太赫兹辐射
超材料
光学
材料科学
太赫兹光谱与技术
双重功能
分裂环谐振器
折射率
微流控
光电子学
太赫兹超材料
超材料吸收剂
可调谐超材料
纳米技术
物理
远红外激光器
计算机科学
计算机图形学(图像)
激光器
轮廓
作者
Hongyi Ge,Jia Keke Jia,Yuying Jiang,Yuwei Bu,Yujie Zhang,Yuan Zhang,Qingcheng Sun
出处
期刊:Optics Express
[Optica Publishing Group]
日期:2025-01-06
卷期号:33 (3): 3930-3930
被引量:15
摘要
In recent years, terahertz metamaterial sensors have shown great potential in label-free biosensing; yet, the detection of high-absorption liquid samples that are sensitive to terahertz waves remains a significant challenge. In this study, a dual-function absorber capable of dynamically switching between broadband absorption and high-sensitivity sensing is proposed based on the microfluidic technology and phase change characteristics of vanadium dioxide (VO 2 ). Compared with traditional terahertz microfluidic sensors, this structure differs in that it incorporates a VO 2 film as a separation layer in the sensor cover plate and a VO 2 square resonator on top. This configuration not only exhibits high-sensitivity sensing but can also function as an absorber for broadband absorption. When VO 2 is in the metallic state, the structure acts as a broadband absorber with an absorption rate exceeding 90% across the 1.09–3.02 THz range. When VO 2 is in the insulating state, the structure functions as a microfluidic sensor, achieving an absorption rate above 99.9% at 1.438 and 2.068 THz, with nearly perfect absorption and refractive index sensitivities of 532 and 785 GHz/RIU, respectively; the quality factor is 17.6 and 23.5, respectively, indicating excellent sensing performance. Moreover, due to the symmetry of the metal micro-structured layer and the VO 2 square resonator, the device exhibits polarization insensitivity and stability at large incident angles. In summary, this structure significantly broadens the applications of traditional absorbers and sensors and holds promise for future applications in electromagnetic cloaking, energy harvesting, and biomedical detection.
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