Issue 22, 2015

Integrated carboxylic carbon nanotube pathways with membranes for voltage-activated humidity detection and microclimate regulation

Abstract

This work describes some single walled carboxylic carbon nanotubes with outstanding transport properties when assembled in a 3D microarray working like a humidity membrane-sensor and an adjustable moisture regulator. Combined nano-assembly approaches are used to build up a better quality pathway through which assisted-charge and mass transport synchronically takes place. The structure–electrical response relationship is found, while controllable and tunable donor–acceptor interactions established at material interfaces are regarded as key factors for the accomplishment of charge transportation, enhanced electrical responses and adjustable moisture exchange. Raman and infrared spectroscopy provides indications about the fine structural and chemical features of the hybrid-composite membranes, resulting in perfect agreement with related morphology and electrical properties. Enhanced and modular electrical response to changes in the surrounding atmosphere is concerned with doping events, while assisted moisture regulation is discussed in relation to swelling and hopping actions. The electro-activated hybrid-composite membrane proposed in this work can be regarded as an attractive ‘sense-to-act’ precursor for smart long-distance monitoring systems with capability to adapt itself and provide local comfortable microenvironments.

Graphical abstract: Integrated carboxylic carbon nanotube pathways with membranes for voltage-activated humidity detection and microclimate regulation

Article information

Article type
Paper
Submitted
07 Apr 2015
Accepted
27 Apr 2015
First published
27 Apr 2015

Soft Matter, 2015,11, 4461-4468

Integrated carboxylic carbon nanotube pathways with membranes for voltage-activated humidity detection and microclimate regulation

V. Pingitore, D. Miriello, E. Drioli and A. Gugliuzza, Soft Matter, 2015, 11, 4461 DOI: 10.1039/C5SM00819K

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