paper reports a robust strategy to catalyze in situ C-H oxidation by combining cobalt (Co) single-atom catalysts (SACs) and horseradish peroxidase (HRP). Co SACs were synthesized using the complex of Co phthalocyanine with 3-propanol pyridine at the two axial positions as the Co source to tune the coordination environment of Co by the stepwise removal of axial pyridine moieties under thermal annealing. These structural features of Co sites, as confirmed by infrared and X-ray absorption spectroscopy, were strongly correlated to their reactivity. All Co catalysts synthesized below 300 °C were inactive due to the full coordination of Co sites in octahedral geometry. Increasing the calcination temperature led to an improvement in catalytic activity for reducing O, although molecular Co species with square planar coordination obtained below 600 °C were less selective to reduce O to HO through the two-electron pathway. Co SACs obtained at 800 °C showed superior activity in producing HO with a selectivity of 82-85% in a broad potential range. In situ production of HO was further coupled with HRP to drive the selective C-H bond oxidation in 2-naphthol. Our strategy provides new insights into the design of highly effective, stable SACs for selective C-H bond activation when coupled with natural enzymes.
本文报道了一种通过结合钴(Co)单原子催化剂(SACs)和辣根过氧化物酶(HRP)原位催化 C-H 氧化的稳健策略。Co SACs 是通过 Co 酞菁与 3-丙醇吡啶在两个轴向位置的复合物作为 Co 源合成的,通过在热退火下逐步去除轴向吡啶基团来调节 Co 的配位环境。这些 Co 位点的结构特征,通过红外和 X 射线吸收光谱得到证实,与它们的反应性密切相关。所有在 300°C 以下合成的 Co 催化剂都由于 Co 位点在八面体几何形状中的完全配位而没有活性。提高煅烧温度会提高还原 O 的催化活性,尽管在 600°C 以下获得的具有平面正方形配位的分子 Co 物种通过两电子途径还原 O 形成 HO 的选择性较低。在 800°C 下获得的 Co SACs 在产生 HO 方面表现出优异的活性,在较宽的电位范围内具有 82-85%的选择性。HO 的原位生成进一步与 HRP 耦合,以驱动 2-萘酚中选择性的 C-H 键氧化。我们的策略为与天然酶结合时高效、稳定的 SACs 用于选择性 C-H 键活化提供了新的见解。