• DocumentCode
    3608413
  • Title

    Improved Hydrolytic Stability and Repeatability: pH sensing with APTES-coated silicon nanowire bio-FETs.

  • Author

    Pengyuan Zang ; Yuchen Liang ; Hu, Wenchuang Walter

  • Author_Institution
    Univ. of Texas at Dallas, Dallas, TX, USA
  • Volume
    9
  • Issue
    4
  • fYear
    2015
  • Firstpage
    19
  • Lastpage
    28
  • Abstract
    This article addresses the hydrolytic instability issue of surface chemistry and the repeatability issue of silicon (Si) nanowire (NW) biosensors. Si multi-NWs or nanograting (NG) field-effect transistors (FETs) were fabricated using semiconductor lithographic processing techniques. Then, the NG surfaces were coated with 3-aminopropyltriethoxysilane (APTES) via the vapor- and solution-phase methods. Their performance, including drift, stability, sensitivity, accuracy, and linearity of pH sensing, was evaluated. Sensors treated with both APTES deposition methods exhibit linear pH response with good sensitivity. Devices treated with vapor APTES show better linearity and sensitivity, and APTES-solution-coated devices are more stable with smaller drift. A hydrolysis process was developed to significantly improve the hydrolytic stability of the APTES-coated sensor surface. As a result, an accuracy of ?0.008 pH was achieved, which is comparable to or better than commercially available ion-sensitive FETs (ISFETs), whereas the sensor drift was significantly reduced for both sensors treated with vapor and solution APTES. This hydrolysis process has greatly improved the stability and repeatability of charge sensing of our Si NG bio-FETs.
  • Keywords
    biosensors; chemical sensors; elemental semiconductors; field effect transistor circuits; nanowires; pH measurement; semiconductor quantum wires; silicon; surface chemistry; 3-aminopropyltriethoxysilane; APTES; Si; bio-FET; biosensors; field-effect transistors; hydrolytic stability; ion-sensitive FET; nanograting; nanowire; pH sensing; semiconductor lithographic processing; solution-phase method; surface chemistry; vapor-phase method; Biosensors; Field effect transistors; Hydrological techniques; Logic gates; Nanowires; Surface morphology; Surface treatment; pH measurement;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology Magazine, IEEE
  • Publisher
    ieee
  • ISSN
    1932-4510
  • Type

    jour

  • DOI
    10.1109/MNANO.2015.2472696
  • Filename
    7299270