Lu Guanyu, Nolen Joshua Ryan, Folland Thomas G, Tadjer Marko J, Walker Don Greg, Caldwell Joshua D
Department of Mechanical Engineering, Vanderbilt University, Nashville, Tennessee 37212, United States.
Interdisciplinary Materials Science, Vanderbilt University, Nashville, Tennessee 37212, United States.
ACS Omega. 2020 May 5;5(19):10900-10908. doi: 10.1021/acsomega.0c00600. eCollection 2020 May 19.
There are a broad range of applications for narrowband long-wave infrared (LWIR) sources, especially within the 8-12 μm atmospheric window. These include infrared beacons, free-space communications, spectroscopy, and potentially on-chip photonics. Unfortunately, commercial light-emitting diode (LED) sources are not available within the LWIR, leaving only gas-phase and quantum cascade lasers, which exhibit low wall-plug efficiencies and in many cases require large footprints, precluding their use for many applications. Recent advances in nanophotonics have demonstrated the potential for tailoring thermal emission into an LED-like response, featuring narrowband, polarized thermal emitters. In this work, we demonstrate that such nanophotonic IR emitting metamaterials (NIREMs), featuring near-unity absorption, can serve as LWIR sources with effectively no net power consumption, enabling their operation entirely by waste heat from conventional electronics. Using experimental emissivity spectra from a SiC NIREM device in concert with a thermodynamic compact model, we verify this feasibility for two test cases: a NIREM device driven by waste heat from a CPU heat sink and one operating using a low-power resistive heater for elevated temperature operation. To validate these calculations, we experimentally determine the temperature-dependent NIREM irradiance and the angular radiation pattern. We purport that these results provide a first proof-of-concept for waste heat-driven thermal emitters potentially employable in a variety of infrared application spaces.
窄带长波红外(LWIR)源有广泛的应用,特别是在8 - 12μm的大气窗口范围内。这些应用包括红外信标、自由空间通信、光谱学以及潜在的片上光子学。不幸的是,LWIR范围内没有商用发光二极管(LED)源,只有气相激光器和量子级联激光器,它们的壁插效率较低,而且在许多情况下占地面积大,这使得它们无法用于许多应用。纳米光子学的最新进展已经证明了将热发射调整为类似LED响应的潜力,其特点是具有窄带、偏振热发射器。在这项工作中,我们证明了这种具有接近单位吸收率的纳米光子红外发射超材料(NIREMs)可以作为LWIR源,实际上几乎没有净功耗,使其完全通过传统电子设备的废热运行。结合热力学紧凑模型,利用碳化硅NIREM器件的实验发射率光谱,我们在两个测试案例中验证了这种可行性:一个由CPU散热器的废热驱动的NIREM器件,另一个使用低功率电阻加热器进行高温运行的NIREM器件。为了验证这些计算结果,我们通过实验确定了与温度相关的NIREM辐照度和角辐射模式。我们认为这些结果为废热驱动的热发射器提供了首个概念验证,这种热发射器可能可用于各种红外应用领域。