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Self-wrinkling coating for impact resistance and mechanical enhancement.

Authors :
Li, Jin
Zhang, Xiaoliang
Su, Zhilong
Li, Tiantian
Wang, Zehong
Dong, Shilong
Xu, Fan
Ma, Xiaodong
Yin, Jie
Jiang, Xuesong
Source :
Science Bulletin. Oct2023, Vol. 68 Issue 19, p2200-2209. 10p.
Publication Year :
2023

Abstract

The self-wrinkling coating with surface microphase morphology and hierarchical cross-linked structure for impact resistance and mechanical enhancement. [Display omitted] Protective materials are essential for personal, electronic, and military defenses owing to their efficient impact-resistant and energy-absorbing properties. Inspired by the bottom-up fabrication process and energy dissipation mechanism of natural organisms with hierarchical structures, we demonstrated a self-wrinkled photo-curing coating as a new protective material for enhancing the anti-impact property of the substrates. Owing to the self-assembly of polydimethylsiloxane (PDMS) containing polymeric photoinitiator on the surface, the liquid coating formulation was photo-cured by one-step UV irradiation with simultaneous generation of self-wrinkled surface morphology and a gradient cross-linked architecture. The maximum impact resistance height (h max) of the glass substrate coated with plain coating increased from 120 to 180 cm when coated with wrinkled gradient coating. Furthermore, the Young's modulus, fracture stress, and toughness of the wrinkled gradient coating film improved from 39.6 MPa, 2.4 MPa, and 74.1 MJ/cm3 to 235.0 MPa (∼5× increase), 18.5 MPa (∼6.6× increase), and 845.0 MJ/cm3 (∼10.8× increase) compared to the pure coating film as reference. The theoretical simulation and experimental results proved that the surface self-wrinkled morphology and intrinsic hierarchical architecture contribute to the energy dissipation and impact resistance of the cured coating. The photo-curing process, a bottom-up strategy, is conducted in a non-contact mode compared with nano-printing and lithography, enabling bulk materials to be engineered. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20959273
Volume :
68
Issue :
19
Database :
Academic Search Index
Journal :
Science Bulletin
Publication Type :
Academic Journal
Accession number :
172976151
Full Text :
https://doi.org/10.1016/j.scib.2023.08.021