Hydrogel-ionic polymer blend for humidity-insensitive ion gradient driven electricity generation

Abstract

Sustainable means of providing electricity is of paramount importance for next-generation electronic devices. Recently, exploiting ion concentration gradient has been suggested as a viable method to generate electricity. When a cationic polymer and an anionic polymer come into contact, the freely mobile anions and cations in the charged polymers migrated down the concentration gradient producing electrical potential. In this work, we show that by blending the charged polymers in hydrogel the electrical potential can be sustained for extended period of time providing opportunities for reliable energy harvesting. Agarose blocks blended with poly(diallyldimethyl ammonium chloride) (PDDA) and with anionic poly(sodium 4-styrenesulfonate) (PSS) are stacked together to allow the diffusion of Na+ and Cl- ions down the concentration gradients and produce electricity. The high-moisture absorption and retainment capability of agarose facilitates the diffusion of the ions, and accordingly, a peak open-circuit voltage (VOC) and peak short-circuit current (ISC) of ~120 mV and ~48 μA are produced, respectively. These values can be increased to 426 mV and 89.2 μA when connected serially or in parallel. Both ionic polymer concentration and gel thickness are found to strongly influence the VOC and ISC while the interfacial contact area and relative humidity do not affect the energy harvesting performance. Enabled by the high-moisture absorption capability and retainment of the agarose hydrogel, the VOC can be sustained for over 100 hr with no change.

Supplementary files

Article information

Article type
Paper
Submitted
18 Nov 2024
Accepted
12 Feb 2025
First published
13 Feb 2025

J. Mater. Chem. C, 2025, Accepted Manuscript

Hydrogel-ionic polymer blend for humidity-insensitive ion gradient driven electricity generation

B. Kim, P. Faramarzi, J. H. Kim, W. Jang, Y. Yoo and J. B. You, J. Mater. Chem. C, 2025, Accepted Manuscript , DOI: 10.1039/D4TC04885G

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