Literature DB >> 27137049

New set of design rules for resonant refractive index sensors enabled by FFT based processing of the measurement data.

Lefteris Gounaridis, Panos Groumas, Erik Schreuder, Rene Heideman, Hercules Avramopoulos, Christos Kouloumentas.   

Abstract

It is still a common belief that ultra-high quality-factors (Q-factors) are a prerequisite in optical resonant cavities for high refractive index resolution and low detection limit in biosensing applications. In combination with the ultra-short steps that are necessary when the measurement of the resonance shift relies on the wavelength scanning of a laser source and conventional methods for data processing, the high Q-factor requirement makes these biosensors extremely impractical. In this work we analyze an alternative processing method based on the fast-Fourier transform, and show through Monte-Carlo simulations that improvement by 2-3 orders of magnitude can be achieved in the resolution and the detection limit of the system in the presence of amplitude and spectral noise. More significantly, this improvement is maximum for low Q-factors around 10<sup>4</sup> and is present also for high intra-cavity losses and large scanning steps making the designs compatible with the low-cost aspect of lab-on-a-chip technology. Using a micro-ring resonator as model cavity and a system design with low Q-factor (10<sup>4</sup>), low amplitude transmission (0.85) and relatively large scanning step (0.25 pm), we show that resolution close to 0.01 pm and detection limit close to 10<sup>-7</sup> RIU can be achieved improving the sensing performance by more than 2 orders of magnitude compared to the performance of systems relying on a simple peak search processing method. The improvement in the limit of detection is present even when the simple method is combined with ultra-high Q-factors and ultra-short scanning steps due to the trade-off between the system resolution and sensitivity. Early experimental results are in agreement with the trends of the numerical studies.

Year:  2016        PMID: 27137049     DOI: 10.1364/OE.24.007611

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  2 in total

1.  Beyond Q: The Importance of the Resonance Amplitude for Photonic Sensors.

Authors:  Donato Conteduca; Guilherme S Arruda; Isabel Barth; Yue Wang; Thomas F Krauss; Emiliano R Martins
Journal:  ACS Photonics       Date:  2022-04-15       Impact factor: 7.077

2.  A Miniature Bio-Photonics Companion Diagnostics Platform for Reliable Cancer Treatment Monitoring in Blood Fluids.

Authors:  Marianneza Chatzipetrou; Lefteris Gounaridis; George Tsekenis; Maria Dimadi; Rachel Vestering-Stenger; Erik F Schreuder; Anke Trilling; Geert Besselink; Luc Scheres; Adriaan van der Meer; Ernst Lindhout; Rene G Heideman; Henk Leeuwis; Siegfried Graf; Tormod Volden; Michael Ningler; Christos Kouloumentas; Claudia Strehle; Vincent Revol; Apostolos Klinakis; Hercules Avramopoulos; Ioanna Zergioti
Journal:  Sensors (Basel)       Date:  2021-03-23       Impact factor: 3.576

  2 in total

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