Reconciling Sensitivity and Breathability in Flexible Iontronic Pressure Sensors via Hierarchical Fibrous Architecture

Abstract

Breathability is an essential property for wearable pressure sensors used in long-term physiological monitoring. However, achieving high sensitivity while maintaining good breathability remains a significant challenge. Here, we report an electrospun fibrous iontronic pressure sensor that integrates high air and moisture permeability with high sensing sensitivity through a rationally designed hierarchical architecture. Ionic liquids are incorporated into the dielectric layer to enhance interfacial polarization, while a porous separator is introduced between the dielectric and electrode layers to increase their spacing and modulate electric-double-layer formation and contact dynamics. These three structural elements work synergistically to amplify pressure sensitivity while preserving open pathways for gas and moisture transport. The resulting sensor achieves a broad detection range of 0–350 kPa, and a sensitivity of 96.01±3.12 kPa-1 (under 0–47 kPa)—1.72-fold higher than the separator-free counterpart. Alongside a detection limit of 1 Pa and a response time of 120 ms, while maintaining excellent breathability, with an air permeability of 12.53 mm·s-1 and a moisture vapor transmission rate of 100.28 g·m-2·h-1. Reliable monitoring of heart rate, swallowing signals, and respiration is demonstrated under realistic wearing conditions. This work proposes a structural design strategy for regulating the sensitivity–breathability trade-off in pressure sensors, offering a viable pathway for wearable physiological monitoring.

Supplementary files

Article information

Article type
Communication
Submitted
09 Apr 2026
Accepted
01 Jun 2026
First published
03 Jun 2026

Mater. Horiz., 2026, Accepted Manuscript

Reconciling Sensitivity and Breathability in Flexible Iontronic Pressure Sensors via Hierarchical Fibrous Architecture

Q. Zhang, Z. He, F. Li, Q. Zhu, Y. Yu, B. Zhao, Y. Wu, K. Wei, M. Tang, J. Li, Y. Liu and H. Wang, Mater. Horiz., 2026, Accepted Manuscript , DOI: 10.1039/D6MH00709K

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