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利用纳米移液器进行单纳米颗粒温度测量。

Single-Nanoparticle Thermometry with a Nanopipette.

作者信息

Holub Martin, Adobes-Vidal Maria, Frutiger Andreas, Gschwend Pascal M, Pratsinis Sotiris E, Momotenko Dmitry

机构信息

Laboratory of Biosensors and Bioelectronics, Institute for Biomedical Engineering, ETH Zurich, Zurich, CH-8092, Switzerland.

Wood Materials Science Group, Institute for Building Materials, ETH Zurich, Zurich, CH-8093, Switzerland.

出版信息

ACS Nano. 2020 Jun 23;14(6):7358-7369. doi: 10.1021/acsnano.0c02798. Epub 2020 May 27.

Abstract

Thermal measurements at the nanoscale are key for designing technologies in many areas, including drug delivery systems, photothermal therapies, and nanoscale motion devices. Herein, we present a nanothermometry technique that operates in electrolyte solutions and, therefore, is applicable for many measurements, capable of measuring and mapping temperature with nanoscale spatial resolution and sensitive to detect temperature changes down to 30 mK with 43 μs temporal resolution. The methodology is based on local measurements of ionic conductivity confined at the tip of a pulled glass capillary, a nanopipettete, with opening diameters as small as 6 nm. When scanned above a specimen, the measured ion flux is converted into temperature using an extensive theoretical support given by numerical and analytical modeling. This allows quantitative thermal measurements with a variety of capillary dimensions and is applicable to a range of substrates. We demonstrate the capabilities of this nanothermometry technique by simultaneous mapping of temperature and topography on sub-micrometer-sized aggregates of thermoplasmonic nanoparticles heated by a laser and observe the formation of micro- and nanobubbles upon plasmonic heating. Furthermore, we perform quantitative thermometry on a single-nanoparticle level, demonstrating that the temperature at an individual nanoheater of 25 nm in diameter can reach an increase of about 3 K.

摘要

纳米尺度的热测量对于设计包括药物输送系统、光热疗法和纳米尺度运动装置在内的许多领域的技术至关重要。在此,我们提出了一种在电解质溶液中运行的纳米测温技术,因此适用于许多测量,能够以纳米尺度的空间分辨率测量和绘制温度,并能以43微秒的时间分辨率检测低至30毫开尔文的温度变化。该方法基于对限制在拉制玻璃毛细管(纳米移液器)尖端的离子电导率进行局部测量,其开口直径小至6纳米。当在样品上方扫描时,利用数值和分析模型提供的广泛理论支持,将测得的离子通量转换为温度。这允许使用各种毛细管尺寸进行定量热测量,并适用于一系列基底。我们通过对激光加热的热等离子体纳米颗粒的亚微米尺寸聚集体同时进行温度和形貌映射,展示了这种纳米测温技术的能力,并观察到等离子体加热时微米和纳米气泡的形成。此外,我们在单纳米颗粒水平上进行了定量测温,证明直径为25纳米的单个纳米加热器的温度可升高约3开尔文。

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