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胶体等离子体纳米粒子的三维约化对称。

Three-dimensional reduced-symmetry of colloidal plasmonic nanoparticles.

机构信息

Department of Chemical and Biomolecular Engineering, Sogang University, Seoul, 121-742, Korea.

出版信息

Nano Lett. 2012 May 9;12(5):2436-40. doi: 10.1021/nl300435j. Epub 2012 Apr 18.

Abstract

Owing to their novel optical properties, three-dimensional plasmonic nanostructures with reduced symmetry such as a nanocrescent and a nanocup have attracted considerable current interest in biophotonic imaging and sensing. However, their practical applications have been still limited since the colloidal synthesis of such structures that allows, in principle, for in vivo application and large-scale production has not been explored yet. To date, these structures have been fabricated only on two-dimensional substrates using micro/nanofabrication techniques. Here we demonstrate an innovative way of breaking symmetry of colloidal plasmonic nanoparticles. Our strategy exploits the direct overgrowth of Au on a hybrid colloidal dimer consisting of Au and polystyrene (PS) nanoparticles without the self-nucleation of Au in an aqueous solution. Upon the overgrowth reaction, the steric crowding of PS leads to morphological evolution of the Au part in the dimer ranging from half-shell, nanocrescent to nanoshell associated with the appearance of the second plasmon absorption band in near IR. Surface-enhanced Raman scattering signal is obtained directly from the symmetry-broken nanoparticles solution as an example showing the viability of the present approach. We believe our concept represents an important step toward a wide range of biophotonic applications for optical nanoplasmonics such as targeting, sensing/imaging, gene delivery, and optical gene regulations.

摘要

由于其新颖的光学性质,具有对称结构的三维等离子体纳米结构,如纳米新月和纳米杯,在生物光子学成像和传感中引起了相当大的兴趣。然而,由于尚未探索出允许体内应用和大规模生产的胶体合成,它们的实际应用仍然受到限制。迄今为止,这些结构仅在二维衬底上使用微/纳加工技术进行制造。在这里,我们展示了一种打破胶体等离子体纳米粒子对称性的创新方法。我们的策略利用了在由金和聚苯乙烯(PS)纳米粒子组成的混合胶体二聚体上直接生长金,而无需在水溶液中自发生成金。在生长反应过程中,PS 的空间拥挤导致二聚体中金部分的形态演变,从半壳、纳米新月到纳米壳,同时在近红外出现第二个等离子体吸收带。我们直接从对称破缺的纳米粒子溶液中获得表面增强拉曼散射信号,作为一个例子,展示了这种方法的可行性。我们相信,我们的概念代表了光学纳米等离子体在广泛的生物光子学应用方面的重要一步,例如靶向、传感/成像、基因传递和光学基因调控。

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