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Large-scale wet-spinning of highly electroconductive MXene fibers

Engineering and Technology

Large-scale wet-spinning of highly electroconductive MXene fibers

W. Eom, H. Shin, et al.

Discover a groundbreaking method for producing flexible, high-conductivity MXene fibers, reaching electrical conductivity levels of 7,713 S cm⁻¹. Developed by a team of researchers including Wonsik Eom and Hwansoo Shin, this innovative technique utilizes wet-spinning and ammonium ions to create scalable fibers ideal for advanced electrical applications, such as lighting LEDs and transmitting signals to earphones.... show more
Abstract
Ti3C2Tx MXene is an emerging class of two-dimensional nanomaterials with exceptional electroconductivity and electrochemical properties, and is promising in the manufacturing of multifunctional macroscopic materials and nanomaterials. Herein, we develop a straightforward, continuously controlled, additive/binder-free method to fabricate pure MXene fibers via a large-scale wet-spinning assembly. Our MXene sheets (with an average lateral size of 5.11 µm2) are highly concentrated in water and do not form aggregates or undergo phase separation. Introducing ammonium ions during the coagulation process successfully assembles MXene sheets into flexible, meter-long fibers with very high electrical conductivity (7,713 S cm−1). The fabricated MXene fibers are comprehensively integrated by using them in electrical wires to switch on a light-emitting diode light and transmit electrical signals to earphones to demonstrate their application in electrical devices. Our wet-spinning strategy provides an approach for continuous mass production of MXene fibers for high-performance, next-generation, and wearable electronic devices.
Publisher
Nature Communications
Published On
Jun 04, 2020
Authors
Wonsik Eom, Hwansoo Shin, Rohan B. Ambade, Sang Hoon Lee, Ki Hyun Lee, Dong Jun Kang, Tae Hee Han
Tags
MXene fibers
electrical conductivity
wet-spinning
fiber formation
mass production
high-performance electronics
flexible materials
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