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与大量液体测量兼容的AC/DC热纳米分析仪。

AC/DC Thermal Nano-Analyzer Compatible with Bulk Liquid Measurements.

作者信息

Odarchenko Yaroslav, Kaźmierczak-Bałata Anna, Bodzenta Jerzy, Ferrari Enrico, Soloviev Mikhail

机构信息

Department of Biological Sciences, Royal Holloway University of London, Egham, Surrey TW20 0EX, UK.

Institute of Physics, Center for Science and Education, Silesian University of Technology, Konarskiego 22B, 44-100 Gliwice, Poland.

出版信息

Nanomaterials (Basel). 2022 Oct 28;12(21):3799. doi: 10.3390/nano12213799.

Abstract

Nanocalorimetry, or thermal nano-analysis, is a powerful tool for fast thermal processing and thermodynamic analysis of materials at the nanoscale. Despite multiple reports of successful applications in the material sciences to study phase transitions in metals and polymers, thermodynamic analysis of biological systems in their natural microenvironment has not been achieved yet. Simply scaling down traditional calorimetric techniques, although beneficial for material sciences, is not always appropriate for biological objects, which cannot be removed out of their native biological environment or be miniaturized to suit instrument limitations. Thermal analysis at micro- or nano-scale immersed in bulk liquid media has not yet been possible. Here, we report an AC/DC modulated thermal nano-analyzer capable of detecting nanogram quantities of material in bulk liquids. The detection principle used in our custom-build instrument utilizes localized heat waves, which under certain conditions confine the measurement area to the surface layer of the sample in the close vicinity of the sensing element. To illustrate the sensitivity and quantitative capabilities of the instrument we used model materials with detectable phase transitions. Here, we report ca. 10 improvement in the thermal analysis sensitivity over a traditional DSC instrument. Interestingly, fundamental thermal properties of the material can be determined independently from heat flow in DC (direct current) mode, by using the AC (alternating current) component of the modulated heat in AC/DC mode. The thermal high-frequency AC modulation mode might be especially useful for investigating thermal transitions on the surface of material, because of the ability to control the depth of penetration of AC-modulated heat and hence the depth of thermal sensing. The high-frequency AC mode might potentially expand the range of applications to the surface analysis of bulk materials or liquid-solid interfaces.

摘要

纳米量热法,即热纳米分析,是一种用于在纳米尺度上对材料进行快速热处理和热力学分析的强大工具。尽管有多项关于在材料科学中成功应用以研究金属和聚合物相变的报道,但尚未实现对处于自然微环境中的生物系统进行热力学分析。简单地缩小传统量热技术的规模,虽然对材料科学有益,但并不总是适用于生物对象,因为生物对象无法从其天然生物环境中移除或小型化以适应仪器的限制。在大量液体介质中进行微尺度或纳米尺度的热分析尚未成为可能。在此,我们报告了一种交流/直流调制热纳米分析仪,它能够检测大量液体中纳克级的材料。我们定制仪器中使用的检测原理利用局部热波,在某些条件下,该热波将测量区域限制在传感元件附近样品的表层。为了说明该仪器的灵敏度和定量能力,我们使用了具有可检测相变的模型材料。在此,我们报告该仪器的热分析灵敏度比传统差示扫描量热仪提高了约10倍。有趣的是,通过在交流/直流模式下使用调制热的交流(交流电)分量,可以独立于直流(直流电)模式下的热流来确定材料的基本热性质。热高频交流调制模式对于研究材料表面的热转变可能特别有用,因为它能够控制交流调制热的穿透深度,从而控制热传感的深度。高频交流模式可能会潜在地将应用范围扩展到块状材料或液 - 固界面的表面分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a9fe/9655476/2416b171dd2a/nanomaterials-12-03799-g001.jpg

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