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Asymmetric monometallic nanorod nanoparticle dimer and related compositions and methods

机译:不对称单金属纳米棒纳米粒子二聚体及相关组成和方法

摘要

The fabrication of asymmetric monometallic nanocrystals with novel properties for plasmonics, nanophotonics and nanoelectronics. Asymmetric monometallic plasmonic nanocrystals are of both fundamental synthetic challenge and practical significance. In an example, a thiol-ligand mediated growth strategy that enables the synthesis of unprecedented Au Nanorod-Au Nanoparticle (AuNR-AuNP) dimers from pre-synthesized AuNR seeds. Using high-resolution electron microscopy and tomography, crystal structure and three-dimensional morphology of the dimer, as well as the growth pathway of the AuNP on the AuNR seed, was investigated for this example. The dimer exhibits an extraordinary broadband optical extinction spectrum spanning the UV, visible, and near infrared regions (300-1300 nm). This unexpected property makes the AuNR-AuNP dimer example useful for many nanophotonic applications. In two experiments, the dimer example was tested as a surface-enhanced Raman scattering (SERS) substrate and a solar light harvester for photothermal conversion, in comparison with the mixture of AuNR and AuNP. In the SERS experiment, the dimer example showed an enhancement factor about 10 times higher than that of the mixture, when the excitation wavelength (660 nm) was off the two surface plasmon resonance (SPR) bands of the mixture. In the photothermal conversion experiment under simulated sunlight illumination, the dimer example exhibited an energy conversion efficiency about 1.4 times as high as that of the mixture.
机译:具有等离子,纳米光子和纳米电子学新特性的不对称单金属纳米晶体的制备。不对称单金属等离子体纳米晶体具有基本的合成挑战和实际意义。在一个例子中,硫醇-配体介导的生长策略使得能够从预合成的AuNR种子合成出前所未有的Au Nanorod-Au纳米颗粒(AuNR-AuNP)二聚体。使用高分辨率电子显微镜和层析成像技术,研究了该二聚体的晶体结构和三维形态,以及AuNP在AuNR种子上的生长途径。该二聚体表现出非凡的宽带消光光谱,涵盖了紫外线,可见光和近红外区域(300-1300 nm)。这种出乎意料的特性使AuNR-AuNP二聚体实例可用于许多纳米光子应用。在两个实验中,与AuNR和AuNP的混合物相比,将二聚体实例作为表面增强拉曼散射(SERS)基板和用于光热转化的太阳光收集器进行了测试。在SERS实验中,当激发波长(660 nm)偏离混合物的两个表面等离振子共振(SPR)谱带时,二聚体实例显示的增强因子比混合物的增强因子高约10倍。在模拟的日光照射下的光热转化实验中,二聚体实例的能量转化效率约为混合物的1.4倍。

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