高温依赖吸收-发射对纳米结构超材料与低带隙光伏电池匹配的太阳能热光伏应用

IF 1.6 4区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
Tesfaye Feyisa, Abebe Belay, Fekadu Tolessa, Gemechis Mathewos, Jebel Haji, Umer sherefedin
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引用次数: 0

摘要

其中一个超材料概念是将选择性宽带热辐射体与宽带太阳能吸收相结合,这是有效耦合到光伏电池发电的技术基础。在这项研究中,我们研究了一种具有选择性吸收和发射对的太阳能热光伏系统,该系统在可见光和近红外区域(0.3-2.4 μm)对太阳辐射有很高的吸收,目标是带隙能量为0.52 eV的InGaAsSb光伏电池。为此,我们设计了一种由钨基底膜和二氧化铪间隔片组成的选择性太阳能吸收纳米结构光栅。由于吸收剂熔点高,因此具有良好的热稳定性和极高的强度,在AM1.5下加权平均太阳能吸收效率可达99%。在法向入射下,优化后的超材料吸收/发射体在截止波长范围(0.3 ~ 2.4 μm)内的潜在平均热发射率大于94%,在温度为100℃(373 K)的中红外范围(> 2.4 μm)内的总热发射率小于2%。根据模拟结果,在没有光集中的情况下,在373 K下估计的总太阳能-热转换效率为95%。另一方面,在973 K下,光浓度分别为100个太阳和10个太阳时,总太阳能-热转换效率分别为92%和62%。此外,所设计的吸收体/发射器具有热稳定性,偏振无关,并且在0°到75°的入射角范围内具有良好的发射率。最后,为了分析几何参数对太阳能吸收率和热辐射率性能的影响,对不同尺寸、形状和厚度的超材料结构进行了优化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High temperature dependent absorber-emitter pair nanostructure metamaterial matched with low band-gap PV cell for solar thermo photovoltaic application

One of the metamaterial concepts is the integration of selective broad-band thermal emitters with broad-band solar absorption, which is the foundation of technology that is effectively coupled to a photovoltaic cell for power generation. In this study, we investigated a solar thermo photovoltaic system with a selective absorber and emitter pair that achieves high absorptance of solar radiation in the visible and near-infrared regions (0.3–2.4 μm) that targets an InGaAsSb PV cell with a band gap energy of 0.52 eV. For this work, we designed a selective solar absorber nanostructured grating composed of a tungsten ground film and a hafnium dioxide spacer. Since the absorber melting point is high, it exhibits good thermal stability and extremely high intensity, with a weighted average solar absorption efficiency of 99% at AM1.5. At normal incidence, the optimized metamaterial absorber/emitter has a potential average thermal emitter of more than 94% in the cutoff wavelength range (0.3–2.4 μm) and a total thermal emittance of less than 2% in the mid-infrared range (> 2.4 μm) at a temperature of 100 °C (373 K). According to the simulation results, the estimated total solar-to-heat conversion efficiency is 95% at 373 K without an optical concentration. On the other hand, the total solar-to-heat conversion efficiency is 92 and 62% at 973 K with an optical concentration of 100 suns and 10 suns, respectively. Furthermore, the designed absorber/emitter has thermal stability, polarization independent and exhibits good emissivity over a wide range of incidence angles from 0° to 75°. Finally, to analyze the impact of geometric parameters on the performance of solar absorptivity and thermal emissivity, metamaterial structures with different sizes, shapes and thicknesses were optimized.

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来源期刊
Indian Journal of Physics
Indian Journal of Physics 物理-物理:综合
CiteScore
3.40
自引率
10.00%
发文量
275
审稿时长
3-8 weeks
期刊介绍: Indian Journal of Physics is a monthly research journal in English published by the Indian Association for the Cultivation of Sciences in collaboration with the Indian Physical Society. The journal publishes refereed papers covering current research in Physics in the following category: Astrophysics, Atmospheric and Space physics; Atomic & Molecular Physics; Biophysics; Condensed Matter & Materials Physics; General & Interdisciplinary Physics; Nonlinear dynamics & Complex Systems; Nuclear Physics; Optics and Spectroscopy; Particle Physics; Plasma Physics; Relativity & Cosmology; Statistical Physics.
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