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Nanostructure enhanced near-field radiative heat transfer and designs for energy conversion devices

机译:纳米结构增强了近场辐射换热和能量转换装置的设计

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摘要

Near-field radiative heat transfer can exceed the blackbody limit, and this property has been explored toward energy transfer and conversion applications, such as thermophtovoltaic (TPV) devices, radiative cooling devices, and thermoradiative (TR) devices. The coupling of resonant modes between two surfaces is important in near-field heat transfer and near-field TPV and TR systems. It was shown that the coupling of resonant modes enhances the transmissivity between two coupled objects, which further determines the radiative heat transfer and energy conversion. Surface plasmon polaritons (SPPs), which are surface resonances existing on metal surfaces, are commonly used for such systems. While the frequency of SPP resonance is fixed for a planar emitter, a nanostructured emitter supports additional resonances such as SPP or cavity modes with lower frequencies that are closer to the bandgap energy of a typical PV cell. We show that the nanostrctured designs significantly improves the near-field radiative power transfer; and electric power output for a TR system.
机译:近场辐射热传递可能超过黑体极限,并且已针对能量传递和转换应用(例如热光伏(TPV)设备,辐射冷却设备和热辐射(TR)设备)探索了此属性。在近场传热以及近场TPV和TR系统中,两个表面之间的共振模态耦合非常重要。结果表明,共振模式的耦合增强了两个耦合物体之间的透射率,这进一步决定了辐射的热传递和能量转换。表面等离振子极化子(SPPs)是存在于金属表面的表面共振,通常用于此类系统。虽然对于平面发射器,SPP谐振的频率是固定的,但纳米结构发射器以较低的频率支持其他谐振,例如SPP或腔模,其频率更接近于典型PV电池的带隙能量。我们表明,纳米结构设计显着改善了近场辐射功率传递;和TR系统的电力输出。

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  • 会议地点 San Diego(US)
  • 作者单位

    Mitsubishi Electric Research Laboratories, 201 Broadway Ste 8, Cambridge, MA 02139 USA;

    Mitsubishi Electric Research Laboratories, 201 Broadway Ste 8, Cambridge, MA 02139 USA;

    Mitsubishi Electric Research Laboratories, 201 Broadway Ste 8, Cambridge, MA 02139 USA;

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  • 正文语种 eng
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