Exploring the Potential of Broadband Complementary Metal Oxide Semiconductor Micro-Coil Nuclear Magnetic Resonance for Environmental Research

Author:

Lysak Daniel H.1ORCID,Grisi Marco2ORCID,Marable Kathryn2,Conley Gaurasundar M.2,Michal Carl A.3,Moxley-Paquette Vincent1,Wolff William W.1,Downey Katelyn1ORCID,Kock Flavio V. C.1ORCID,Costa Peter M.1,Ronda Kiera1,Moraes Tiago B.4ORCID,Steiner Katrina1,Colnago Luiz A.5ORCID,Simpson Andre J.1

Affiliation:

1. Environmental NMR Centre, University of Toronto, Toronto, ON M1C 1A4, Canada

2. Annaida Technologies, Innovation Park, 1015 Lausanne, Switzerland

3. Department of Physics and Astronomy, University of British Columbia, Vancouver, BC V6T 1Z1, Canada

4. Departamento Engenharia de Biossistemas, Universidade de São Paulo/ESALQ, Av. Páduas Dias, 11, Piracicaba 13418-900, SP, Brazil

5. Embrapa Instrumentação, Rua XV de Novembro 1452, São Carlos 13560-970, SP, Brazil

Abstract

With sensitivity being the Achilles’ heel of nuclear magnetic resonance (NMR), the superior mass sensitivity offered by micro-coils can be an excellent choice for tiny, mass limited samples such as eggs and small organisms. Recently, complementary metal oxide semiconductor (CMOS)-based micro-coil transceivers have been reported and demonstrate excellent mass sensitivity. However, the ability of broadband CMOS micro-coils to study heteronuclei has yet to be investigated, and here their potential is explored within the lens of environmental research. Eleven nuclei including 7Li, 19F, 31P and, 205Tl were studied and detection limits in the low to mid picomole range were found for an extended experiment. Further, two environmentally relevant samples (a sprouting broccoli seed and a D. magna egg) were successfully studied using the CMOS micro-coil system. 13C NMR was used to help resolve broad signals in the 1H spectrum of the 13C enriched broccoli seed, and steady state free precession was used to improve the signal-to-noise ratio by a factor of six. 19F NMR was used to track fluorinated contaminants in a single D. magna egg, showing potential for studying egg–pollutant interactions. Overall, CMOS micro-coil NMR demonstrates significant promise in environmental research, especially when the future potential to scale to multiple coil arrays (greatly improving throughput) is considered.

Funder

Natural Sciences and Engineering Research Council of Canada (NSERC) Alliance

Alliance

Discovery Programs

Research Tools

Publisher

MDPI AG

Subject

Chemistry (miscellaneous),Analytical Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Molecular Medicine,Drug Discovery,Pharmaceutical Science

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