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Recent progress in manipulation of photons by photonic crystals — Thermal emission control for sensors & energy harvesting

机译:光子晶体操纵光子的最新进展—传感器和能量收集的热辐射控制

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Converting a broad-band into a narrow-band thermal emission spectrum with minimal loss of energy is important for efficient environmental sensors and biosensors as well as thermo-photovoltaic power generation systems for energy harvesting. Here I will discuss such thermal emission control by manipulating photonic modes with photonic crystals and material absorption with quantum-well intersubband transitions. We show that the emission peak intensity for our device can be more than 4 times greater than that of a blackbody sample under the same input power and thermal management conditions, where the emission bandwidth and angular spread have been narrowed by 30 and 8 times, respectively. These results indicate that the energy saved by thermal emission control can be recycled and concentrated to enhance the narrow peak emission intensity. In the presentation, I will also describe other recent progresses in photonic crystals including high-Q nanocavity-based new phenomena, on-demand 3D optical guiding, etc.
机译:以最小的能量损失将宽带转换为窄带热发射光谱对于高效的环境传感器和生物传感器以及用于能量收集的热光伏发电系统非常重要。在这里,我将讨论通过利用光子晶体操纵光子模式以及利用量子阱子带间跃迁来控制材料吸收来控制这种热辐射。我们显示,在相同的输入功率和热管理条件下,我们的设备的发射峰强度可以比黑体样品的发射峰强度大4倍以上,在这种情况下,发射带宽和角度扩展分别缩小了30倍和8倍。这些结果表明,通过热排放控制节省的能量可以被回收和集中以增强狭窄的峰值排放强度。在演讲中,我还将介绍光子晶体的其他最新进展,包括基于高Q纳米腔的新现象,按需3D光导等。

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