Enhanced sensing of nucleic acids with silicon nanowire field effect transistor biosensors

  • Anran Gao
  • , Na Lu
  • , Yuchen Wang
  • , Pengfei Dai
  • , Tie Li*
  • , Xiuli Gao
  • , Yuelin Wang
  • , Chunhai Fan
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

195 Scopus citations

Abstract

Silicon nanowire (SiNW) field effect transistors (FETs) have emerged as powerful sensors for ultrasensitive, direct electrical readout, and label-free biological/chemical detection. The sensing mechanism of SiNW-FET can be understood in terms of the change in charge density at the SiNW surface after hybridization. So far, there have been limited systematic studies on fundamental factors related to device sensitivity to further make clear the overall effect on sensing sensitivity. Here, we present an analytical result for our triangle cross-section wire for predicting the sensitivity of nanowire surface-charge sensors. It was confirmed through sensing experiments that the back-gated SiNW-FET sensor had the highest percentage current response in the subthreshold regime and the sensor performance could be optimized in low buffer ionic strength and at moderate probe concentration. The optimized SiNW-FET nanosensor revealed ultrahigh sensitivity for rapid and reliable detection of target DNA with a detection limit of 0.1 fM and high specificity for single-nucleotide polymorphism discrimination. In our work, enhanced sensing of biological species by optimization of operating parameters and fundamental understanding for SiNW FET detection limit was obtained.

Original languageEnglish
Pages (from-to)5262-5268
Number of pages7
JournalNano Letters
Volume12
Issue number10
DOIs
StatePublished - 10 Oct 2012
Externally publishedYes

Keywords

  • SiNW-FETs
  • biosensor
  • detection limit
  • ultrasensitive

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