Photonic crystal-coupled enhanced steering emission: A prism-free, objective-free, and metal-free loss-less approach for biosensing

Author:

Bhaskar Seemesh123ORCID,Liu Weinan12ORCID,Tibbs Joseph24ORCID,Cunningham Brian T.123456ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign 1 , Urbana, Illinois 61801, USA

2. Nick Holonyak Jr., Micro and Nanotechnology Laboratory, University of Illinois at Urbana-Champaign 2 , Urbana, Illinois 61801, USA

3. Carl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign 3 , Urbana, Illinois 61801, USA

4. Department of Bioengineering, University of Illinois at Urbana-Champaign 4 , Urbana, Illinois 61801, USA

5. Department of Chemistry, University of Illinois at Urbana-Champaign 5 , Urbana, Illinois 61801, USA

6. Cancer Center at Illinois 6 , Urbana, Illinois 61801, USA

Abstract

Diagnostic assays utilizing fluorescent reporters in the context of low abundance biomarkers for cancer and infectious disease can reach lower limits of detection through efficient collection of emitted photons into an optical sensor. In this work, we present the rational design, fabrication, and application of one-dimensional photonic crystal (PC) grating interfaces to accomplish a cost-effective prism-free, metal-free, and objective-free platform for augmentation of fluorescence emission collection efficiency. Guided mode resonance (GMR) of the PC is engineered to match the laser excitation (532 nm) and emission maximum (580 nm) of the radiating dipoles to arrive at optimized conditions. The photo-plasmonic hybrid nano-engineering using silver nanoparticles presented >110-fold steering fluorescence enhancement enabling placement of the sample between the excitation source and detector that are in a straight line. From the experimental and simulation inferences, we propose a radiating GMR model by scrutinizing the polarized emission properties of the hybrid substrate, in accordance with the radiating plasmon model. The augmented fluorescence intensity realized here with a simple detection instrument provides sub-nanomolar sensitivity to provide a path toward point-of-care scenarios.

Funder

National Institute of Health

NIH

National Science Foundation

Publisher

AIP Publishing

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