Soni Ritesh, Kim Yun-Tae, Aabloo Alvo, Bathula Chinna, Kim Hyun-Seok, Ray Saikat Sinha, Kwon Young-Nam, Lee Chang Young
School of Energy and Chemical Engineering, Graduate School of Carbon Neutrality, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.
Intelligent Materials and Systems Lab, Institute of Technology, University of Tartu, Tartu 50411, Estonia.
Langmuir. 2025 Feb 11;41(5):3269-3277. doi: 10.1021/acs.langmuir.4c04180. Epub 2025 Jan 31.
Superhydrophobic coatings have broad applications across various fields but often face challenges, such as complexity, high cost, low mechanical/thermal stability, toxicity, and environmental hazards. In this study, we demonstrate a simple, scalable, eco-friendly, and durable spray-coating method using bioadhesive shellac and octadecyltrichlorosilane (OTS)-modified silica nanoparticles to create superhydrophobic surfaces. The silica nanoparticles impart superhydrophobicity by forming hierarchical micro/nanostructures and reducing surface free energy, while shellac ensures strong adhesion of the nanoparticles to a wide range of substrates, including nonwoven polypropylene fibers, glass, plastic, metal, wood, cotton, and concrete. The coating exhibits excellent superhydrophobic performance with a large contact angle (162.1°), a small sliding angle (4°), and low contact angle hysteresis (4°). The coated surface retains its superhydrophobicity even after 50 cycles of sandpaper abrasion, heat exposure up to 150 °C, and contact with acidic environments (pH ∼4.2). These biocompatible and eco-friendly superhydrophobic coatings hold promise for use in applications where safety and environmental protection are critical, such as in antifouling, food packaging, and agricultural/biomedical fields.
超疏水涂层在各个领域都有广泛应用,但常常面临一些挑战,如工艺复杂、成本高、机械/热稳定性低、毒性以及环境危害等。在本研究中,我们展示了一种简单、可扩展、环保且耐用的喷涂方法,使用生物粘合剂虫胶和十八烷基三氯硅烷(OTS)改性的二氧化硅纳米颗粒来制备超疏水表面。二氧化硅纳米颗粒通过形成分级微/纳米结构并降低表面自由能赋予超疏水性,而虫胶确保纳米颗粒对包括非织造聚丙烯纤维、玻璃、塑料、金属、木材、棉花和混凝土在内的多种基材具有强附着力。该涂层具有优异的超疏水性能,接触角大(162.1°)、滑动角小(4°)且接触角滞后低(4°)。即使经过50次砂纸磨损循环、高达150°C的热暴露以及与酸性环境(pH ∼4.2)接触后,涂层表面仍保持其超疏水性。这些具有生物相容性和环保性的超疏水涂层有望用于安全和环境保护至关重要的应用中,如防污、食品包装以及农业/生物医学领域。