Detection of Legionella Bacteria Using a Silicon‐Based Photonic Microring Resonator Biosensor Enhanced by Dielectrophoresis

Silicon-based photonic biosensors, such as microring resonators and Mach-Zehnder interferometers, offer label-free detection, high sensitivity, and full compatibility with semiconductor fabrication processes. Yet, the detection of living bacteria remains difficult due to the limited probability of cell binding on nanoscale waveguide surfaces. We present a microring resonator integrated with a nearby electrode that enables active cell transport via dielectrophoresis. Application of an alternating electric field concentrates cells within tens of micrometers of the sensing region, significantly enhancing detection efficiency. Using this approach, we demonstrate label-free detection of living Legionella bacteria. The method also enables future applications for distinguishing between live and dead cells, opening new possibilities for dynamic biological sensing.

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Publication Details

Journal
Electrophoresis
Published
2026-10-09
DOI
https://doi.org/10.1002/elps.70165
Primary Topic
Photonic and Optical Devices
Type
article
Field-Weighted Citation Impact
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article

Detection of Legionella Bacteria Using a Silicon‐Based Photonic Microring Resonator Biosensor Enhanced by Dielectrophoresis

Peter B. Neubauer, Jörg König, Jamie R. K. Marland, Anders Henriksson et al.
Electrophoresis
Photonic and Optical Devices
article

Detection of Legionella Bacteria Using a Silicon‐Based Photonic Microring Resonator Biosensor Enhanced by Dielectrophoresis

Peter B. Neubauer, Jörg König, Jamie R. K. Marland, Anders Henriksson, Andreas Tsiamis, Ha-Duong Ngo, Stewart Smith, Arum Han, M. Birkholz, Han Zhang, David Schreier, Philipp Schrenk
article en

Abstract

Silicon-based photonic biosensors, such as microring resonators and Mach-Zehnder interferometers, offer label-free detection, high sensitivity, and full compatibility with semiconductor fabrication processes. Yet, the detection of living bacteria remains difficult due to the limited probability of cell binding on nanoscale waveguide surfaces. We present a microring resonator integrated with a nearby electrode that enables active cell transport via dielectrophoresis. Application of an alternating electric field concentrates cells within tens of micrometers of the sensing region, significantly enhancing detection efficiency. Using this approach, we demonstrate label-free detection of living Legionella bacteria. The method also enables future applications for distinguishing between live and dead cells, opening new possibilities for dynamic biological sensing.

Electrophoresis
Technische Universität Ilmenau (DE), HTW Berlin - University of Applied Sciences (DE), National Microelectronics Institute (GB), BioElectronics (United States) (US), Technische Universität Berlin (DE), Texas A&M University (US), University of Edinburgh (GB)
Openalex Percentile: Top 23%
Photonic and Optical Devices
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