Supervisor of Master's Candidates
E-Mail:85ef362b5fd027a87b7915f9b7ce71c83544532dd884c13c91f87bce9468949f3fbcecb59d6ca94b1d710cc86cd28edbd2e4e05ea80b75272d0eec04baead06dbfc811bb94274e3f441fd6c1a9d42e4f214343eddfdfd7d44fbd3e117433ee12d718fc23eebc550e551a37bad757106fedb0965bd5b4e14991d2fdb96021463c
Paper Publications
Ferroelectric modulation of CuCo<sub>2</sub>O<sub>4</sub> nanorods for controllable alkaline water electrolysis
Key Words:2-DIMENSIONAL TI3C2; OXIDATION; HYDROGELS
Abstract:MXene-based conductive hydrogels hold significant promise as epidermal sensors, yet their susceptibility to oxidation represents a formidable limitation. This study addresses this challenge by incorporating MXene into a tannic acid (TA) cross-linked silk fibroin matrix. The resulting conductive hydrogel (denoted as e-dive) exhibits favorable characteristics such as adjustable mechanical properties, self-healing capabilities (both mechanically and electrically), and strong underwater adhesion. The existence of a percolation network of MXene within the nanocomposites guarantees good electrical conductivity. Importantly, the surface interaction of MXene nanosheets with the hydrophobic moiety from TA substantially reduced moisture and oxygen interactions with MXene, thereby effectively mitigating MXene oxidation within hydrogel matrices. This preservation of the electrical characteristics ensures prolonged functional stability. Furthermore, the e-dive demonstrates inherent antibacterial properties, making it suitable for use in underwater environments where bacterial contamination is a concern. The utilization of this advanced e-dive system extends to the correction of diving postures and the facilitation of underwater healthcare and security alerts. Our study presents a robust methodology for enhancing the stability of MXene-based conductive hydrogel electronics, thereby expanding their scope of potential applications.
Volume:9
Issue:10
Translation or Not:no
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