- 鄭詠梅 教授
- 北京航空航天大學(xué) 化學(xué)學(xué)院
- 網(wǎng)址: zhengyongmei.polymer.cn 訪問量:757421
- ACS Nano: High-efficiency fog collector
- 國際仿生工程學(xué)會(huì)
- 鄭詠梅教授研究進(jìn)展主頁
- 中國聚合物網(wǎng)
- 中國流變網(wǎng)
- 中國化學(xué)儀器網(wǎng)
- 化學(xué)化工論壇
- 通信地址:北京市昌平區(qū)高教園南三街9號(hào)北京航空航天大學(xué)實(shí)驗(yàn)七號(hào)樓409
- 郵編:102206
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- Email:[email protected]
關(guān)鍵字:icephobic
論文來源:期刊
發(fā)表時(shí)間:2023年
Photothermal superhydrophobic surfaces have the potential to become ideal anti-/deicing surfaces due to their rapid water removal, icing delay, and photothermal deicing performance, yet the tedious manufacturing procedures, high cost, and inadequate durability restrict their large-scale practical applications. Here, we show a robust photothermal icephobic surface with mechanical durability that is integrated with microspine array inspired by honeycomb and cactus thorn (i.e., MAHC), which is developed by a laser-layered microfabrication strategy. The maximum stress on the microspine of the MAHC is reduced by ~2/3, due to the protection of the bionic honeycomb structure. Even after 200 linear abrasions by a steel blade, the MAHC remains superior water repellency with a water contact angle of 150.7° and roll-off angles of 10.3°, stable icing delay time (578.2 s), and rapidly photothermal deicing capabilities (401 s). As the MAHC is fabricated on curvature surface such as a copper alloy transmission line for an overhead high-speed rail, a stably photothermal anti-/deicing in a low-temperature environment still can be achieved effectively. The freezing rain covering the functional transmission line completely slides off within 758 s under one sun illumination. This studying offers an insight into design of novel materials with stable anti-icing/icephobic structures, which would be extended into some applied realms, e.g., transportation fields or power systems in cold or low-temperature climate.
https://onlinelibrary.wiley.com/doi/10.1002/adma.202305322