Li Xingyu, Liu Dingquan, Su Junli, Sun Leihao, Luo Haihan, Chen Gang, Ma Chong, Zhang Qiuyu
Shanghai Institute of Technical Physics, Chinese Academy of Sciences, Shanghai 200083, China.
School of Physical Science and Technology, ShanghaiTech University, Shanghai 200031, China.
Sensors (Basel). 2023 Oct 12;23(20):8402. doi: 10.3390/s23208402.
In this paper, a plasmon resonance-enhanced narrow-band absorber based on the nano-resonant ring array of transparent conductive oxides (TCOs) is proposed and verified numerically. Due to the unique properties of TCOs, the structure achieves an ultra-narrowband perfect absorption by exhibiting a near-field enhancement effect. Consequently, we achieve a peak absorption rate of 99.94% at 792.2 nm. The simulation results indicate that the Full Width Half Maximum (FWHM) can be limited to within 8.8 nm. As a refractive index sensor, the device reaches a sensitivity S of 300 nm/RIU and a Figure of Merit (FOM) value of 34.1 1/RIU. By analyzing the distribution characteristics of the electromagnetic field at the 792.2 nm, we find high absorption with a narrow FWHM of the ITO nano-resonant ring (INRR) owing to plasmon resonance excited by the free carriers at the interface between the metal and the interior of the ITO. Additionally, the device exhibits polarization independence and maintains absorption rates above 90% even when the incident formed by the axis perpendicular to the film is greater than 13°. This study opens a new prospective channel for research into TCOs, which will increase the potential of compact photoelectric devices, such as optical sensing, narrowband filtering, non-radiative data transmission and biomolecular manipulation.
本文提出了一种基于透明导电氧化物(TCO)纳米谐振环阵列的等离子体共振增强窄带吸收器,并进行了数值验证。由于TCO的独特性质,该结构通过呈现近场增强效应实现了超窄带完美吸收。因此,我们在792.2nm处实现了99.94%的峰值吸收率。仿真结果表明,半高宽(FWHM)可限制在8.8nm以内。作为一种折射率传感器,该器件的灵敏度S达到300nm/RIU,品质因数(FOM)值为34.1 1/RIU。通过分析792.2nm处的电磁场分布特性,我们发现由于金属与ITO内部界面处自由载流子激发的等离子体共振,ITO纳米谐振环(INRR)具有高吸收率和窄FWHM。此外,该器件表现出偏振无关性,即使当垂直于薄膜轴形成的入射角大于13°时,吸收率仍保持在90%以上。本研究为TCO的研究开辟了一条新的前景通道,这将增加紧凑型光电器件的潜力,如光学传感、窄带滤波、非辐射数据传输和生物分子操纵。