各向异性材料精确热导率测量的无光斑畸变、带光束偏移的频域热反射。

IF 1.3 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION
Yuki Akura, Yasuaki Ikeda, Yuki Matsunaga, Masaki Shimofuri, Amit Banerjee, Toshiyuki Tsuchiya, Jun Hirotani
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引用次数: 0

摘要

各向异性材料和原子薄膜的热导率测量对于下一代电子器件的热设计至关重要。频域热反射(FDTR)是一种泵浦探测技术,以其精确和直接的方法来确定导热系数而闻名,是最有效的方法之一。现有的研究主要集中在推进一种包含波束偏移FDTR的测量系统。在这种方法中,泵浦和探针激光器的照射位置在空间上偏移,以提高对面内导热系数的灵敏度。以前的实现主要是通过修改反射镜角度来调整激光位置,这无意中扭曲了激光光斑。这种失真严重影响测量精度,这在波束偏置FDTR中尤为关键,其中光斑半径对测量值有至关重要的影响。本研究介绍一种先进的FDTR测量系统,利用中继光学系统实现探测激光偏移而不产生光斑畸变。该系统被用于测量各向同性标准材料和各向异性样品的导热系数,包括高取向热解石墨和石墨烯。这些发现证实了先前的研究,验证了测量在灵敏度方面的可靠性。这种无激光光斑畸变的光束偏移FDTR系统的开发为通过热反射方法精确测量各向异性材料的热导率值奠定了坚实的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Frequency-domain thermoreflectance with beam offset without the spot distortion for accurate thermal conductivity measurement of anisotropic materials.

The measurement of thermal conductivities of anisotropic materials and atomically thin films is pivotal for the thermal design of next-generation electronic devices. Frequency-domain thermoreflectance (FDTR) is a pump-probe technique that is known for its accurate and straightforward approach to determining thermal conductivity and stands out as one of the most effective methodologies. Existing research has focused on advancing a measurement system that incorporates beam-offset FDTR. In this approach, the irradiation positions of the pump and probe lasers are spatially offset to enhance sensitivity to in-plane thermal conductivity. Previous implementations primarily adjusted the laser positions by modifying the mirror angle, which inadvertently distorted the laser spot. Such distortion significantly compromises measurement accuracy, which is especially critical in beam-offset FDTR, where the spot radius has a crucial impact on measured values. This study introduces an advanced FDTR measurement system that realizes probe laser offset without inducing spot distortion, utilizing a relay optical system. The system was applied to measure the thermal conductivities of both isotropic standard materials and anisotropic samples, including highly oriented pyrolytic graphite and graphene. The findings corroborate those of prior studies, validating the measurement's reliability in terms of sensitivity. This development of a beam-offset FDTR system without laser spot distortion establishes a robust basis for accurate thermal conductivity values of anisotropic materials via thermoreflectance methods.

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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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