Hossain Mohammad Jakir, Rahman Md Habibur, Faruque Mohammad Rashed Iqbal
Department of Electrical and Electronic Engineering, Dhaka University of Engineering & Technology (DUET), Gazipur 1707, Bangladesh.
Space Science Centre (ANGKASA), Universiti Kebangsaan Malaysia, Bangi 43600 UKM, Malaysia.
Nanomaterials (Basel). 2023 Jun 19;13(12):1882. doi: 10.3390/nano13121882.
Perfect metamaterial absorber (PMA) is an attractive optical wavelength absorber with potential solar energy and photovoltaic applications. Perfect metamaterials used as solar cells can improve efficiency by amplifying incident solar waves on the PMA. This study aims to assess a wide-band octagonal PMA for a visible wavelength spectrum. The proposed PMA consists of three layers: nickel, silicon dioxide, and nickel. Based on the simulations, polarisation-insensitive absorption transverse electric (TE) and transverse magnetic (TM) modes were achieved due to symmetry. The proposed PMA structure was subjected to computational simulation using a FIT-based CST simulator. The design structure was again confirmed using FEM-based HFSS to maintain pattern integrity and absorption analysis. The absorption rates of the absorber were estimated at 99.987% and 99.997% for 549.20 THz and 653.2 THz, respectively. The results indicated that the PMA could achieve high absorption peaks in TE and TM modes despite being insensitive to polarisation and the incident angle. Electric field and magnetic field analyses were performed to understand the absorption of the PMA for solar energy harvesting. In conclusion, the PMA possesses outstanding visible frequency absorption, making it a promising option.
完美超材料吸收器(PMA)是一种具有吸引力的光波长吸收器,在太阳能和光伏应用方面具有潜力。用作太阳能电池的完美超材料可以通过放大PMA上的入射太阳波来提高效率。本研究旨在评估一种用于可见光谱的宽带八角形PMA。所提出的PMA由三层组成:镍、二氧化硅和镍。基于模拟,由于对称性实现了对横向电(TE)和横向磁(TM)模式的偏振不敏感吸收。所提出的PMA结构使用基于有限积分技术(FIT)的CST模拟器进行了计算模拟。再次使用基于有限元法(FEM)的HFSS确认设计结构,以保持图案完整性和吸收分析。该吸收器在549.20太赫兹和653.2太赫兹时的吸收率分别估计为99.987%和99.997%。结果表明,尽管PMA对偏振和入射角不敏感,但仍能在TE和TM模式下实现高吸收峰值。进行了电场和磁场分析,以了解PMA对太阳能收集的吸收情况。总之,PMA具有出色的可见光频率吸收性能,使其成为一个有前途的选择。