Ultra‐Flexible Giant Magnetoresistance Biosensors for Lab‐on‐a‐Needle Biosensing

Author:

Su Diqing1ORCID,Wu Kai2,Srinivasan Karthik2,Nemati Zohreh2,Zamani Reza2,Chugh Vinit2,Saha Renata2,Franklin Rhonda234,Modiano Jaime45678,Stadler Bethanie1234,Wang Jian‐Ping1234

Affiliation:

1. Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis MN 55455 USA

2. Department of Electrical and Computer Engineering University of Minnesota Minneapolis MN 55455 USA

3. Masonic Cancer Center University of Minnesota Minneapolis MN 5455 USA

4. Institute for Engineering in Medicine University of Minnesota Minneapolis MN 55455 USA

5. Animal Cancer Care and Research Program University of Minnesota St. Paul MN 55108 USA

6. Department of Veterinary Clinical Sciences College of Veterinary Medicine University of Minnesota St. Paul MN 55108 USA

7. Center for Immunology University of Minnesota Minneapolis MN 55455 USA

8. Stem Cell Institute University of Minnesota Minneapolis MN 55455 USA

Abstract

AbstractFlexible biosensors exhibit great potential for the detection of various biomarkers with the ability to adapt to different surface textures. Here, a lab‐on‐a‐needle biosensing platform based on ultra‐flexible giant magnetoresistance (GMR) biosensors is developed. The fabricated flexible GMR sensors exhibit a MR ratio of 5.2% and a sensitivity of 0.13%/Oe in the linear region, which are comparable to their rigid counterparts. It is found that the magnetic properties of the flexible GMR sensors remain unchanged after 500 cycles of compressive and tensile stress, indicating strong robustness even when applied to a surface that is constantly in motion. The developed platform is then employed for the detection of different concentrations of canine osteosarcoma (OSCA‐8) cells with a limit of detection (LOD) of 200 cells in 20 µL sample (104 cells per mL), which demonstrate the ability to perform real‐time, sensitive, and quantitative cell detection.

Funder

National Institute of Food and Agriculture

National Science Foundation

University of Minnesota

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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