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Updated: Aug 6, 2026

Preparation of DNA-crosslinked Polyacrylamide Hydrogels
Published on: August 27, 2014
Ag-Anchored Ti3C2Tx-Polyacrylamide Hydrogels with Interlayer Electron Bridges for Stretchable Bioelectronics and
Bangul Khan1,2, Bilawal Khan3, Weibin Zhu1,2
1Department of Biomedical Engineering, College of Biomedicine, City University of Hong Kong, Kowloon Tong, Hong Kong SAR999077, China.
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Stretchable bioelectronic hydrogels must reconcile extreme mechanical compliance with stable, high-fidelity charge transport and therapeutic functionality. We introduce a Ag-anchored Ti3C2Tx-polyacrylamide (PAM) hydrogel, in which silver nanoparticles bridge adjacent MXene layers, thereby lowering interlayer resistance and forming a continuous, strain-adaptive conductive network. Concurrent metal-polymer co-ordination with 2D MXene reinforcement yields a hierarchical dissipation architecture featuring ultra-stretchability (∼2036%), high toughness (∼2350 kJ m-3), and rapid self-recovery under cyclic loading. Electron-bridge-enabled transport results in stable electro-mechanical sensing (linear ΔR/Ro up to 500% strain; R2 ≈ 0.98) and minimized skin-electrode impedance at 1.5 mm thickness across 1 Hz-10 kHz, outperforming commercial Ag/AgCl electrodes. In human tests, the hydrogel electrodes capture high-fidelity sEMG (SNR ≈ 30 dB) and ECG (SNR ≈ 26.157 dB) with 5-day stability. At the same time, photothermal actuation at 808 nm and 1 W cm-2 rapidly reaches ∼74 °C and cycles reproducibly, enabling dose-tunable therapeutic heating. The platform also demonstrates >90% fibroblast viability and significant suppression of S. aureus growth. By coupling interlayer electron bridges with dynamic bonding, this work establishes a unified design principle for multifunctional, clinically oriented soft hydrogels that span wearable physiological monitoring and NIR-assisted therapy.

