A Morphable Ionic Electrode Based on Thermogel for Non-Invasive Hairy Plant Electrophysiology
- PMID: 33660373
- DOI: 10.1002/adma.202007848
A Morphable Ionic Electrode Based on Thermogel for Non-Invasive Hairy Plant Electrophysiology
Abstract
Plant electrophysiology lays the foundation for smart plant interrogation and intervention. However, plant trichomes with hair-like morphologies present topographical features that challenge stable and high-fidelity non-invasive electrophysiology, due to the inadequate dynamic shape adaptability of conventional electrodes. Here, this issue is overcome using a morphable ionic electrode based on a thermogel, which gradually transforms from a viscous liquid to a viscoelastic gel. This transformation enables the morphable electrode to lock into the abrupt hairy surface irregularities and establish a conformal and adhesive interface. It achieves down to one tenth of the impedance and 4-5 times the adhesive strengths of conventional hydrogel electrodes on hairy leaves. As a result of the improved electrical and mechanical robustness, the morphable electrode can record more than one order of magnitude higher signal-to-noise ratio on hairy plants and maintains high-fidelity recording despite plant movements, achieving superior performance to conventional hydrogel electrodes. The reported morphable electrode is a promising tool for hairy plant electrophysiology and may be applied to diversely textured plants for advanced sensing and modulation.
Keywords: bioelectronics; conformal electrodes; plant electrophysiology; supramolecular hydrogels; thermogelling polymers.
© 2021 Wiley-VCH GmbH.
References
-
- E. Davies, in Plant Electrophysiology: Theory and Methods, (Ed: A. G. Volkov), Springer, Berlin/Heidelberg, Germany 2006, pp. 407-422.
-
- D. C. Wildon, J. F. Thain, P. E. H. Minchin, I. R. Gubb, A. J. Reilly, Y. D. Skipper, H. M. Doherty, P. J. O'Donnell, D. J. Bowles, Nature 1992, 360, 62.
-
- B. Stanković, E. Davies, FEBS Lett. 1996, 390, 275.
-
- B. Stanković, E. Davies, Plant Cell Physiol. 1998, 39, 268.
-
- E. Król, H. Dziubiñska, K. Trębacz, in Action Potential: Biophysical and Cellular Context, Initiation, Phases, and Propagation, (Ed: M. L. DuBois), Nova Science, New York 2010, Ch. 1, pp. 1-26.
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