Leung Ka Ho, Wong Lok Wing, Man Ping, Gao Shan, Jiang Shan, Huang Lingli, Chen Tianren, Zhao Jiong, Ly Thuc Hue
Department of Chemistry, Centre of Super Diamond & Advanced Films (COSDAF) State Key Laboratory of Marine Pollution, City University of Hong Kong, Kowloon, 999077, P. R. China.
City University of Hong Kong Shenzhen Research Institute, Shenzhen, 518057, P. R. China.
Small Methods. 2025 Aug;9(8):e2401720. doi: 10.1002/smtd.202401720. Epub 2025 Apr 25.
The synthesis of gold nanostructures (AuNS) is a classical topic, celebrated for the exceptional capabilities these structures exhibit across a spectrum of applications. Controlling the morphology and location of gold nanostructures on a large scale is typically a complex task. For example, the thermal annealing method necessitates precise management of the wetting behavior between the gold nanofilm and the substrate during heating to facilitate the transformation of the gold nanofilm into gold nanostructures. Here, the study innovatively applies 2D monolayer MoS as the sacrificial substrate for gold nanostructure growth, leveraging the epitaxy between MoS and gold. This relationship leads to the patterning of larger and more uniform gold nanostructures when contrasted with those grown on original SiO/Si substrates. Moreover, the gold nanostructures prepared under this method present four times enhancement in photoluminescence signal of AuNS/TMDC heterostructure, demonstrating the potential application on optoelectronics.
金纳米结构(AuNS)的合成是一个经典课题,因其在一系列应用中展现出的卓越性能而备受关注。大规模控制金纳米结构的形态和位置通常是一项复杂的任务。例如,热退火方法需要在加热过程中精确控制金纳米膜与衬底之间的润湿行为,以促进金纳米膜转变为金纳米结构。在此,该研究创新性地将二维单层MoS用作金纳米结构生长的牺牲衬底,利用MoS与金之间的外延关系。与在原始SiO/Si衬底上生长的金纳米结构相比,这种关系导致了更大且更均匀的金纳米结构的图案化。此外,用这种方法制备的金纳米结构在AuNS/TMDC异质结构的光致发光信号方面增强了四倍,展示了其在光电子学方面的潜在应用。