TY - JOUR
T1 - Rapid fabrication of stable and highly transparent superhydrophobic glass surfaces using femtosecond laser double-pulse trains
AU - Liao, Kai
AU - Wang, Wenjun
AU - Mei, Xuesong
AU - Wang, Chunjin
AU - Cheung, Chi Fai
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier Ltd.
PY - 2026/3
Y1 - 2026/3
N2 - Achieving superhydrophobic surfaces with high optical transparency and durability remains a key challenge for optical and fluidic applications. This study investigates the formation mechanism of femtosecond laser-induced microgroove arrays and compares three double-pulse configurations—low–high, equal–equal, and high–low energy sequences—with the conventional single-pulse mode for generating hierarchical micro/nanostructures. Among them, the low–high sequence (Type 1) produced the most uniform and defined structures by modulating free-electron dynamics and enabling homogeneous energy deposition, stabilizing a Cassie–Baxter wetting regime. A 1.5 × 1.5 cm2 transparent superhydrophobic sample was fabricated in 75 s using a single scan, maskless process. After applying a fluorocarbon plasma treatment (C4F8), the Type 1 surface showed a water contact angle of 154.5° and high transmittance (>88%) in the 300–800 nm range. XPS revealed the highest CF2/CF3 ratio on this surface, correlating with enhanced hydrophobicity. The surface also demonstrated excellent durability against compression, tape delamination, aging, water jets, thermal cycling, and chemical corrosion. This work presents a rapid and scalable laser-based method for fabricating large-area, durable, and transparent superhydrophobic glass surfaces for potential use in optical windows, self-cleaning coatings, microfluidics, and smart devices.
AB - Achieving superhydrophobic surfaces with high optical transparency and durability remains a key challenge for optical and fluidic applications. This study investigates the formation mechanism of femtosecond laser-induced microgroove arrays and compares three double-pulse configurations—low–high, equal–equal, and high–low energy sequences—with the conventional single-pulse mode for generating hierarchical micro/nanostructures. Among them, the low–high sequence (Type 1) produced the most uniform and defined structures by modulating free-electron dynamics and enabling homogeneous energy deposition, stabilizing a Cassie–Baxter wetting regime. A 1.5 × 1.5 cm2 transparent superhydrophobic sample was fabricated in 75 s using a single scan, maskless process. After applying a fluorocarbon plasma treatment (C4F8), the Type 1 surface showed a water contact angle of 154.5° and high transmittance (>88%) in the 300–800 nm range. XPS revealed the highest CF2/CF3 ratio on this surface, correlating with enhanced hydrophobicity. The surface also demonstrated excellent durability against compression, tape delamination, aging, water jets, thermal cycling, and chemical corrosion. This work presents a rapid and scalable laser-based method for fabricating large-area, durable, and transparent superhydrophobic glass surfaces for potential use in optical windows, self-cleaning coatings, microfluidics, and smart devices.
KW - Double-pulse trains
KW - Optical transparency
KW - Superhydrophobic surface
KW - Surface durability
KW - Ultrafast laser fabrication
UR - https://www.scopus.com/pages/publications/105029985695
U2 - 10.1016/j.matdes.2026.115634
DO - 10.1016/j.matdes.2026.115634
M3 - 文章
AN - SCOPUS:105029985695
SN - 0264-1275
VL - 263
JO - Materials and Design
JF - Materials and Design
M1 - 115634
ER -