Nakahara Hiroki, Hitomi Yutaka
Department of Applied Chemistry, Graduate School of Science and Engineering, Doshisha University, 1-3 Tatara Miyakodani, 610-0321, Kyotanabe, Kyoto, Japan.
Chemistry. 2024 Dec 23;30(72):e202402953. doi: 10.1002/chem.202402953. Epub 2024 Nov 16.
Laccase, a multi-copper oxidase, is limited by its optimal temperature range and isolation costs. To overcome these challenges, we synthesized copper-doped zeolitic imidazolate framework-67 (Cu-doped ZIF-67) with 16 mol % Cu as an artificial laccase catalyst. The introduced Cu site acts as the phenol oxidation site, and Co-based ZIF-67 is the four-electron oxygen reduction site. Laccase also employs this division of oxidation and reduction sites. Cu-doped ZIF-67 demonstrated significant catalytic activity, superior to natural laccase, especially at elevated temperatures, and maintained stability across multiple reaction cycles. These findings suggest that Cu-doped ZIF-67 is a robust, reusable alternative for industrial applications requiring high thermal stability and efficient catalysis.
漆酶是一种多铜氧化酶,受其最佳温度范围和分离成本的限制。为了克服这些挑战,我们合成了铜掺杂量为16 mol %的铜掺杂沸石咪唑酯骨架-67(Cu掺杂ZIF-67)作为人工漆酶催化剂。引入的铜位点作为酚氧化位点,而钴基ZIF-67是四电子氧还原位点。漆酶也采用这种氧化和还原位点的划分。Cu掺杂ZIF-67表现出显著的催化活性,优于天然漆酶,尤其是在高温下,并且在多个反应循环中保持稳定性。这些发现表明,Cu掺杂ZIF-67是一种坚固、可重复使用的替代品,适用于需要高热稳定性和高效催化的工业应用。