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Multifunctional Wet-Spun Filaments through Robust Nanocellulose Networks Wrapping to Single-Walled Carbon Nanotubes

机译:通过鲁棒纳米纤维素网络包裹在单壁碳纳米管中的多功能湿纺丝

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摘要

Cellulose nanofibrils (CNFs) and single-walled carbon nanotubes (SWNTs) hold potential for fabricating multifunctional composites with remarkable performance. However, it is technically tough to fabricate materials by CNFs and SWNTs with their intact properties, mainly because of the weakly synergistic interaction. Hence, constructing sturdy interfaces and sequential connectivity not only can enhance mechanical strength but also are capable of improving the electrical conductivity. In that way, we report CNF/SWNT filaments composed of axially oriented building blocks with robust CNF networks wrapping to SWNTs. The composite filaments obtained through the combination of three-mill-roll and wet-spinning strategy display high strength up to ~472.17 MPa and a strain of ~11.77%, exceeding most results of CNF/SWNT composites investigated in the previous literature. Meanwhile, the filaments possess an electrical conductivity of ~86.43 S/cm, which is also positively dependent on temperature changes. The multifunctional filaments are further manufactured as a strain sensor to measure mass variation and survey muscular movements, leading to becoming optimistic incentives in the fields of portable gauge measuring and wearable bioelectronic therapeutics.
机译:纤维素纳米纤维(CNFS)和单壁碳纳米管(SWNT)保持具有显着性能的多功能复合材料的电位。然而,通过CNFS和SWNT通过它们的完整性质制造材料,主要是因为弱协同互动。因此,构建坚固的界面和顺序连接不仅可以增强机械强度,而且还能够提高电导率。通过这种方式,我们向CNF / SWNT长丝报告由轴向导向的构建块组成,具有稳健的CNF网络包裹到SWNT。通过三磨辊和湿纺策略的组合获得的复合丝,显示出高达〜472.17MPa的高强度和〜11.77%的菌株,超过先前文献中的CNF / SWNT复合材料的大多数结果。同时,长丝具有〜86.43 s / cm的电导率,其也积极取决于温度变化。多功能长丝进一步制造为应变传感器,以测量质量变化和调查肌肉运动,导致便携式计量测量和可穿戴生物电子治疗件的野外乐观激励。

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