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Updated: Sep 30, 2026

Dry Film Photoresist-based Electrochemical Microfluidic Biosensor Platform: Device Fabrication, On-chip Assay Preparation, and System Operation
Published on: September 19, 2017
Engineering two-dimensional electronic biosensors
Md Mehdi Hasan1, Huilu Bao2, Verónica Montes-García3
1Department of Biomedical Engineering, University of Massachusetts Amherst, Amherst, Massachusetts, USA.
Abstract:
The combination of exceptional electrical, mechanical, geometrical and chemical properties of two-dimensional materials has enabled highly sensitive detection of biological and environmental signals and opened new frontiers in biosensing. Graphene has pioneered much of this progress, yet the broader landscape of two-dimensional materials, comprising hundreds of experimentally validated and thousands of theoretically predicted materials, offers vast, largely untapped potential. The field is now at a critical stage where device sensitivity must be matched by improvements in selectivity, stability, reproducibility and operation under physiological conditions. This Perspective reviews the current state-of-the-art in two-dimensional materials-based biosensors, highlighting their key advances and drawbacks. We argue that further progress will depend on linking biosensing performance more directly to the intrinsic structures and properties of individual materials. Emerging strategies to overcome persistent challenges, such as biocompatibility, selectivity, functionalization, drift, reproducibility and stability under physiological conditions will be central to translating laboratory demonstrations into reliable translational sensing technologies. The diversity of two-dimensional materials also creates opportunities to move beyond graphene and match specific material properties to unique sensing functions. Their integration into flexible and portable point-of-care devices would support applications ranging from continuous health monitoring to the Internet of Medical Things.
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