| Literature DB >> 35407943 |
Ran Wang1,2, Song Yue1,2, Zhe Zhang1,2, Yu Hou1,2, Hongda Zhao1,2, Shitian Qu1,2, Man Li1,2, Zichen Zhang1,2.
Abstract
The broadband perfect absorption of visible light is of great significance for solar cells and photodetectors. The realization of a two-dimensional broadband perfect absorber in the visible range poses a formidable challenge with regard to improving the integration of optical systems. In this paper, we numerically demonstrate a broadband perfect absorber in the visible range from 400 nm to 700 nm based on metasurface composite structures. Simulation results show that the average absorptance is ~95.7% due to the combination of the intrinsic absorption of the lossy metallic material (Au) and the coupling resonances of the multi-sized resonators. The proposed perfect absorber may find potential applications in photovoltaics and photodetection.Entities:
Keywords: broadband perfect absorber; coupling resonance; material intrinsic absorption; metasurface composite structure
Year: 2022 PMID: 35407943 PMCID: PMC9000352 DOI: 10.3390/ma15072612
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1(a) The considered metal–insulator–metal unit cell. (b) The metasurface composite structures. (c) The simulated absorption spectra of the metasurface composite structures with both nanoparticles (black solid curve) and with a single nanoparticle (red solid curve for d2 = 126 nm and blue solid curve for d1 = 146 nm) under x polarization. (d) The impedance spectra (real and imaginary parts). The electric field distributions in (e) the x–y plane and (f) the x–z plane. (g) The magnetic field (color plot) and electric current (white arrows) distributions.
Figure 2(a) The simulated absorption spectra of the metasurface composite structures under x and y polarizations. (b) The simulated absorption spectra of the metasurface composite structures with both nanoparticles (black solid curve) and with a single nanoparticle (red solid curve for d2 = 126 nm and blue solid curve for d1 = 146 nm) under y polarization. (c) The impedance spectra (real part and imaginary parts). (d) The electric field distributions.
Figure 3(a) The metasurface composite structures with four diagonal symmetric gold nanoparticles. (b) The simulated absorption spectra under x and y polarization. The electric field distributions under (c) x and (d) y polarization at λres = 745 nm.
Figure 4(a) The metasurface composite structures with five differently sized nanoparticles. (b) The simulated absorption spectra of the metasurface comprising each constituent gold nanoparticle and the metasurface composite structures with multiple nanoparticles under x-polarized incident light. (c) The electric field distributions (||) at λres = 594 nm, 637 nm, and 693 nm.
Figure 5The simulated absorption spectra of the metasurface composite structures as functions of (a) the thickness of the SiO2 layer t2, (b) the period P, and (c) the incident angle θ under x polarization.