Real-time, noninvasive monitoring of nitric oxide (NO) on intact plant and fruit tissues is limited by NO's short lifetime and the lack of soft, conductive, adhesive interfaces for irregular surfaces. A detachable electrode-tissue bridge is introduced by integrating a catechol-functionalized carbon-nanotube polyacrylamide hydrogel (CNT-DA-PAM) with a commercial screen-printed carbon electrode, enabling on-demand electrochemical NO sensing on leaves and fruit peels. The hydrogel provides reversible adhesion, mechanical robustness, and a percolating CNT network for efficient charge transfer. The modified electrode exhibits characteristic NO oxidation signals, a broad linear range (0.1 μM-10 mM), a detection limit of 0.49 μM, good selectivity, and 14-day storage stability. On living leaves, thermal and mechanical stimuli induce graded, minute-scale NO responses, whereas on fruit peels, NO signals increase over 0-48 h and scale with damage severity. This soft, reversible interface enables minimally perturbative NO sensing across organs and time scales without invasive probes.
Hussain et al. (2026) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: