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Synergistic Reducing Effect for Synthesis of Well-Defined Au Nanooctopods With Ultra-Narrow Plasmon Band Width and High Photothermal Conversion Efficiency

机译:超窄等离激元带宽和高光热转换效率的精细合成金纳米八足动物的协同还原作用

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摘要

Branched Au nanoparticles have attracted intense interest owing to their remarkable properties and a wide variety of potential applications in surface-enhanced Raman spectroscopy (SERS), photothermal therapy, photoacoustic imaging, and biomedicines. The morphology and spatial arrangement of branches play the most crucial role in the determination of their properties and applications. However, it is still a synthetic challenge to control the exact arm numbers of branches with specific spatial arrangements. Here we report a facile method for the kinetically controlled growth of Au nanooctopods (NOPs) with a high yield (81%), monodispersity, and reproducibility by using the synergistic reducing effect of ascorbic acid and 1-methylpyrrolidine. The NOPs have eight arms elongated along <111> directions with uniform arm lengths. Due to their well-defined size and shape, NOPs show ultra-narrow surface plasmon band width with a full width at half maximum of only 76 nm (0.20 eV). Upon irradiation with laser, the NOPs possessed excellent photothermal conversion efficiencies up to 83.0% and photoacoustic imaging properties. This work highlights the future prospects of using NOPs with desired physicochemical properties for biomedical applications.
机译:支链金纳米粒子由于其卓越的性能以及在表面增强拉曼光谱(SERS),光热疗法,光声成像和生物医学中的广泛潜在应用而引起了人们的极大兴趣。分支的形态和空间排列在确定其性质和应用方面起着至关重要的作用。然而,控制具有特定空间布置的分支的确切臂数仍然是一个综合挑战。在这里,我们报告了一种通过抗坏血酸和1-甲基吡咯烷酮的协同还原作用,以高产率(81%),单分散性和可再现性对金纳米章鱼(NOPs)进行动力学控制生长的简便方法。 NOP具有沿<111>方向延长且具有均匀臂长的八个臂。由于其明确定义的尺寸和形状,NOP显示出超窄的表面等离子体激元带宽,其半峰全宽仅为76 nm(0.20 eV)。在用激光照射时,NOP拥有高达83.0%的出色光热转换效率和光声成像性能。这项工作突出了将具有理想理化性质的NOP用于生物医学应用的未来前景。

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