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用于 15 K 至 350 K 宽温应用的 TCO 薄膜图案化加热器-传感器微系统的电学和热学性能。

Electrical and Thermal Properties of Heater-Sensor Microsystems Patterned in TCO Films for Wide-Range Temperature Applications from 15 K to 350 K.

机构信息

Institute of Electrical Engineering Systems, Lodz University of Technology, Lodz 90-924, Poland.

出版信息

Sensors (Basel). 2018 Jun 5;18(6):1831. doi: 10.3390/s18061831.

Abstract

This paper presents an analysis of the electrical and thermal properties of miniature transparent heaters for use in a wide range of temperature applications, from 15 K to 350 K. The heater structures were produced in transparent conducting oxide (TCO) layers: indium tin oxide (ITO) and ITO/Ag/ITO on polymer substrates-polyethylene naphthalate (PEN) and polyethylene terephthalate (PET), by direct laser patterning. Thermo-resistors for temperature measurement were created in the same process, with geometry corresponding to the shape of the heating path. The thermo-resistors integrated with the heating structure allowed easy control of the thermal state of the heaters. Laser patterning provided high precision and repeatability in terms of the geometry and electrical properties of the heater-sensor structures. Measurements at temperatures from 15 K to above room temperature (350 K) confirmed the excellent dynamics of the heating and cooling processes, due to current flow. The largest value for surface heating power was over 3 W/cm². A heater-sensor structure equipped with a small capacity chamber was successfully applied for controlled heating of small volumes of different liquids. Such structures have potential for use in research and measurements, where for various reasons controlled and accurate heating of small volumes of liquids is required.

摘要

本文分析了微型透明加热器的电学和热学性能,这些加热器可在从 15 K 到 350 K 的广泛温度应用中使用。加热器结构由透明导电氧化物 (TCO) 层制成:在聚合物基底-聚萘二甲酸乙二醇酯 (PEN) 和聚对苯二甲酸乙二醇酯 (PET) 上的氧化铟锡 (ITO) 和 ITO/Ag/ITO,通过直接激光图案化形成。用于温度测量的热敏电阻也在同一过程中制成,其几何形状与加热路径的形状相对应。与加热结构集成的热敏电阻允许轻松控制加热器的热状态。激光图案化在加热器-传感器结构的几何形状和电学性能方面提供了高精度和可重复性。从 15 K 到高于室温 (350 K) 的温度测量证实了由于电流流动而导致的加热和冷却过程的出色动力学。表面加热功率的最大值超过 3 W/cm²。一个配备小容量腔的加热器-传感器结构成功地应用于控制不同液体的小体积加热。这些结构具有在研究和测量中的应用潜力,在这些应用中,由于各种原因需要对小体积的液体进行控制和精确加热。

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