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Plasmonic giant quantum dots: hybrid nanostructures for truly simultaneous optical imaging photothermal effect and thermometry

机译:等离子巨型量子点:混合纳米结构可实现真正的同时光学成像光热效应和测温

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摘要

Hybrid semiconductor–metal nanoscale constructs are of both fundamental and practical interest. Semiconductor nanocrystals are active emitters of photons when stimulated optically, while the interaction of light with nanosized metal objects results in scattering and ohmic damping due to absorption. In a combined structure, the properties of both components can be realized together. At the same time, metal–semiconductor coupling may intervene to modify absorption and/or emission processes taking place in the semiconductor, resulting in a range of effects from photoluminescence quenching to enhancement. We show here that photostable ‘giant’ quantum dots when placed at the center of an ultrathin gold shell retain their key optical property of bright and blinking-free photoluminescence, while the metal shell imparts efficient photothermal transduction. The latter is despite the highly compact total particle size (40–60 nm “inorganic” diameter and <100 nm hydrodynamic diameter) and the very thin nature of the optically transparent Au shell. Importantly, the sensitivity of the quantum dot emission to local temperature provides a novel internal thermometer for recording temperature during infrared irradiation-induced photothermal heating.
机译:半导体金属纳米混合结构具有基本和实际意义。半导体纳米晶体在受到光刺激时是光子的主动发射器,而光与纳米级金属物体的相互作用会由于吸收而导致散射和欧姆阻尼。在组合结构中,两个组件的属性可以一起实现。同时,金属-半导体耦合可能会干预,以改变半导体中发生的吸收和/或发射过程,从而导致从光致发光猝灭到增强的一系列影响。我们在此处显示,将光稳定的“巨型”量子点置于超薄金壳的中心时,它们保持了明亮且无闪烁的光致发光的关键光学特性,而金属壳则提供了有效的光热传导。后者尽管总颗粒尺寸非常紧凑(“无机”直径为40-60 nm,流体动力直径小于100 nm),并且具有透明的Au壳非常薄的性质。重要的是,量子点发射对局部温度的敏感性提供了一种新颖的内部温度计,用于记录红外辐射诱导的光热加热过程中的温度。

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