Zugriffsnummer 54819
Dokumenttyp Konferenzartikel
Sprache Englisch
Titel Dynamic characterization of MEMS-SPM in liquid for biomechanical phenotyping using fiber interferometry
Autor(in); Institution
Li, Zhi; 5.1, Oberflächenmesstechnik, PTB-Braunschweig
Jayachandran Menon, Lakshmishri; 5.1, Oberflächenmesstechnik, PTB-Braunschweig; Leibniz Universität Hannover, Hannover, GERMANY
Gao, Sai; 5.1, Oberflächenmesstechnik, PTB-Braunschweig
Brand, Uwe; 5.1, Oberflächenmesstechnik, PTB-Braunschweig
Hiller, Karla; TU Chemnitz, Zentrum für Mikrotechnologie, Chemnitz, GERMANY
Hahn, Susan; TU Chemnitz, Zentrum für Mikrotechnologie, Chemnitz, GERMANY
Quelle/Jahr Multimodal Sensing and Artificial Intelligence for Sustainable Future: 13570 (2025), 135700Z-1 - 135700Z-6
Artikelnummer 135700Z
Schriftenreihe Proceedings of SPIE: 13570
ISSN 0277-786X (online)
ISBN 978-1-51-069048-6 (online)
DOI
Verlag Bellingham, Washington, USA: SPIE
Konferenzangaben SPIE Optical Metrology 2025, Munich, 23-26, June, 2025, Germany
Zusammenfassung Micro- and nano-force sensors and actuators based on microelectromechanical systems (MEMS) are widely used across industrial and scientific domains, including the characterization of ultra-compliant materials with elastic moduli down to the MPa range. With their nano-Newton sensitivity, these sensors also offer great potential for biomechanical phenotyping of biological materials in liquid environments, enabling assessment of viscoelastic properties for early disease diagnostics. To ensure reliable application in biological research, a thorough understanding of MEMS sensor dynamics in liquid is essential. However, characterizing these sensorsin aqueous media is challenging due to strong damping and the complexity of small-scale force measurements. In this manuscript fiber interferometry has been utilized to evaluate the quasi-static and dynamic performance of MEMS nano-force sensors in liquid. Owing to their high sensitivity and non-invasive nature, fiber interferometers are well-suited for in-situ characterization. A proof-of-principle experimental setup has been developed, integrating a fiber interferometer into a MEMS nano-force sensor in liquid. First results indicate that this approach enables a quantitative characterization of the dynamic parameters of silicon micro-sensors, such as resonance frequency and quality factor, and thus supports future MEMS applications in biomedical and nanotechnological research.
Themenbereich der Metrologie Nanometrologie

Zitierung

Li, Z., Jayachandran Menon, L., Gao, S., Brand, U., Hiller, K., & Hahn, S. (2025). Dynamic characterization of MEMS-SPM in liquid for biomechanical phenotyping using fiber interferometry. SPIE Optical Metrology 2025, Munich, 23-26, June, 2025, Germany. https://doi.org/10.1117/12.3063401

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