Jiaze Li, Linxu Xu, Feiyong Chen, Zhigang Yang, Xue Shen, Jin Wang, Sisi Xu, Yang Song
Institute of Resources and Environment Innovation, Shang Dong Jianzhu University Jinan 250101 People's Republic of China
RSC Adv. 2022 Sep 6;12(39):25262-25268. doi: 10.1039/d2ra05199k. eCollection 2022 Sep 5.
In this paper, disordered mesoporous silica loaded with ultrasmall-sized and highly dispersed CuO nanoparticles was obtained by an alkali-free strategy. Pre-prepared copper bromoacetate (CuBA) and (3-aminopropyl)triethoxysilane (APTES) were selected as reactants, which can be covalently connected with each other for the formation of functional hybrid precursors. Simultaneously, the protonated amino group with the ability to promote the hydrolysis of silane was generated, avoiding any additional catalyst. The covalent introduction of copper salt by chemical bonding promised the molecular-level dispersion of copper ions, favouring the generation of ultrasmall-sized and highly dispersed CuO nanoparticles in the silica matrix. The average diameter of this obtained composited silica material is around 700 nm, and CuO nanoparticles with an average diameter of ∼3 nm were uniformly dispersed in the silica matrix. Typically, disordered mesopores were obtained under the thermolysis of organic chains in the hybrid silica matrix; the BET surface area is 77 m g and the pore diameter is about 2.5 nm. The catalytic property was investigated and the results show that this obtained CuO@mSiO material has good catalytic performance in the reduction of organic dye with NaBH as the reducing agent.
在本文中,通过无碱策略获得了负载超小尺寸且高度分散的CuO纳米颗粒的无序介孔二氧化硅。选择预先制备的溴乙酸铜(CuBA)和(3-氨丙基)三乙氧基硅烷(APTES)作为反应物,它们可以相互共价连接以形成功能性杂化前驱体。同时,产生了具有促进硅烷水解能力的质子化氨基,避免了任何额外的催化剂。通过化学键合共价引入铜盐保证了铜离子的分子级分散,有利于在二氧化硅基质中生成超小尺寸且高度分散的CuO纳米颗粒。所得复合二氧化硅材料的平均直径约为700 nm,平均直径约为3 nm的CuO纳米颗粒均匀分散在二氧化硅基质中。通常,在杂化二氧化硅基质中有机链的热解过程中获得无序介孔;BET表面积为77 m²/g,孔径约为2.5 nm。对催化性能进行了研究,结果表明,所得的CuO@mSiO材料在以NaBH为还原剂还原有机染料方面具有良好的催化性能。