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January 14, 2026Biosensors0 citationsOpen Access

Metallic Flexible NiTi Wire Microcrack Transducer for Label-Free Impedimetric Sensing of Escherichia coli

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GTG. TurkMSMehmet Çağrı Soylu

Key Points

  • The study aims to develop a metallic flexible biosensor using NiTi wire for label-free detection of E. coli.
  • Developed a microcrack transducer exploiting NiTi's deformability.
  • Functionalized with E. coli-specific antibodies for detection.
  • Executed impedimetric sensing in sterile human urine.
  • Achieved a detection limit of 64 colony forming units (CFU) mL−1.
  • Successfully detected E. coli ATCC 25922 within 45 min without labels or amplification.
  • Demonstrated stable and quantitative impedance response through mechanical bending of NiTi wires.

Abstract

Flexible biosensors offer rapid and low-cost diagnostics but are often limited by the mechanical and electrochemical instability of polymer-based designs in biological media. Here, we introduce a metallic flexible microcrack transducer that exploits the intrinsic deformability of superelastic nickel–titanium (NiTi) for label-free impedimetric detection. Mechanical bending of NiTi wires spontaneously generates martensitic-phase microcracks whose metal–gap–metal geometry forms the active transduction sites, where functional interfacial layers and captured analytes modulate the local dielectric environment and govern the impedance response. Our approach imparts a novel dielectric character to the alloy, enabling its unexplored application in the megahertz (MHz) frequency domain (0.01–10 MHz) where native NiTi is merely conductive. Functionalization with Escherichia coli (E. coli)-specific antibodies renders these microdomains biologically active. This effectively transforms the mechanically induced microcracks into tunable impedance elements driven by analyte binding. The γ-bent NiTi sensors achieved stable and quantitative detection of E. coli ATCC 25922 in sterile human urine, with a detection limit of 64 colony forming units (CFU) mL−1 within 45 min, without redox mediators, external labels, or amplification steps. This work pioneers the use of martensitic microcrack networks, mimicking self-healing behavior in a superelastic alloy as functional transduction elements, defining a new class of metallic flexible biosensors that integrate mechanical robustness, analytical reliability, and scalability for point-of-care biosensing.

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Cite This Study

Turk et al. (2026) studied this question.

synapsesocial.com/papers/6966f33b13bf7a6f02c01210https://doi.org/10.3390/bios16010054
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