Bose Paulami, Srikrishnarka Pillalamarri, Paatelainen Matias, Kini Amoghavarsha Ramachandra, Som Anirban, Pradeep Thalappil
DST Unit of Nanoscience (DST UNS) and Thematic Unit of Excellence (TUE), Department of Chemistry, Indian Institute of Technology Madras, Chennai 600 036, India.
Faculty of Engineering and Natural Sciences, Tampere University, Korkeakoulunkatu 3, FI-33720, Tampere, Finland.
Nanoscale. 2025 Jan 2;17(2):803-812. doi: 10.1039/d4nr02820a.
Atomically precise noble metal nanoclusters (NCs) are molecular materials known for their precise composition, electronic structure, and unique optical properties, exhibiting chemical reactivity. Herein, we demonstrated a simple one-pot method for fabricating self-assembled Ag-Au bimetallic mesostructures using a reaction between 2-phenylethanethiol (PET)-protected atomically precise gold NCs and colloidal silver nanoparticles (Ag NPs) in a tunable reaction microenvironment. The reaction carried out in toluene at 45 °C with constant stirring at 250 revolutions per minute (RPM) yielded a thermally stable, micron-sized cuboidal mesocrystals of self-assembled AgAu@PET nanocrystals. However, the reaction in dichloromethane at room temperature with constant stirring at 250 RPM resulted in a self-assembled mesostructure of randomly close-packed AgAu@PET NPs. Using a host of experimental techniques, including optical and electron microscopy, optical absorption spectroscopy, and light scattering, we studied the nucleation and growth processes. Our findings highlight a strategy to utilize precision and plasmonic NP chemistry in tailored microenvironments, leading to customizable bimetallic hybrid three-dimensional nanomaterials with potential applications.
原子精确的贵金属纳米团簇(NCs)是一种分子材料,以其精确的组成、电子结构和独特的光学性质而闻名,并具有化学反应活性。在此,我们展示了一种简单的一锅法,即在可调反应微环境中,利用2-苯乙硫醇(PET)保护的原子精确金纳米团簇与胶体银纳米颗粒(Ag NPs)之间的反应,制备自组装的Ag-Au双金属介观结构。该反应在甲苯中于45℃下以每分钟250转(RPM)的速度持续搅拌进行,得到了热稳定的、微米级的自组装AgAu@PET纳米晶体立方介晶。然而,在二氯甲烷中于室温下以250 RPM的速度持续搅拌进行的反应,产生了随机紧密堆积的AgAu@PET NPs的自组装介观结构。我们使用了一系列实验技术,包括光学和电子显微镜、光吸收光谱和光散射,研究了成核和生长过程。我们的研究结果突出了一种在定制微环境中利用精确性和等离子体NP化学的策略,从而产生具有潜在应用的可定制双金属混合三维纳米材料。