Zhao Hui, Yun Jin, Zhang Yali, Ruan Kunpeng, Huang Yinsen, Zheng Yaping, Chen Lixin, Gu Junwei
Shaanxi Key Laboratory of Macromolecular Science and Technology, School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an, Shaanxi 710072, China.
School of Chemical Engineering and Clothing, Shaanxi Polytechnic Institute, Xianyang, Shaanxi 712000, China.
ACS Appl Mater Interfaces. 2022 Jan 19;14(2):3233-3243. doi: 10.1021/acsami.1c22950. Epub 2022 Jan 7.
High-performance films via layer-by-layer assembly of two-dimensional (2D) materials would provide all possibilities for the development of modern integrated electronics. However, the stacked structure between nanosheets and large-scale fabrication still remain a great challenge. Herein, FeO/expanded graphite (EG) papers are fabricated via in situ oxidation of ferrocene onto EG nanosheets, followed by a continuous roll-in process. Upon mechanical compaction, the self-interlocked structures driven by close overlapping and hooking of nanosheets in FeO/EG (FG) composites remarkably facilitate the construction of phonon and electron transmission channels and improve mechanical strength. FG papers exhibit prominent shielding effectiveness (67.1 dB at ∼100 μm) with enhanced absorptivity (∼0.1, surpassing lots of conductive film materials), stemming from the synergistic effect of electrical and magnetic properties. Also, the electromagnetic interference (EMI) shielding performance shows prominent reliability after bending (2000 cycles) and ultrasonic treatment (30 min). The corresponding tensile strength reaches 35.8 MPa; meanwhile, the corresponding in-plane thermal conductivity coefficient is as high as 191.7 W/(m·K), which can rapidly and efficiently accelerate heat dissipation. In particular, FG papers also reveal rapid response, controllable, and highly stable Joule heating performance and present promising prospects in the fields of radiation-proof clothing, flexible heaters, portable wearable devices, and aerospace.
通过二维(2D)材料的逐层组装制备的高性能薄膜将为现代集成电子学的发展提供所有可能性。然而,纳米片之间的堆叠结构和大规模制造仍然是一个巨大的挑战。在此,通过将二茂铁原位氧化到膨胀石墨(EG)纳米片上,然后进行连续的滚压工艺,制备了FeO/膨胀石墨(EG)纸。在机械压实后,FeO/EG(FG)复合材料中纳米片的紧密重叠和钩挂驱动的自锁结构显著促进了声子和电子传输通道的构建,并提高了机械强度。FG纸表现出突出的屏蔽效能(在100μm时为67.1dB),吸收率增强(0.1,超过许多导电薄膜材料),这源于电磁性能的协同效应。此外,电磁干扰(EMI)屏蔽性能在弯曲(2000次循环)和超声处理(30分钟)后表现出突出的可靠性。相应的拉伸强度达到35.8MPa;同时,相应的面内热导率系数高达191.7W/(m·K),能够快速有效地加速散热。特别是,FG纸还显示出快速响应、可控且高度稳定的焦耳热性能,并在防辐射服装、柔性加热器、便携式可穿戴设备和航空航天领域展现出广阔的前景。