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A Fluidic Interface with High Flow Uniformity for Reusable Large Area Resonant Biosensors.

Charles-Louis Azzopardi1, Vivien Lacour2,3, Jean-François Manceau4

  • 1FEMTO-ST Institute, Univ. Bourgogne Franche-Comté, CNRS, 15B avenue des Montboucons, 25030 Besançon, CEDEX, France. cl.azzopardi@femto-st.fr.

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Summary

This study presents a novel fluidic interface for reusable resonant biosensors, ensuring chemical resistance and uniform liquid flow for repeated use. This innovation addresses cost barriers, enabling wider commercial application of high-accuracy biosensing technology.

Keywords:
biosensorfluidic interfacemicro-machiningmicroengineeringplanar flow

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Area of Science:

  • Microfluidics and Biosensor Technology
  • Materials Science for Sensor Fabrication

Background:

  • Resonant biosensors offer high accuracy and miniaturization but face commercialization challenges due to high fabrication costs.
  • The need for reusable biosensors necessitates components that withstand harsh chemical regeneration processes (e.g., H₃PO₄, H₂SO₄).

Purpose of the Study:

  • To develop and validate a novel fluidic interface for reusable resonant biosensors.
  • To ensure uniform liquid flow and chemical resistance for repeated sensor regeneration.

Main Methods:

  • Numerical simulations using the finite element method (FEM) to analyze fluid flow dynamics.
  • Fabrication of fluidic interfaces using silicon (Si) via wet chemical etching.
  • Experimental validation using micro-particle image velocimetry (μPIV) and visual observation with a glass cover.

Main Results:

  • The proposed fluidic interface design demonstrates effective control over liquid flow uniformity.
  • Silicon-based interfaces fabricated via wet chemical etching exhibit the required characteristics for reusable biosensor circuits.
  • Experimental results using μPIV confirm the effectiveness of the designed fluidic interfaces, aligning with simulation predictions.

Conclusions:

  • The developed fluidic interface meets the requirements for reusable resonant biosensors, enhancing their commercial viability.
  • This approach enables the repeated use of high-accuracy biosensors, overcoming limitations of disposable designs.