研究生: |
施政均 Shih, Zheng-Jun |
---|---|
論文名稱: |
模仿豬籠草唇合成具方向性潤濕之長效親水表面 Mimicking the Peristome of Nepenthes: Synthesis of Long-term Hydrophilic, Unidirectional Wetting Surfaces |
指導教授: |
陳柏宇
Chen, Po-Yu |
口試委員: |
劉姿吟
Liu, Tzu-Yin 陳盈潔 Chen, Ying-Chieh |
學位類別: |
碩士 Master |
系所名稱: |
工學院 - 材料科學工程學系 Materials Science and Engineering |
論文出版年: | 2017 |
畢業學年度: | 106 |
語文別: | 英文 |
論文頁數: | 90 |
中文關鍵詞: | 豬籠草 、仿生 、方向性潤濕 、親水 、聚合物接枝 、多階層結構 、PDMS |
外文關鍵詞: | Nepenthes, bio-inspired, unidirectional wetting, hydrophilicity, polymer grafting, hierarchical structure, PDMS |
相關次數: | 點閱:3 下載:0 |
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自然界中的許多生物表面,如蝴蝶翅膀、稻葉與豬籠草的捕蟲籠唇(peristome)都具有多功能潤濕性質,能藉由方向性潤濕引導水流。舉例來說,藉由水流在表面的擴散,豬籠草的捕蟲籠唇表面會變得滑溜,啟動捕捉昆蟲的陷阱。豬籠草唇表面具有方向性潤濕性質的原因在於它特殊的多階層結構與親水性。本研究藉由翻模與表面改質合成啟發自豬籠草唇的方向性潤濕表面,首先使用翻模技術成功以PDMS (polydimethylsiloxane) 複製出豬籠草唇的多階層結構,接著藉由大氣電漿誘發,使PEG (polyethylene glycol) 接枝在PDMS表面,使之由疏水性變為親水性。我們量測其接觸角並透過高速攝影機的拍攝,測量所合成表面的潤濕性與水流動態行為,另外也使用SEM (Scanning Electron Microscope)與XPS (X-ray photoelectron spectroscopy) 定性表面型態與接枝效果。透過結構的設計與表面改質,本研究成功做出可調控潤濕性、高效率、具穩定機械與化學性質的仿生表面,其特殊的方向性潤濕性質將可用於許多領域。
Multi-functional wetting properties was discovered in many species, like butterfly wings, rice leaves, and Nepenthes peristome, which can induce unidirectional wetting to guild the water flow. For instance, water can spread efficiently on the Nepenthes peristome, the rim of insects-capturing pitcher, to induce a slippery surface. The unidirectional wetting behavior of peristome is due to its unique hierarchical structure and intrinsic hydrophilicity. Inspired from Nepenthes peristome, the artificial unidirectional wetting surface was made of PDMS (polydimethylsiloxane) via replication method followed by surface modification. The replica successfully reproduced the hierarchical structure of Nepenthes peristome. Then, to change the wettability of PDMS surface from hydrophobic to hydrophilic, PEG (polyethylene glycol) was grafted on PDMS induced by atmospheric pressure plasma. The wettability and dynamic wetting behavior were evaluated by static contact angle measurements and high speed camera. Surface morphology and grafting quality was characterized by SEM and XPS. Through structural design and surface modification, unidirectional wetting surfaces with tunable wettability, high efficiency, mechanical and chemical stability were successfully synthesized and can be potentially applied in various fields.
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