Biomechanical Energy Harvesters Based on Ionic Conductive Organohydrogels via the Hofmeister Effect and Electrostatic Interaction

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Author(s)

  • Jingkui Qu
  • Xinghan Zhang
  • Zhiwen Zhou
  • Zeyang Zheng
  • Yijie Mu
  • Xinya Wu

Detail(s)

Original languageEnglish
Pages (from-to)13427–13435
Journal / PublicationACS Nano
Volume15
Issue number8
Online published6 Aug 2021
Publication statusPublished - 24 Aug 2021

Abstract

The recent use of cryoprotectant replacement method for solving the easy drying problem of hydrogels has attracted increasing research interest. However, the conductivity decrease of organohydrogels due to the induced insulating solvent limited their electronic applications. Herein, we introduce the Hofmeister effect and electrostatic interaction to generate hydrogen and sodium bonds in the hydrogel. Combined with its double network, an effective charge channel that will not be affected by the solvent replacement, is therefore built. The developed organohydrogel-based single-electrode triboelectric nanogenerator (OHS-TENG) shows low conductivity decrease (one order) and high output (1.02-1.81 W/m2), which is much better than reported OHS-TENGs (2-3 orders, 41.2-710 mW/m2). Moreover, replacing water with glycerol in the hydrogel enables the device to exhibit excellent long-term stability (four months) and temperature tolerance (-50-100 °C). The presented strategy and mechanism can be extended to common organohydrogel systems aiming at high performance in electronic applications.

Research Area(s)

  • electrostatic interaction, energy harvesting, Hofmeister effect, ionic conductive organohydrogel, triboelectric effect, wearable applications

Citation Format(s)

Biomechanical Energy Harvesters Based on Ionic Conductive Organohydrogels via the Hofmeister Effect and Electrostatic Interaction. / Wu, Yinghong; Qu, Jingkui; Zhang, Xinghan et al.
In: ACS Nano, Vol. 15, No. 8, 24.08.2021, p. 13427–13435.

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review