Liu Sheng, Zhang Weikun, Wang Hao, Liu Jinwei, Fu Tao, Xu Yi, Li Jing, Zhao Huazhang
The Key Laboratory of Water and Sediment Sciences (Ministry of Education), College of Environmental Sciences and Engineering, Peking University, Beijing, 100871, P. R. China.
Hoffmann Institute of Advanced Materials, Shenzhen Polytechnic, Shenzhen, Guangdong, 518055, P. R. China.
Small. 2025 Jun;21(25):e2502555. doi: 10.1002/smll.202502555. Epub 2025 May 19.
The hydrolytic activity of nanozymes against organophosphorus nerve agents is related to the Lewis acidity (LA) of the metal sites, but no direct correlation has been identified. Understanding the influence mechanism of LA on activity is crucial for the rational design of nanozymes. Herein, M-NU-1200 is utilized with metal sites having different LA (M = Ce, Zr, and Hf) to evaluate, to the best of our knowledge, the impact of varying LA on the hydrolytic activities of nerve agent simulants. Solid precursors (Ce clusters) are utilized to synthesize Ce-NU-1200 with a uniform cubic morphology, enabling direct comparison of the activities among M-NU-1200. Our study reveals that Ce-NU-1200 exhibits notably higher catalytic performance compared to its analogs and surpasses the most advanced materials reported so far (K/K = 533 M min). This high performance can be attributed to the moderate LA of Ce sites, which promotes the polarization of the phosphorus center, electron withdrawing and transfer at MO sites, and imparts the neighboring M-OH with enhanced electronegativity for nucleophilic attack. It is illustrated that effective Lewis acidity (eLA), defined as the acidity of metal-ligand coordination, is the highest for Ce-NU-1200 and directly correlated with the hydrolytic activity of nanozymes.
纳米酶对有机磷神经毒剂的水解活性与金属位点的路易斯酸度(LA)有关,但尚未发现直接相关性。了解LA对活性的影响机制对于纳米酶的合理设计至关重要。在此,使用具有不同LA的金属位点的M-NU-1200(M = Ce、Zr和Hf),据我们所知,评估不同LA对神经毒剂模拟物水解活性的影响。使用固体前体(Ce簇)合成具有均匀立方形态的Ce-NU-1200,从而能够直接比较M-NU-1200之间的活性。我们的研究表明,Ce-NU-1200与其类似物相比表现出明显更高的催化性能,并且超过了迄今为止报道的最先进材料(K/K = 533 M min)。这种高性能可归因于Ce位点的适度LA,它促进了磷中心的极化、在MO位点的吸电子和电子转移,并赋予相邻的M-OH增强的亲核攻击电负性。结果表明,定义为金属-配体配位酸度的有效路易斯酸度(eLA)对于Ce-NU-1200最高,并且与纳米酶的水解活性直接相关。