Liao Jie, Wang Pengjun, Fu Qiang, Dai Shixun, Chen Weiwei, Zhang Dong, Deng Lipeng, Li Jun, Dai Tingge, Yang Jianyi
Opt Express. 2024 Nov 4;32(23):41581-41592. doi: 10.1364/OE.542260.
In this paper, a dual-resonances mid-infrared all-dielectric metasurface sensor based on asymmetric cross dimer, which is driven by quasi-bound states in the continuum (QBIC), is proposed and investigated. The metasurface sensor maintains the total permittivity constant when the asymmetric parameter is adjusted, thereby ensuring the stability of the QBIC resonance wavelengths, which exhibit Q-factors of 6351 and 13561, respectively. The multiple decompositions and electromagnetic field distributions reveal that the toroidal dipole is the dominant component of the dual-resonance modes. The sensitivities to the refractive index are 3559 nm/RIU and 1146 nm/RIU, with corresponding figures of merit of 4449 RIU and 2453 RIU, respectively. Further numerical simulations have demonstrated a strong coupling phenomenon between the QBIC and the molecular vibrations of polymethyl methacrylate (PMMA), resulting in a significant enhancement of the infrared absorption signal. With the 50-nm-thick PMMA layer, the enhancement of molecular signal is 90.614%.
本文提出并研究了一种基于非对称交叉二聚体的双共振中红外全介质超表面传感器,该传感器由连续谱中的准束缚态(QBIC)驱动。当调整非对称参数时,超表面传感器保持总介电常数不变,从而确保QBIC共振波长的稳定性,其品质因数分别为6351和13561。多重分解和电磁场分布表明,环形偶极子是双共振模式的主要成分。对折射率的灵敏度分别为3559 nm/RIU和1146 nm/RIU,相应的品质因数分别为4449 RIU和2453 RIU。进一步的数值模拟表明,QBIC与聚甲基丙烯酸甲酯(PMMA)的分子振动之间存在强耦合现象,从而导致红外吸收信号显著增强。对于50 nm厚的PMMA层,分子信号增强了90.614%。