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Scalable routes to gold nanoshells with tunable sizes and response to near-infrared pulsed-laser irradiation

机译:具有可调大小的金纳米壳的可扩展路线,以及对近红外脉冲激光辐照的响应

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摘要

A simplified synthesis of hollow gold nanoshells 20-50 nm in diameter via the well-established templated galvanic replacement reaction of silver for gold is presented. The surface plasmon resonance absorbance of the nanoshells is tuned using basic colloid chemistry to control the size of the silver templates. The gold nanoshells have an aqueous core and are varied in size and shell thickness depending on the silver/gold reagent ratios. The template replacement chemistry is rapid, highly scalable, uses minimal amounts of toxic reagents, and in many cases is a true one-pot synthesis. The smallest nanoshells (20-nm diameter, 7-nm wall thickness) reach the highest temperature on irradiation with femtosecond light pulses in the near infrared and anneal to form spherical nanoparticles fastest, even though their plasmon resonance does not overlap as well as the larger nanoshells (50-nm diameter, 7-nm wall thickness) with 800-nm wavelength excitation.
机译:提出了一种通过完善的银模板化电化金置换反应,来合成直径为20-50 nm的空心金纳米壳的简化方法。使用基本的胶体化学来控制纳米模板的尺寸,从而调节纳米壳的表面等离子体共振吸收。金纳米壳具有水核,并且取决于银/金试剂的比例而在大小和壳厚度上变化。模板替代化学反应快速,高度可扩展,使用最少的有毒试剂,并且在许多情况下是真正的一锅法合成。最小的纳米壳(直径为20 nm,壁厚为7 nm)在飞秒的近红外和飞秒辐照下达到最高温度,以最快的速度形成球形纳米颗粒,即使它们的等离振子共振不会重叠也不会重叠。纳米壳(直径为50 nm,壁厚为7 nm),具有800 nm的波长激发。

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