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Tunable Fano-Resonant Metasurfaces on a Disposable Plastic-Template for Multimodal and Multiplex Biosensing
Authors:Rajib Ahmed  Mehmet Ozgun Ozen  Merve Goksin Karaaslan  Cecilia A Prator  Cassandra Thanh  Shreya Kumar  Leonel Torres  Nikita Iyer  Sadie Munter  Sarka Southern  Timothy J Henrich  Fatih Inci  Utkan Demirci
Affiliation:1. Bio-Acoustic MEMS in Medicine (BAMM) Laboratory, Canary Center at Stanford for Cancer Early Detection Department of Radiology, Stanford School of Medicine, Palo Alto, CA, 94304 USA;2. Division of Experimental Medicine, University of California, 1001 Potrero Avenue, San Francisco, CA, 94110 USA;3. School of Medicine, Gaia Medical Institute, 505 Coast Boulevard South, La Jolla, CA, 92037 USA
Abstract:Metasurfaces are engineered nanostructured interfaces that extend the photonic behavior of natural materials, and they spur many breakthroughs in multiple fields, including quantum optics, optoelectronics, and biosensing. Recent advances in metasurface nanofabrication enable precise manipulation of light–matter interactions at subwavelength scales. However, current fabrication methods are costly and time-consuming and have a small active area with low reproducibility due to limitations in lithography, where sensing nanosized rare biotargets requires a wide active surface area for efficient binding and detection. Here, a plastic-templated tunable metasurface with a large active area and periodic metal–dielectric layers to excite plasmonic Fano resonance transitions providing multimodal and multiplex sensing of small biotargets, such as proteins and viruses, is introduced. The tunable Fano resonance feature of the metasurface is enabled via chemical etching steps to manage nanoperiodicity of the plastic template decorated with plasmonic layers and surrounding dielectric medium. This metasurface integrated with microfluidics further enhances the light–matter interactions over a wide sensing area, extending data collection from 3D to 4D by tracking real-time biomolecular binding events. Overall, this work resolves cost- and complexity-related large-scale fabrication challenges and improves multilayer sensitivity of detection in biosensing applications.
Keywords:biosensing  metasurfaces  microfluidics  point-of-care diagnostics  tunable Fano resonances
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