Photonic‐Plasmonic Coupling Enhanced Fluorescence Enabling Digital‐Resolution Ultrasensitive Protein Detection

Author:

Barya Priyash12ORCID,Xiong Yanyu13ORCID,Shepherd Skye34,Gupta Rohit5,Akin Lucas D.26,Tibbs Joseph34,Lee Hankeun12,Singamaneni Srikanth5ORCID,Cunningham Brian T.12346ORCID

Affiliation:

1. Department of Electrical and Computer Engineering University of Illinois at Urbana−Champaign Urbana IL 61801 USA

2. Holonyak Micro and Nanotechnology Laboratory University of Illinois at Urbana−Champaign Urbana IL 61801 USA

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

4. Department of Bioengineering University of Illinois at Urbana‐Champaign Urbana IL 61801 USA

5. Department of Mechanical Engineering and Materials Science Institute of Materials Science and Engineering Washington University in St. Louis St. Louis MO 63130 USA

6. Department of Chemistry University of Illinois at Urbana‐Champaign Urbana IL 61801 USA

Abstract

AbstractAssays utilizing fluorophores are common throughout life science research and diagnostics, although detection limits are generally limited by weak emission intensity, thus requiring many labeled target molecules to combine their output to achieve higher signal‐to‐noise. We describe how the synergistic coupling of plasmonic and photonic modes can significantly boost the emission from fluorophores. By optimally matching the resonant modes of a plasmonic fluor (PF) nanoparticle and a photonic crystal (PC) with the absorption and emission spectrum of the fluorescent dye, a 52‐fold improvement in signal intensity is observed, enabling individual PFs to be observed and digitally counted, where one PF tag represents one detected target molecule. The amplification can be attributed to the strong near‐field enhancement due to the cavity‐induced activation of the PF, PC band structure‐mediated improvement in collection efficiency, and increased rate of spontaneous emission. The applicability of the method by dose‐response characterization of a sandwich immunoassay for human interleukin‐6, a biomarker used to assist diagnosis of cancer, inflammation, sepsis, and autoimmune disease is demonstrated. A limit of detection of 10 fg mL−1 and 100 fg mL−1 in buffer and human plasma respectively, is achieved, representing a capability nearly three orders of magnitude lower than standard immunoassays.

Funder

National Science Foundation

National Institutes of Health

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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