Wang Pei-Lin, Mai Tian, Zhang Wei, Qi Meng-Yu, Chen Lei, Liu Qi, Ma Ming-Guo
MOE Engineering Research Center of Forestry Biomass Materials and Bioenergy, Research Center of Biomass Clean Utilization, Beijing Key Laboratory of Lignocellulosic Chemistry, College of Materials Science and Technology, Beijing Forestry University, Beijing, 100083, P.R. China.
State Silica-based Materials Laboratory of Anhui Province, Bengbu, 233000, P.R. China.
Small. 2024 Jan;20(3):e2304914. doi: 10.1002/smll.202304914. Epub 2023 Sep 7.
Robust, ultrathin, and environmental-friendliness papers that synergize high-efficiency electromagnetic interference (EMI) shielding, personal thermal management, and wearable heaters are essential for next-generation smart wearable devices. Herein, MXene nanocomposite paper with a nacre-like structure for EMI shielding and electrothermal/photothermal conversion is fabricated by vacuum filtration of Ti C T MXene and modified sawdust. The hydrogen bonding and highly oriented structure enhance the mechanical properties of the modified sawdust/MXene composite paper (SM paper). The SM paper with 50 wt% MXene content shows a strength of 23 MPa and a toughness of 13 MJ·M . The conductivity of the SM paper is 10 195 S·m , resulting in an EMI shielding effectiveness (SE) of 67.9 dB and a specific SE value (SSE/t) of 8486 dB·cm ·g . In addition, the SM paper exhibits excellent thermal management performance including high light/electro-to-thermal conversion, rapid Joule heating and photothermal response, and sufficient heating stability. Notably, the SM paper exhibits low infrared emissivity and distinguished infrared stealth performance, camouflaging a high-temperature heater surface of 147-81 °C. The SM-based e-skin achieves visualization of Joule heating and realizes human motions monitoring. This work presents a new strategy for designing MXene-based wearable devices with great EMI shielding, artificial intelligence, and thermal management applications.
坚固、超薄且环保的纸张,能够协同实现高效电磁干扰(EMI)屏蔽、个人热管理和可穿戴加热器功能,对于下一代智能可穿戴设备至关重要。在此,通过对Ti₃C₂Tₓ MXene和改性锯末进行真空过滤,制备出具有类似珍珠层结构用于EMI屏蔽和电热/光热转换的MXene纳米复合纸。氢键和高度取向的结构增强了改性锯末/MXene复合纸(SM纸)的机械性能。MXene含量为50 wt%的SM纸显示出23 MPa的强度和13 MJ·m⁻³的韧性。SM纸的电导率为10195 S·m⁻¹,产生了67.9 dB的电磁干扰屏蔽效能(SE)和8486 dB·cm²·g⁻¹的比SE值(SSE/t)。此外,SM纸表现出优异的热管理性能,包括高光/电-热转换、快速焦耳加热和光热响应以及足够的加热稳定性。值得注意的是,SM纸具有低红外发射率和出色的红外隐身性能,可伪装147 - 81 °C的高温加热器表面。基于SM的电子皮肤实现了焦耳加热的可视化并实现了人体运动监测。这项工作为设计具有出色EMI屏蔽、人工智能和热管理应用的基于MXene的可穿戴设备提出了一种新策略。