Yang Yulin, Wang Yuanyuan, Huang Qizhen, Zhang Rongzheng, Wang Yun, Han Juan, Wang Lei
School of Chemistry and Chemical Engineering, Jiangsu University, Zhenjiang 212013, P. R. China.
School of Food and Biological Engineering, Jiangsu University, Zhenjiang 212013, P. R. China.
Inorg Chem. 2024 Jun 17;63(24):11325-11339. doi: 10.1021/acs.inorgchem.4c01342. Epub 2024 Jun 6.
Metal-organic frameworks (MOFs) are limited by small pores and buried active sites, and their enzyme-like catalytic activity is still very low. Herein, laccase was employed as the organic component to construct laccase@Cu(BTC) nanofractal microspheres. During the preparation process, laccase adsorbed Cu by electrostatic attractive interaction, then combined with Cu by coordination interaction, and finally induced the in situ growth of HBTC in multiple directions by electrostatic repulsion. Interestingly, electrostatic repulsion was tuned efficiently by adjusting the Cu concentration to obtain laccase@Cu(BTC) nanofractal microspheres (nanosheet microspheres, nanorod microspheres, and nanoneedle microspheres). Laccase@Cu(BTC) nanorod microspheres exhibited the highest catalytic efficiency, which was 14-fold higher than that of smooth microspheres. The mechanism of the improvement of catalytic activity in the degradation of BPA was proposed for the first time. The enhanced catalytic activity depended on the adsorption effect of the nanorod framework and dual cycle synergistic catalysis of Cu/Cu active sites, which accelerated substrate diffusion and electron transfer. The catalytic mechanism of enzyme@MOF nanofractal microspheres not only deepens our understanding of enzyme and MOF synergistic catalysis but also provides new insights into the design of catalysts.
金属有机框架材料(MOFs)受限于小孔径和埋藏的活性位点,其类酶催化活性仍然很低。在此,漆酶被用作有机组分来构建漆酶@Cu(BTC)纳米分形微球。在制备过程中,漆酶通过静电吸引相互作用吸附铜,然后通过配位相互作用与铜结合,最后通过静电排斥诱导HBTC在多个方向原位生长。有趣的是,通过调节铜浓度有效地调控静电排斥,从而获得漆酶@Cu(BTC)纳米分形微球(纳米片微球、纳米棒微球和纳米针微球)。漆酶@Cu(BTC)纳米棒微球表现出最高的催化效率,比光滑微球高出14倍。首次提出了在双酚A降解中催化活性提高的机制。增强的催化活性取决于纳米棒框架的吸附作用以及Cu/Cu活性位点的双循环协同催化,这加速了底物扩散和电子转移。酶@MOF纳米分形微球的催化机制不仅加深了我们对酶与MOF协同催化的理解,也为催化剂的设计提供了新的见解。