4.7 Article

A Fast Method for Monitoring the Shifts in Resonance Frequency and Dissipation of the QCM Sensors of a Monolithic Array in Biosensing Applications

Journal

IEEE SENSORS JOURNAL
Volume 21, Issue 5, Pages 6643-6651

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/JSEN.2020.3042653

Keywords

Biosensor; fast acquisition; Monolithic Quartz Crystal Microbalance (MQCM); multiple overtones; sensor array devices

Funding

  1. Ministerio de Economia, Industria y Competitividad de EspanaAgencia Estatal de Investigacion
  2. Fondo Europeo de Desarrollo Regional (FEDER) Funds [AGL2016-77702-R]
  3. European Commission Horizon 2020 Programme [H2020-FETOPEN-2016-2017/737212-CATCH-UDNA]
  4. Spanish Ministry of Economy, Industry and Competitiveness, Madrid, Spain [BES-2017-080246]

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The method developed in this study allows for fast measurement of a large number of sensor responses with high time resolution by estimating frequency shift and dissipation shift, and can be implemented in a low-cost readout electronic circuit.
Improvementof data acquisition rate remains as an important challenge in applications with Quartz Crystal Microbalance (QCM) technology where high throughput is required. To address this challenge, we developed a fast method capable of measuring the response of a large number of sensors and/or overtones, with a high time resolution. Our method, which can be implemented in a low-cost readout electronic circuit, is based on the estimation of Delta f(r) (frequency shift) and Delta D (dissipation shift) from measurements of the sensor response obtained at a single driving frequency. By replacing slow fitting procedures with a direct calculation, the time resolution is only limited by the physical characteristics of the sensor (resonance frequency and quality factor), but not by the method itself. Capabilities of the method are demonstrated by monitoring multiple overtones with a single 5 MHz sensor and a Monolithic QCM array comprising 24 50MHz-sensors. Accuracy of the method is validated and compared with the state-of-the-art, as well as with a reference method based on impedance analysis.

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