Journal of colloid and interface science | 2021

Single-parameter-tuned synthesis for shape-controlled gold nanocrystals stimulated by iron carbonyl.

 
 
 
 
 
 
 
 
 

Abstract


Shape-controlled synthesis is essential for functional nanomaterials, allowing deeper insights intothe relationship between the structures and the catalytic properties. Synthesis of nanocrystals with particular morphologies are usually studied independently among various synthetic methods, those underline that different surface capping ligands or shape-directing agents bring about disparate shapes. However, a single quantitative parameter method is still lacking to realize precise control of well-defined morphology nanocrystals, especially anisotropic structures, which is essential to understanding the growth process of nanocrystals. Herein, we proposed a single-parameter-tuned synthesis strategy for preparation of shape-controlled gold nanocrystals by regulating the amount of iron carbonyl, by which we produced highly monodisperse Au nanocrystals with various shapes in organic phase including nanoplates (diameter of 16.02\xa0±\xa01.13\xa0nm and thickness of 5.35\xa0±\xa00.58\xa0nm), nanorods (length of 37.53\xa0±\xa03.73\xa0nm and width of 5.26\xa0±\xa00.37\xa0nm) and nanospheres (diameter of 8.26\xa0±\xa00.38\xa0nm). The single-parameter-tuned method reveals the dual roles of iron carbonyl for controlling the shapes of gold nanocrystals including reductant and oxidative etchant and empowers versatility in synthetic methodology for other noble metals. Moreover, catalytic activity shifting in shapes of nanocrystals was revealed based on the reduction of 4-nitrophenol, showing that the as-synthesized Au nanoplates displayed the enhanced catalytic performance with the lowest activation energy. Our work provides a brand-new pathway for shape-controlled synthesis of noble-metal nanocrystals and has a strong practical value in application fields.

Volume 601
Pages \n 773-781\n
DOI 10.1016/j.jcis.2021.05.114
Language English
Journal Journal of colloid and interface science

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