论文标题

准确的直接测量远场热红外发射及其动力学

Accurate Direct Measurements of Far-Field Thermal Infrared Emission and its Dynamics

论文作者

Liu, Xiu, Salihoglu, Hakan, Luo, Xiao, Yun, Hyeong Seok, Jing, Lin, Yu, Bowen, Shen, Sheng

论文摘要

远场热红外发射的准确直接测量变得越来越重要,因为依靠间接评估(例如反射率/透射率)的常规方法是不准确甚至是不可行的,无法表征具有新型光谱,方向性和偏光性的最新设备。这些小型设备的远场排放直接收集也很具有挑战性,因为它们的脚印不断缩小和周围环境中无法控制的辐射噪声。在这里,我们演示了一个微观锁定FTIR系统,该系统通过将显微镜和锁定放大器与FTIR相结合,从而实现了信噪比(SNR)的显着改善。锁定FTIR非常敏感,特定的检测性比商业高度10^6倍,以克服发射光收集期间的光损失和背景噪声。基于信号检测过程的分析模型,我们还探索了调制的焦耳加热和全局加热的组合,以满足我们系统减少降噪的潜力。我们的发现表明,与以前的研究相比,温度较低的3倍以上足以产生可测量的信号。在约125°C左右的加热温度下,我们可以达到约23.7的SNR,远高于真实信号阈值(SNR约为3.0)。此外,该系统可以响应足够快(最多175kHz),以记录频域中微型电视的光谱分辨动力学。可测量的频率范围可以通过高速电路模型将最高为MHz甚至GHz水平。我们认为,该系统以及分析信号处理对下一代热红外材料和设备勘探​​可能是有益的,从而在小规模上促进了照明,传感,成像和能量收集中的应用。

Accurate direct measurements of far-field thermal infrared emission become increasingly important because conventional methods, relying on indirect assessments, such as reflectance/transmittance, are inaccurate or even unfeasible to characterize state-of-art devices with novel spectra, directionalities, and polarizations. The direct collection of the far-field emission from these tiny devices is also challenging because of their shrinking footprints and uncontrollable radiation noises from their surroundings. Here, we demonstrate a microscopic lock-in FTIR system that realizes significant improvement in signal-to-noise ratio (SNR) by combining a microscope and a lock-in amplifier with an FTIR. The lock-in FTIR is ultrasensitive, with a specific detectivity 10^6 times higher than commercial ones, to overcome the optical loss and background noise during the emission light collection. Based on an analytical model of the signal detection process, we also explore the combination of modulated Joule heating and global heating to fulfill the potential of our system for noise reduction. Our findings show that, compared to previous studies, more than 3 times lower temperatures are sufficient to generate a measurable signal. Under a heating temperature of around 125 °C, we can achieve an SNR of about 23.7, which is far above the true-signal-threshold (SNR of about 3.0). Furthermore, the system can respond fast enough (up to 175kHz) to record spectral-resolved dynamics of microdevices in the frequency domain. The measurable frequency range can be extended up to MHz or even GHz level by a high-speed circuit model. We believe the system together with the analytical signal processing can be beneficial for next-generation thermal infrared material and device exploration, boosting the applications in lighting, sensing, imaging, and energy harvesting on a small scale.

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