具有纹理介质薄膜的高效红外-热电转换

Yunqian He, Yuelin Wang, Tie Li
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引用次数: 0

摘要

将更多的红外能量转化为热能,同时减少从介电膜到硅衬底的热损失,对于红外热电传感器是非常有吸引力的。薄平面介电(FLDI)薄膜已知具有低导热性,这是控制热损失的常规候选。同时,采用高红外吸收纳米材料来弥补FLDI薄膜相对较低的吸收率。但这种组合方法存在重量应力大、制造不兼容、成本高等问题。本文提出了一种新的纹理介质(TEDI)薄膜,以一种简单、有效、兼容cmos的方式同时提高了热传导和红外吸收性能。与采用FLDI薄膜的受控热电堆相比,采用TEDI薄膜制备的热电堆平台在输出电压响应和响应度方面提高了约55%,探测率提高了约47%。通过该热电堆平台,TEDI薄膜的热传导性能可降低约28%,红外吸收率可提高约12%。本研究为将轻质隔热FLDI薄膜加工成高效红外-热电材料以实现高性能红外或热传感器提供了一种简单有效的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Infrared-Thermal-Electric Conversion with Textured Dielectric Film
Converting more infrared energy into heat while reducing heat loss from dielectric film to silicon substrate is very attractive for infrared-thermal-electric sensors. Thin FLat Dielectric (FLDI) film is known to possess low thermal conductivity, which is a conventional candidate for controlling heat loss. Meanwhile, high infrared absorption nanomaterials are adopted to compensate for the relatively low absorptivity of the FLDI film. However, this combination method may cause large weight stress, fabrication incompatibility, and high cost. In this paper, a new TExtured DIelectric (TEDI) film is proposed to simultaneously improve the heat conduction and infrared absorption properties in a simple, effective, and CMOS-compatible way. The fabricated thermopile platform with TEDI film can achieve about 55% enhancement in output voltage response and responsivity as well as about 47% in detectivity compared to the controlled thermopile with FLDI film. By this thermopile platform, the demonstrated heat conduction of the TEDI film can be reduced by about 28% while the tested infrared absorption can be increased by about 12%. This work may provide a simple and effective method toward engineering light-weight and thermally insulating FLDI films into efficient infrared-thermal-electric materials for achieving high-performance infrared or thermal sensors.
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