Hybrid Nanowire Ion-to-Electron Transducers for Integrated Bioelectronic Circuitry

Nano Lett. 2017 Feb 8;17(2):827-833. doi: 10.1021/acs.nanolett.6b04075. Epub 2017 Jan 5.

Abstract

A key task in the emerging field of bioelectronics is the transduction between ionic/protonic and electronic signals at high fidelity. This is a considerable challenge since the two carrier types exhibit intrinsically different physics and are best supported by very different materials types-electronic signals in inorganic semiconductors and ionic/protonic signals in organic or bio-organic polymers, gels, or electrolytes. Here we demonstrate a new class of organic-inorganic transducing interface featuring semiconducting nanowires electrostatically gated using a solid proton-transporting hygroscopic polymer. This model platform allows us to study the basic transducing mechanisms as well as deliver high fidelity signal conversion by tapping into and drawing together the best candidates from traditionally disparate realms of electronic materials research. By combining complementary n- and p-type transducers we demonstrate functional logic with significant potential for scaling toward high-density integrated bioelectronic circuitry.

Keywords: III−V nanowires; bioelectronics; hybrid organic/inorganic electronics; proton-to-electron transduction.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Arsenicals / chemistry*
  • Electric Conductivity
  • Electronics
  • Electrons
  • Equipment and Supplies
  • Gallium / chemistry*
  • Indium / chemistry*
  • Nanowires / chemistry*
  • Particle Size
  • Polyethylene Glycols / chemistry
  • Protons
  • Semiconductors

Substances

  • Arsenicals
  • Protons
  • Indium
  • gallium arsenide
  • Polyethylene Glycols
  • Gallium
  • indium arsenide