4.6 Article

Strategy toward Miniaturized, Self-out-Readable Resonant Cantilever and Integrated Electrostatic Microchannel Separator for Highly Sensitive Airborne Nanoparticle Detection

期刊

SENSORS
卷 19, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/s19040901

关键词

nanoparticles; self-reading femtogram balance; cantilever resonator; FEM simulations; electrostatic particle collection

资金

  1. Niedersachsisches Vorab, Germany, through the Quantum- and Nanometrology (QUANOMET) initiative [NP 2-2]
  2. China Scholarship Council (CSC) under the Grant CSC [201506300019]
  3. Ministry of Research, Technology and Higher Education of the Republic of Indonesia (RISTEKDIKTI) [343/RISET-Pro/FGS/VIII/2016, 8245-ID]
  4. EMPIR programme - Participating States
  5. European Union's Horizon 2020 research and innovation programme [17IND05MicroProbes]
  6. Lower Saxony Ministry for Science and Culture (N-MWK)

向作者/读者索取更多资源

In this paper, a self-out-readable, miniaturized cantilever resonator for highly sensitive airborne nanoparticle (NP) detection is presented. The cantilever, which is operated in the fundamental in-plane resonance mode, is used as a microbalance with femtogram resolution. To maximize sensitivity and read-out signal amplitude of the piezo-resistive Wheatstone half bridge, the geometric parameters of the sensor design are optimized by finite element modelling (FEM). The electrical read-out of the cantilever movement is realized by piezo-resistive struts at the sides of the cantilever resonator that enable real-time tracking using a phase-locked loop (PLL) circuit. Cantilevers with minimum resonator mass of 1.72 ng and resonance frequency of similar to similar to 440 kHz were fabricated, providing a theoretical sensitivity of 7.8 fg/Hz. In addition, for electrostatic NP collection, the cantilever has a negative-biased electrode located at its free end. Moreover, the counter-electrode surrounding the cantilever and a mu-channel, guiding the particle-laden air flow towards the cantilever, are integrated with the sensor chip. mu-channels and varying sampling voltages will also be used to accomplish particle separation for size-selective NP detection. To sum up, the presented airborne NP sensor is expected to demonstrate significant improvements in the field of handheld, micro-/nanoelectromechanical systems (M/NEMS)-based NP monitoring devices.

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