4.6 Article

True Reference Nanosensor Realized with Silicon Nanowires

Journal

LANGMUIR
Volume 28, Issue 25, Pages 9899-9905

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/la301555r

Keywords

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Funding

  1. Sensirion AG
  2. Swiss Nanoscience Institute (SNI)
  3. Swiss Nano-Tera program
  4. European Commission under the FP7-NMP project Hysens [263091]

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Conventional gate oxide layers (e.g., SiO2, Al2O3, or HfO2) in silicon field-effect transistors (FETs) provide highly active surfaces, which can be exploited for electronic pH sensing. Recently, great progress has been achieved in pH sensing using compact integrateable nanowire FETs. However, it has turned out to be much harder to realize a true reference electrode, which while sensing the electrostatic potential - does not respond to the proton concentration. In this work, we demonstrate a highly effective reference sensor, a so-called reference FET, whose proton sensitivity is suppressed by as much as 2 orders of magnitude. To do so, the Al2O3 surface of a nanowire FET was passivated with a self-assembled monolayer of silanes with a long alkyl chain. We have found that a full passivation can be achieved only after an extended period of self-assembling lasting several days at 80 degrees C. We use this slow process to measure the number of active proton binding sites as a function of time by a quantitative,comparison of the measured nonlinear pH-sensitivities to a theoretical model (site-binding model). Furthermore, we have found that a partially passivated surface can sense small changes in the number of active binding sites reaching a detection limit of delta N-s approximate to 170 mu m(-2) Hz(-1/2) at 10 Hz and pH 3.

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