基于生物质- mxene复合材料的环保仿生柔性多功能传感器

Chi Zheng, D. Gao, Bin Lyu, Yingying Zhou, Ailin Zhang, Y. Gu, Jianzhong Ma, Davida Briana DuBois, Shaowei Chen
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引用次数: 1

摘要

具有多种功能的柔性传感器因其广泛的应用价值而备受关注。目前报道的多功能柔性传感器大多缺乏直观的信号显示功能,受工作环境的限制,对电磁波的抵抗能力较弱,传感器废弃物的填埋和焚烧会对环境造成不可逆的破坏。本文通过MXene、明胶和水基多孔膜(WMM)的逐层组装制备了三层复合材料(称为TGM),该复合材料具有层次有序的仿生异质结构。顶层是多层MXene纳米片,中间层由人工神经笼和MXene@gelatin结构的突触组成,底层是MXene@WMM的实体模拟物。所得到的TGM异质结构由于电导率随施加压力的变化而变化,在空气和水下都表现出优异的压力传感性能。TGM复合材料在红外、湿气和加热刺激下也表现出明显的驱动响应。这些多功能特性可以集成到环境温度和湿度的视觉感知中。此外,该复合材料具有良好的电磁屏蔽性能,且降解性好。该研究结果突出了MXene -生物质复合材料在开发生态友好型多功能传感器方面的独特潜力。
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Eco-Friendly Bionic Flexible Multifunctional Sensors Based on Biomass–MXene Composites
: Flexible sensors with multifunctions have attracted great attention for their extensive application values. Most of the reported multifunctional flexible sensors lack the intuitive signal display function, have limitations of work environment, and are weakly resistant to electromagnetic waves, and the landfill and incineration of the sensor wastes could pose irreversible damage to the environment. Herein, a trilayer composite (referred to as TGM) is prepared by the layer-by-layer assembly of MXene, gelatin, and a water-based multiporous membrane (WMM), which exhibits a hierarchically ordered bionic heterostructure. The top layer is multilayers of MXene nanosheets, the middle layer consists of artificial neural cages and synapses from an MXene@gelatin structure, and the bottom layer is a brick-mortar mimic of MXene@WMM. The resulting TGM heterostructure displays excellent performance in pressure sensing both in air and under water due to the ready variation of the electrical conductivity with applied pressures. The TGM composite also shows an apparent actuation response under IR, moisture, and heating stimulations. These multifunctional characteristics can be integrated for visual sensing of environmental temperature and humidity. Additionally, the composite possesses efficient electromagnetic shielding and shows great degradation. Results from this study highlight the unique potential of MXene − biomass composites in the development of eco-friendly multifunctional sensors.
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