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Updated: Sep 2, 2026

Microfluidic Channel-Based Soft Electrodes and Their Application in Capacitive Pressure Sensing
Published on: March 17, 2023
Pseudocapacitive Charge-Transfer Interface via Polyoxometalate-Functionalized Mesoporous MOF for Highly Reliable and
Wenjie Dong1,2, Chen Luan1,3, Yao Dai1
1State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, P. R. China.
Abstract:
Soft bioelectronics require conductive hydrogels with balanced mechanical-electrical performance for high-fidelity electrophysiological recording, yet conventional ones lack a balance between stretchability and electrochemical stability due to poor interfacial charge transfer. We present a molecularly engineered polyoxometalate-functionalized mesoporous metal-organic framework (meso-MOF@POM) nanoarchitecture that simultaneously reinforces the hydrogel network and enhances interfacial charge kinetics. The meso-MOF serves as a hierarchical scaffold with multiscale channels for polymer anchoring, while the sub-nanometer Keggin-type POM layer creates abundant redox-mediated electron transfer pathways. Upon integration of meso-MOF@POM into a dual-network poly(acrylic acid)/polyacrylamide hydrogel, the composite hydrogel enables high stretchability (>1000% strain), minimal electrical creep (<0.13% s-1@100% strain), and good cyclic durability (>3000 cycles). Crucially, the engineered organic-inorganic interface endows the hydrogel with excellent pseudocapacitive charge-transfer kinetics, which achieves low skin-electrode impedance (64 kΩ at 1 Hz vs. 287 kΩ at 1 Hz for Ag/AgCl gel). As a result, the skin-interfacing electrode enables high-fidelity recording of on-skin electrophysiological signals, including electrocardiogram, electromyogram, and electrooculogram, with an enhanced signal-to-noise ratio (e.g., 23.8 dB for ECG vs. 21.3 dB for Ag/AgCl gel). This work provides a novel fabrication strategy for highly conductive interfaces, enabling long-term applications in wearable health monitors and human-machine interfaces.

