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具有改善的环境稳定性和压力传感性能的多层F-Mene/MXene/TPU复合材料的抗氧化自组装

Anti-Oxidized Self-Assembly of Multilayered F-Mene/MXene/TPU Composite with Improved Environmental Stability and Pressure Sensing Performances.

作者信息

Zheng Zhong, Yang Qian, Song Shuyi, Pan Yifan, Xue Huan, Li Jing

机构信息

Hubei Key Laboratory of Modern Manufacturing Quantity Engineering, School of Mechanical Engineering, Hubei University of Technology, Wuhan 430068, China.

出版信息

Polymers (Basel). 2024 May 9;16(10):1337. doi: 10.3390/polym16101337.

Abstract

MXenes, as emerging 2D sensing materials for next-generation electronics, have attracted tremendous attention owing to their extraordinary electrical conductivity, mechanical strength, and flexibility. However, challenges remain due to the weak stability in the oxygen environment and nonnegligible aggregation of layered MXenes, which severely affect the durability and sensing performances of the corresponding MXene-based pressure sensors, respectively. Here, in this work, we propose an easy-to-fabricate self-assembly strategy to prepare multilayered MXene composite films, where the first layer MXene is hydrogen-bond self-assembled on the electrospun thermoplastic urethane (TPU) fibers surface and the anti-oxidized functionalized-MXene (f-MXene) is subsequently adhered on the MXene layer by spontaneous electrostatic attraction. Remarkably, the f-MXene surface is functionalized with silanization reagents to form a hydrophobic protective layer, thus preventing the oxidation of the MXene-based pressure sensor during service. Simultaneously, the electrostatic self-assembled MXene and f-MXene successfully avoid the invalid stacking of MXene, leading to an improved pressure sensitivity. Moreover, the adopted electrospinning method can facilitate cyclic self-assembly and the formation of a hierarchical micro-nano porous structure of the multilayered f-MXene/MXene/TPU (M-fMT) composite. The gradient pores can generate changes in the conductive pathways within a wide loading range, broadening the pressure detection range of the as-proposed multilayered f-MXene/MXene/TPU piezoresistive sensor (M-fMTPS). Experimentally, these novel features endow our M-fMTPS with an outstanding maximum sensitivity of 40.31 kPa and an extensive sensing range of up to 120 kPa. Additionally, our M-fMTPS exhibits excellent anti-oxidized properties for environmental stability and mechanical reliability for long-term use, which shows only ~0.8% fractional resistance changes after being placed in a natural environment for over 30 days and provides a reproducible loading-unloading pressure measurement for more than 1000 cycles. As a proof of concept, the M-fMTPS is deployed to monitor human movements and radial artery pulse. Our anti-oxidized self-assembly strategy of multilayered MXene is expected to guide the future investigation of MXene-based advanced sensors with commercial values.

摘要

MXenes作为用于下一代电子设备的新兴二维传感材料,因其卓越的导电性、机械强度和柔韧性而备受关注。然而,由于在氧环境中的稳定性较弱以及层状MXenes不可忽视的聚集现象,仍然存在挑战,这分别严重影响了相应的基于MXene的压力传感器的耐久性和传感性能。在此工作中,我们提出了一种易于制造的自组装策略来制备多层MXene复合膜,其中第一层MXene通过氢键自组装在电纺热塑性聚氨酯(TPU)纤维表面,随后抗氧化功能化MXene(f-MXene)通过自发的静电吸引附着在MXene层上。值得注意的是,f-MXene表面用硅烷化试剂进行功能化以形成疏水保护层,从而防止基于MXene的压力传感器在使用过程中被氧化。同时,静电自组装的MXene和f-MXene成功避免了MXene的无效堆叠,从而提高了压力灵敏度。此外,所采用的电纺丝方法有助于循环自组装以及多层f-MXene/MXene/TPU(M-fMT)复合材料的分级微纳多孔结构的形成。梯度孔可在较宽的负载范围内产生导电路径的变化,拓宽了所提出的多层f-MXene/MXene/TPU压阻传感器(M-fMTPS)的压力检测范围。实验表明,这些新颖的特性赋予我们的M-fMTPS高达40.31 kPa的出色最大灵敏度和高达120 kPa的广泛传感范围。此外,我们的M-fMTPS在环境稳定性方面表现出优异的抗氧化性能,在长期使用中具有机械可靠性,在自然环境中放置超过30天后,其电阻变化仅约0.8%,并能提供超过1000次循环的可重复加载-卸载压力测量。作为概念验证,M-fMTPS被用于监测人体运动和桡动脉脉搏。我们的多层MXene抗氧化自组装策略有望指导未来具有商业价值的基于MXene的先进传感器的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5edd/11125229/de3f2b678c34/polymers-16-01337-g001.jpg

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