纳米纤维素
材料科学
纳米技术
MXenes公司
两亲性
单层
电导率
化学工程
制作
调制(音乐)
碳化钛
表面改性
二氧化钛
微粒
过渡金属
钛
纳米结构
碳化物
石墨烯
作者
Shuyang He,Zhen Yu,Shan Li,Shijie Lei,Lin Zhu,Ke Zhao,Fangxia Yang,Ningning Cao,Yuyan Liu,Zhimin Fan
标识
DOI:10.1002/advs.202508665
摘要
Abstract Titanium carbide (Ti 3 C 2 T x ) MXene combines exceptional conductivity, mechanical robustness, and multifunctionality, positioning it as a promising material for diverse applications. However, its industrial deployment remains hampered by the inability to precisely control redispersibility and oxidative stability. Herein, an interlayer chemical modulation strategy is reported, mediated by amphiphilic lignin‐containing nanocellulose (LNC). Competitive interactions between the hydrophilic and hydrophobic segments of LNC within MXene interlayers enable precise tuning of spacing and interfacial chemistry. This approach allows rapid, industrial‐scale spray drying to produce semi‐solid MXene with long‐term reversible redispersibility and outstanding oxidative stability. The resulting material can be fully redispersed into monolayer MXene even after 180 days of storage while maintaining high conductivity (≈7000 S cm −1 ). Moreover, by adjusting the post‐drying time‐dependent window, MXene powders can be programmably switched from a dynamically reversible to a permanently fixed structure, broadening their utility across multiple domains. This approach is expected to resolve the long‐standing industry bottlenecks of MXene, including its susceptibility to oxidation, high transportation costs, and challenges in reprocessing, thereby opening a new path for the rapid transition of MXene from laboratory to commercial application.
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