Zhou Jin, Liu Zhengqi, Liu Guiqiang, Pan Pingping, Liu Xiaoshan, Tang Chaojun, Liu Zhongmin, Wang Junqiao
Opt Express. 2020 Nov 23;28(24):36476-36486. doi: 10.1364/OE.411918.
Metamaterial absorbers have attracted great attention over the past few years and exhibited a promising prospect in solar energy harvesting and solar thermophotovoltaics (STPVs). In this work, we introduce a solar absorber scheme, which enables efficient solar irradiance harvesting, superb thermal robustness and high solar thermal energy conversion for STPV systems. The optimum structure demonstrates an average absorbance of 97.85% at the spectral region from 200 nm to 2980 nm, indicating the near-unity absorption in the main energy range of the solar radiance. The solar-thermal conversion efficiencies surpassing 90% are achieved over an ultra-wide temperature range (100-800 °C). Meanwhile, the analysis indicates that this metamaterial has strong tolerance for fabrication errors. By utilizing the simple two-dimensional (2D) titanium (Ti) gratings, this design is able to get beyond the limit of costly and sophisticated nanomanufacturing techniques. These impressive features can hold the system with wide applications in metamaterial and other optoelectronic devices.
在过去几年中,超材料吸收器引起了极大关注,并在太阳能收集和太阳能热光伏(STPV)方面展现出广阔前景。在这项工作中,我们介绍了一种太阳能吸收器方案,该方案能够实现高效的太阳辐照度收集、卓越的热稳定性以及用于STPV系统的高太阳能-热能转换效率。优化后的结构在200纳米至2980纳米光谱区域的平均吸收率为97.85%,这表明在太阳辐射的主要能量范围内接近全吸收。在超宽温度范围(100 - 800°C)内实现了超过90%的太阳能-热能转换效率。同时,分析表明这种超材料对制造误差具有很强的耐受性。通过使用简单的二维(2D)钛(Ti)光栅,该设计能够突破昂贵且复杂的纳米制造技术的限制。这些令人印象深刻的特性使该系统在超材料和其他光电器件中具有广泛的应用前景。