School of Physics and Optoelectronic Engineering, Ludong University, Yantai 264025, China.
ACS Appl Mater Interfaces. 2020 Mar 11;12(10):12186-12194. doi: 10.1021/acsami.9b15715. Epub 2020 Feb 25.
Bifunctional candidates, which could provide catalytic and plasmonic properties simultaneously, could activate a promising development for biomedicine. Here, we kinetically controlled and synthesized a penta-twinned icosahedral Au (Ih Au) by a facile wet-chemical protocol without assistance of stabilizers. Benefiting from icosahedral morphology and kinetic synthesis process, the Ih Au nanoparticles (NPs) incorporate three key advantages: (i) ample active sites/"hot spots" and surface strain, (ii) good stability/chemical inertness and easy functionalization, and (iii) biological compatibility and a clean surface, which could promote their electrocatalysis and photonic capacity. Ih Au NPs, as bifunctional nanomaterials, exert excellent electrocatalytic and surface-enhanced Raman scattering (SERS) performances. Ih Au delivers the highest glucose electrooxidation (GEO) peak current density with 6.87 mA cm, which is 14 times larger than that of Turkevich Au (0.49 mA cm) under the same condition. Moreover, the SERS signals of rhodamine 6G (R6G) on Ih Au are much stronger than that on the other corresponding Au counterparts. Particularly, the SERS intensity of R6G on Ih Au increases by about four times compared to that on Au NPs. This study motivates the great prospect for combining Ih Au's bifunctionalities and indicates the potential of bifunctional nanomaterials in biologically implanted devices.
双功能候选物可以同时提供催化和等离子体性质,为生物医学的发展提供了广阔的前景。在这里,我们通过一种简单的湿化学方法,在没有稳定剂辅助的情况下,动力学控制合成了五重孪晶二十面体金(Ih Au)。得益于二十面体形态和动力学合成过程,Ih Au 纳米颗粒(NPs)具有三个关键优势:(i)丰富的活性位点/“热点”和表面应变,(ii)良好的稳定性/化学惰性和易于功能化,以及(iii)生物相容性和清洁表面,这可以促进其电催化和光子学性能。作为双功能纳米材料,Ih Au 表现出优异的电催化和表面增强拉曼散射(SERS)性能。在相同条件下,Ih Au 提供的葡萄糖电氧化(GEO)峰电流密度最高,为 6.87 mA cm,是 Turkevich Au(0.49 mA cm)的 14 倍。此外,Ih Au 上的罗丹明 6G(R6G)的 SERS 信号比其他相应的 Au 对应物强得多。特别是,与 Au NPs 相比,R6G 在 Ih Au 上的 SERS 强度增加了约四倍。这项研究激发了将 Ih Au 的双功能特性结合起来的巨大前景,并表明了双功能纳米材料在生物植入设备中的潜力。