Lv Xincong, Weng Jian
Department of Biomaterials, College of Materials, Xiamen University, Xiamen 361005, P.R. China.
Sci Rep. 2013 Nov 21;3:3285. doi: 10.1038/srep03285.
A ternary composite of hemin, gold nanoparticles and graphene is prepared by a two-step process. Firstly, graphene-hemin composite is synthesized through π-π interaction and then hydrogen tetracholoroauric acid is reduced in situ by ascorbic acid. This ternary composite shows a higher catalytic activity for decomposition of hydrogen peroxide than that of three components alone or the mixture of three components. The Michaelis constant of this composite is 5.82 times lower and the maximal reaction velocity is 1.81 times higher than those of horseradish peroxidase, respectively. This composite also shows lower apparent activation energy than that of other catalysts. The excellently catalytic performance could be attributed to the fast electron transfer on the surface of graphene and the synergistic interaction of three components, which is further confirmed by electrochemical characterization. The ternary composite has been used to determine hydrogen peroxide in three real water samples with satisfactory results.
通过两步法制备了血红素、金纳米颗粒和石墨烯的三元复合材料。首先,通过π-π相互作用合成石墨烯-血红素复合材料,然后用抗坏血酸原位还原四氯金酸。该三元复合材料对过氧化氢分解的催化活性高于单独的三种组分或三种组分的混合物。该复合材料的米氏常数分别比辣根过氧化物酶低5.82倍,最大反应速度高1.81倍。该复合材料的表观活化能也低于其他催化剂。优异的催化性能可归因于石墨烯表面的快速电子转移和三种组分的协同相互作用,电化学表征进一步证实了这一点。该三元复合材料已用于测定三个实际水样中的过氧化氢,结果令人满意