A fiber optic–nanophotonic approach to the detection of antibodies and viral particles of COVID-19

Author:

Rajil Navid1,Sokolov Alexei1,Yi Zhenhuan1,Adams Garry1,Agarwal Girish1,Belousov Vsevolod234,Brick Robert1,Chapin Kimberly1,Cirillo Jeffrey1,Deckert Volker156,Delfan Sahar1,Esmaeili Shahriar1,Fernández-González Alma1,Fry Edward1,Han Zehua1,Hemmer Philip17,Kattawar George1,Kim Moochan1,Lee Ming-Che1,Lu Chao-Yang8,Mogford Jon9,Neuman Benjamin110,Pan Jian-Wei8,Peng Tao1,Poor Vincent11,Scully Steven12,Shih Yanhua13,Suckewer Szymon111,Svidzinsky Anatoly1,Verhoef Aart1,Wang Dawei14,Wang Kai1,Yang Lan15,Zheltikov Aleksei11617,Zhu Shiyao14,Zubairy Suhail1,Scully Marlan118611

Affiliation:

1. Texas A&M University, College Station, TX77843, USA

2. Shemyakin–Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, Moscow117997, Russia

3. Pirogov Russian National Research Medical University, Moscow117997, Russia

4. Federal Center of Brain Research and Neurotechnologies of the Federal Medical Biological Agency, Moscow117997, Russia

5. Leibniz Institute of Photonic Technology, 07745Jena, Germany

6. Friedrich Schiller University, 07743Jena, Germany

7. Zavoisky Physical-Technical Institute, 420029Kazan, Russia

8. University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China

9. Texas A&M University System, College Station, TX77840, USA

10. Texas A&M University, Texarkana, TX75503, USA

11. Princeton University, Princeton, NJ08544, USA

12. Collins Aerospace, Richardson, TX75082, USA

13. University of Maryland, Baltimore County, 1000 Hilltop Circle, Baltimore, MD21250, USA

14. Zhejiang University, 38 Zheda Rd, Hangzhou, 310027, P. R. China

15. Washington University, St. Louis, MO63130, USA

16. International Laser Center, Moscow State University, Moscow119992, Russia

17. Russian Quantum Center, Skolkovo, Moscow Region, 143025, Russia

18. Baylor University, Waco, TX76798, USA

Abstract

AbstractDr. Deborah Birx, the White House Coronavirus Task Force coordinator, told NBC News on “Meet the Press” that “[T]he U.S. needs a ‘breakthrough’ in coronavirus testing to help screen Americans and get a more accurate picture of the virus’ spread.” We have been involved with biopathogen detection since the 2001 anthrax attacks and were the first to detect anthrax in real-time. A variation on the laser spectroscopic techniques we developed for the rapid detection of anthrax can be applied to detect the Severe Acute Respiratory Syndrome-Corona Virus-2 (SARS-CoV-2 virus). In addition to detecting a single virus, this technique allows us to read its surface protein structure. In particular, we have been conducting research based on a variety of quantum optical approaches aimed at improving our ability to detect Corona Virus Disease-2019 (COVID-19) viral infection. Indeed, the detection of a small concentration of antibodies, after an infection has passed, is a challenging problem. Likewise, the early detection of disease, even before a detectible antibody population has been established, is very important. Our team is researching both aspects of this problem. The paper is written to stimulate the interest of both physical and biological scientists in this important problem. It is thus written as a combination of tutorial (review) and future work (preview). We join Prof. Federico Capasso and Editor Dennis Couwenberg in expressing our appreciation to all those working so heroically on all aspects of the COVID-19 problem. And we thank Drs. Capasso and Couwenberg for their invitation to write this paper.

Funder

Texas A&M Foundation

National Institutes of Health Grant

Government of the Russian Federation

Robert A. Welch Foundation

Air Force Office of Scientific Research

National Science Foundation

Office of Naval Research

King Abdulaziz City for Science and Technology

AFOSR award

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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