Qin Yazhou, Lu Yuxiang, Pan Wufan, Yu Dongdong, Zhou Jianguang
State Key Laboratory of Industrial Control Technology, College of Control Science and Engineering, Zhejiang University 38 Zheda Road Hangzhou 310027 P. R. China
Department of Chemistry, Zhejiang University Hangzhou 310027 China.
RSC Adv. 2019 Apr 2;9(18):10314-10319. doi: 10.1039/c9ra00733d. eCollection 2019 Mar 28.
The controlled synthesis of metallic nanomaterials has attracted the interest of many researchers due to their shape-dependent physical and chemical properties. However, most of the synthesized nanocrystals cannot be combined with spectroscopy to measure the reaction kinetics, thus limiting their use in monitoring the catalytic reaction process to elucidate its mechanism. As a powerful analytical tool, surface-enhanced Raman spectroscopy (SERS) can be used to achieve monitoring of catalytic reactions by developing bifunctional metal nanocrystals with both SERS and catalytic activities. Herein, we have developed a simple one-pot synthesis method for the large-scale and size-controllable preparation of highly rough hydrangea Au hollow nanoparticles. The growth mechanism of flower-like Au hollow nanostructures was also discussed. The hollow nanostructure with a 3D hierarchical flower shell combines the advantages of hollow nanostructure and hierarchical nanostructure, which possess high SERS activity and good catalytic activity simultaneously. Furthermore, the hydrangea Au hollow crystals were used as a bifunctional nanocatalyst for monitoring of the reduction reaction of 4-nitrothiophenol to the 4-aminothiophenol.
金属纳米材料的可控合成因其依赖形状的物理和化学性质而吸引了众多研究人员的关注。然而,大多数合成的纳米晶体无法与光谱学结合来测量反应动力学,从而限制了它们在监测催化反应过程以阐明其机理方面的应用。作为一种强大的分析工具,表面增强拉曼光谱(SERS)可通过开发具有SERS和催化活性的双功能金属纳米晶体来实现对催化反应的监测。在此,我们开发了一种简单的一锅合成方法,用于大规模、尺寸可控地制备高度粗糙的绣球花状金空心纳米粒子。还讨论了花状金空心纳米结构的生长机理。具有三维分级花壳的空心纳米结构结合了空心纳米结构和分级纳米结构的优点,同时具有高SERS活性和良好的催化活性。此外,绣球花状金空心晶体被用作双功能纳米催化剂,用于监测4-硝基硫酚还原为4-氨基硫酚的反应。