材料科学
纳米纤维
自愈水凝胶
超级电容器
流变学
导电体
纳米技术
制作
细菌纤维素
多孔性
电导率
复合材料
纤维素
气凝胶
电容
电化学
电阻率和电导率
结构完整性
水溶液
多孔介质
结构稳定性
机械强度
膜
压延
墨水池
化学工程
作者
Nuzhet I. Kilic,Kyle Matthews,Giovanni Marco Saladino,Yury Gogotsi,Per A. Larsson,Mahiar Max Hamedi
出处
期刊:Small
[Wiley]
日期:2025-10-07
卷期号:: e07491-e07491
被引量:2
标识
DOI:10.1002/smll.202507491
摘要
Abstract Extrusion‐based 3D‐printing is a promising manufacturing method because it can integrate various nanomaterials, including highly conductive MXenes. Nevertheless, the fabrication of both wet and dry stable 3D‐printed structures with MXene has remained challenging due to the difficulty in forming mechanically stable, crosslinked networks with the required rheological properties. In this work, a MXene ink formulation incorporating cellulose nanofibers (CNFs) as rheology modifiers is developed, enhancing structural integrity and enabling a one‐step freeze‐induced crosslinking process to produce lightweight, porous structures. The 3D‐printed structures exhibit remarkable mechanical strength, supporting up to 10,000 times their own weight, while maintaining a conductivity of over 195 S m −1 . Additionally, they demonstrate a specific capacitance of 240 F g −1 at 5 mV s −1 , highlighting their potential for applications in advanced iontronic devices. A fully 3D‐printed supercapacitor concept is showcased in two distinct configurations: in‐plane and stacked; demonstrating their structural integrity and electrochemical stability in aqueous environments.
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