Heat‐Driven Iontronic Nanotransistors

Author:

Prete Domenic1,Colosimo Alessia12,Demontis Valeria1,Medda Luca1,Zannier Valentina1,Bellucci Luca1,Tozzini Valentina1,Sorba Lucia1,Beltram Fabio1,Pisignano Dario2,Rossella Francesco13ORCID

Affiliation:

1. NEST Scuola Normale Superiore and Istituto Nanoscienze‐CNR Piazza San Silvestro 12 Pisa I‐56127 Italy

2. Universitá di Pisa Dipartimento di Fisica Largo Bruno Pontecorvo, 3 Pisa 56127 Italy

3. Scuola di Ingegneria | Dipartimento di Scienze Fisiche Informatiche e Matematiche Universitá di Modena e Reggio Emilia via Campi 213/a Modena 41125 Italy

Abstract

AbstractThermoelectric polyelectrolytes are emerging as ideal material platform for self‐powered bio‐compatible electronic devices and sensors. However, despite the nanoscale nature of the ionic thermodiffusion processes underlying thermoelectric efficiency boost in polyelectrolytes, to date no evidence for direct probing of ionic diffusion on its relevant length and time scale has been reported. This gap is bridged by developing heat‐driven hybrid nanotransistors based on InAs nanowires embedded in thermally biased Na+‐functionalized (poly)ethyleneoxide, where the semiconducting nanostructure acts as a nanoscale probe sensitive to the local arrangement of the ionic species. The impact of ionic thermoelectric gating on the nanodevice electrical response is addressed, investigating the effect of device architecture, bias configuration and frequency of the heat stimulus, and inferring optimal conditions for the heat‐driven nanotransistor operation. Microscopic quantities of the polyelectrolyte such as the ionic diffusion coefficient are extracted from the analysis of hysteretic behaviors rising in the nanodevices. The reported experimental platform enables simultaneously the ionic thermodiffusion and nanoscale resolution, providing a framework for direct estimation of polyelectrolytes microscopic parameters. This may open new routes for heat‐driven nanoelectronic applications and boost the rational design of next‐generation polymer‐based thermoelectric materials.

Funder

H2020 European Research Council

Ministero dell’Istruzione, dell’Università e della Ricerca

Scuola Normale Superiore

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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