Design of hollow copper nanospheres/reduced graphene oxide nanocomposites for high performance catalytic reduction of p-nitrophenol

Xiaoyun Qin , Meiyan Yang , Peijun Yin , Xiangdong Shi , Fenghua Chen , Yanghai Gui , Jianbo Zhao , Liying Jiang , Dan Luo
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Abstract

The development of functional materials for catalysis applications is a continuing issue, particularly in aqueous-phase catalysis. The creation of inexpensive catalysts with improved catalytic activity is still difficult. In this study, the hollow structured Cu nanospheres decorated on the reduced graphene oxide sheets (h-CuNS/rGO) nanocomposites were successfully prepared and applied in the catalytic reduction of p-nitrophenol (p-NP) in water using sodium borohydride as the reducing agent to obtain industrially useful p-aminophenol (p-AP) within a short time. The structure and morphology of h-CuNS/rGO were studied in order to get a full knowledge of the mechanism underlying the creation of its distinctive hollow structure. In the reduction of p-NP, the h-CuNS/rGO demonstrated significant catalytic activity and reusability. The catalytic hydrogenation mechanism on the surface of h-CuNS/rGO was shown to exhibit a synergistic effect between the catalytic h-CuNS and the supporting rGO. The hollow structure, abundant oxygen vacancies as well as the supported rGO worked together to enhance the catalytic activity during p-NP reduction. Therefore, this work proposes a strategy for the simple synthesis of nanocatalyst with high catalytic performance, which endows the potential applications including catalysis.

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中空铜纳米球/还原性氧化石墨烯纳米复合材料对硝基苯酚的高效催化还原设计
用于催化应用的功能材料的开发是一个持续的问题,特别是在水相催化中。制造具有改进的催化活性的廉价催化剂仍然是困难的。在本研究中,成功地制备了修饰在还原氧化石墨烯片(h-CuNS/rGO)纳米复合材料上的中空结构Cu纳米球,并将其应用于以硼氢化钠为还原剂的水中对硝基苯酚(p-NP)的催化还原,以在短时间内获得工业上有用的对氨基苯酚(p-AP)。研究了h-CuNS/rGO的结构和形态,以充分了解其独特中空结构的形成机制。在p-NP的还原过程中,h-CuNS/rGO表现出显著的催化活性和可重复使用性。在h-CuNS/rGO表面的催化加氢机制显示出催化h-CuNS与负载rGO之间的协同作用。中空结构、丰富的氧空位以及负载的rGO共同提高了p-NP还原过程中的催化活性。因此,本工作提出了一种简单合成具有高催化性能的纳米催化剂的策略,这赋予了包括催化在内的潜在应用。
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