Large-Scale, Mechanically Robust, Solvent-Resistant, and Antioxidant MXene-Based Composites for Reliable Long-Term Infrared Stealth
Article
Article Title | Large-Scale, Mechanically Robust, Solvent-Resistant, and Antioxidant MXene-Based Composites for Reliable Long-Term Infrared Stealth |
---|---|
ERA Journal ID | 210044 |
Article Category | Article |
Authors | Guo, Bi-Fan, Wang, Ye-Jun, Cao, Cheng-Fei, Qu, Zhang-Hao, Song, Jiang, Li, Shi-Neng, Gao, Jie-Feng, Song, Pingan, Zhang, Guo-Dong, Shi, Yong-Qian and Tang, Long-Cheng |
Journal Title | Advanced Science |
Journal Citation | 11 (17) |
Article Number | 2309392 |
Number of Pages | 13 |
Year | 2024 |
Publisher | John Wiley & Sons |
Place of Publication | Germany |
ISSN | 2198-3844 |
Digital Object Identifier (DOI) | https://doi.org/10.1002/advs.202309392 |
Web Address (URL) | https://onlinelibrary.wiley.com/doi/10.1002/advs.202309392 |
Abstract | MXene-based thermal camouflage materials have gained increasing attention due to their low emissivity, however, the poor anti-oxidation restricts their potential applications under complex environments. Various modification methods and strategies, e.g., the addition of antioxidant molecules and fillers have been developed to overcome this, but the realization of long-term, reliable thermal camouflage using MXene network (coating) with excellent comprehensive performance remains a great challenge. Here, a MXene-based hybrid network comodified with hyaluronic acid (HA) and hyperbranched polysiloxane (HSi) molecules is designed and fabricated. Notably, the presence of appreciated HA molecules restricts the oxidation of MXene sheets without altering infrared stealth performance, superior to other water-soluble polymers; while the HSi molecules can act as efficient cross-linking agents to generate strong interactions between MXene sheets and HA molecules. The optimized MXene/HA/HSi composites exhibit excellent mechanical flexibility (folded into crane structure), good water/solvent resistance, and long-term stable thermal camouflage capability (with low infrared emissivity of ≈0.29). The long-term thermal camouflage reliability (≈8 months) under various outdoor weathers and the scalable coating capability of the MXene-coated textile enable them to disguise the IR signal of various targets in complex environments, indicating the great promise of achieved material for thermal camouflage, IR stealth, and counter surveillance. |
Keywords | infrared stealth |
Contains Sensitive Content | Does not contain sensitive content |
ANZSRC Field of Research 2020 | 340302. Macromolecular materials |
Byline Affiliations | Hangzhou Normal University, China |
Zhejiang A & F University, China | |
Yangzhou University, China | |
Centre for Future Materials | |
School of Agriculture and Environmental Science | |
Fuzhou University, China |
https://research.usq.edu.au/item/z5v00/large-scale-mechanically-robust-solvent-resistant-and-antioxidant-mxene-based-composites-for-reliable-long-term-infrared-stealth
Download files
Published Version
Advanced Science - 2024 - Guo - Large‐Scale Mechanically Robust Solvent‐Resistant and Antioxidant MXene‐Based Composites.pdf | ||
License: CC BY 4.0 | ||
File access level: Anyone |
39
total views24
total downloads3
views this month0
downloads this month