Zhu Yanying, Cai Pinggen, Zhang Wenlong, Meng Tongyu, Tang Yongjian, Yi Zao, Wei Kaihua, Li Gongfa, Tang Bin, Yi Yougen
Joint Laboratory for Extreme Conditions Matter Properties, Tianfu Institute of Research and Innovation, State Key Laboratory of Environmental Friendly Energy Materials, Key Laboratory of Manufacturing Process Testing Technology of Ministry of Education, Southwest University of Science and Technology, Mianyang 621010, China.
Department of Applied Physics, College of Science, Zhejiang University of Technology, Hangzhou 310023, China.
Micromachines (Basel). 2023 Aug 14;14(8):1597. doi: 10.3390/mi14081597.
Since the use of chemical fuels is permanently damaging the environment, the need for new energy sources is urgent for mankind. Given that solar energy is a clean and sustainable energy source, this study investigates and proposes a six-layer composite ultra-wideband high-efficiency solar absorber with an annular microstructure. It achieves this by using a combination of the properties of metamaterials and the quantum confinement effects of semiconductor materials. The substrate is W-Ti-AlO, and the microstructure is an annular InAs-square InAs film-Ti film combination. We used Lumerical Solutions' FDTD solution program to simulate the absorber and calculate the model's absorption, field distribution, and thermal radiation efficiency (when it is used as a thermal emitter), and further explored the physical mechanism of the model's ultra-broadband absorption. Our model has an average absorption of 95.80% in the 283-3615 nm band, 95.66% in the 280-4000 nm band, and a weighted average absorption efficiency of 95.78% under AM1.5 illumination. Meanwhile, the reflectance of the model in the 5586-20,000 nm band is all higher than 80%, with an average reflectance of 94.52%, which has a good thermal infrared suppression performance. It is 95.42% under thermal radiation at 1000 K. It has outstanding performance when employed as a thermal emitter as well. Additionally, simulation results show that the absorber has good polarization and incidence angle insensitivity. The model may be applied to photodetection, thermophotovoltaics, bio-detection, imaging, thermal ion emission, and solar water evaporation for water purification.
由于化学燃料的使用正在对环境造成永久性破坏,人类迫切需要新能源。鉴于太阳能是一种清洁且可持续的能源,本研究对一种具有环形微结构的六层复合超宽带高效太阳能吸收器进行了研究并提出了方案。它通过结合超材料的特性和半导体材料的量子限制效应来实现这一点。基底是W-Ti-AlO,微结构是环形InAs-方形InAs薄膜-Ti薄膜组合。我们使用Lumerical Solutions公司的FDTD解决方案程序对吸收器进行模拟,并计算模型的吸收率、场分布和热辐射效率(当它用作热发射器时),并进一步探索该模型超宽带吸收的物理机制。我们的模型在283-3615nm波段的平均吸收率为95.80%,在280-4000nm波段为95.66%,在AM1.5光照下加权平均吸收效率为95.78%。同时,该模型在5586-20000nm波段的反射率均高于80%,平均反射率为94.52%,具有良好的热红外抑制性能。在1000K热辐射下为95.42%。当用作热发射器时它也具有出色的性能。此外,模拟结果表明该吸收器具有良好的偏振和入射角不敏感性。该模型可应用于光电探测、热光伏、生物检测、成像、热离子发射以及用于水净化的太阳能水蒸发。