博碩士論文 108324064 詳細資訊




以作者查詢圖書館館藏 以作者查詢臺灣博碩士 以作者查詢全國書目 勘誤回報 、線上人數:42 、訪客IP:18.117.11.16
姓名 黃昱銘(Yu-Ming Huang)  查詢紙本館藏   畢業系所 化學工程與材料工程學系
論文名稱 自發性與靜止液滴間奇特碰撞:吞噬、繞道、反彈
(Peculiar encounter between self-propelled droplet and static droplet: swallow, detour, and recoil.)
相關論文
★ 單一高分子在接枝表面的吸附現象-分子模擬★ 化學機械研磨的微觀機制探討
★ 界面活性劑與微脂粒的作用★ 家禽傳染性華氏囊病病毒與VP2次病毒顆粒對固定化鎳離子之異相吸附
★ 液滴潤濕與接觸角遲滯★ 親溶劑奈米粒子於高分子溶液中的自組裝現象
★ 具界面活性溶質之蒸發殘留圖形研究★ 奈米自泳動粒子之擴散行為
★ 抗氧化奈米銅粒子的製備及分析★ 柱狀自泳動粒子之擴散行為與沉降平衡
★ 過氧化氫的界面性質與穩定性★ 液橋分離與液面爬升物體之研究
★ 電潤濕動態行為探討★ 表面粗糙度對接觸角遲滯影響之效應
★ 以耗散粒子動力學法研究奈米自泳動粒子輸送現象★ 低溫還原氧化石墨烯薄膜
檔案 [Endnote RIS 格式]    [Bibtex 格式]    [相關文章]   [文章引用]   [完整記錄]   [館藏目錄]   [檢視]  [下載]
  1. 本電子論文使用權限為同意立即開放。
  2. 已達開放權限電子全文僅授權使用者為學術研究之目的,進行個人非營利性質之檢索、閱讀、列印。
  3. 請遵守中華民國著作權法之相關規定,切勿任意重製、散佈、改作、轉貼、播送,以免觸法。

摘要(中) 在微流道中兩液滴碰撞的結果及了解結果的機理很重要。含有三矽甲烷介面活性劑的二甲基甲酰胺液滴可以在聚(甲基丙烯酸甲酯)基質上隨機地自發性移動。當自推進液滴遇到另一個靜態液滴時,出現一些有趣的現象,並歸納出四種類型:(i)吞噬並帶走(液體石蠟),(ii)吞噬並釘札(橄欖油),(iii)繞行後離開(水)和(iv)反彈並離開(甘油)。在吞噬的類型中發現兩接觸液體互不相溶,而反彈的種類中則輕易地溶解在一起,前者可以用兩個擴展係數來解釋,而後者可以歸因於接觸時界面張力梯度的建立。
摘要(英) Understanding the outcome and mechanism of droplet-droplet collision is important in digital microfluidics. A dimethylformamide droplet containing Silwet L-77 can self-propel randomly on poly(methyl methacrylate) substrates. When the self-propelled droplet encounters another static liquid droplet, some interesting phenomena appear and they can be generally classified into four types: (i) swallow-and-run (liquid paraffin), (ii) swallow-run-pinning (olive oil), (iii) detour-and-run (water), and (iv) recoil-and-run (glycerol). The swallow behavior is observed as the two droplets are immiscible, but the rebound behavior is acquired as they are miscible. The former can be explained by the two spreading coefficients, while the latter may be attributed to the buildup of the gradient of the interfacial tension upon contact.
關鍵字(中) ★ 自泳動液滴
★ 液滴碰撞
★ 擴散係數
★ 馬倫哥尼效應
★ 介面張力
關鍵字(英) ★ Self-propelled droplet
★ Droplet collision
★ Spreading coefficient
★ Marangoni stress
★ Interfacial tension
論文目次 摘要 i
Abstract ii
List of Figures iv
1. Introduction 1
2. Experiment section 2
2.1. Materials 2
2.2. Observation of self-propulsion of droplets 2
3. Results and discussions 3
3.1. Swallowing immiscible droplets by self-running droplets 3
3.2. Repulsion of self-running droplets away from miscible droplets 10
4. Conclusion 13
5. References 14
參考文獻 [1] W.S. Wong, M. Li, D.R. Nisbet, V.S. Craig, Z. Wang, A. Tricoli, Mimosa Origami: A nanostructure-enabled directional self-organization regime of materials, Sci. adv. 2(6) (2016) e1600417.
[2] J.A. Lv, Y. Liu, J. Wei, E. Chen, L. Qin, Y. Yu, Photocontrol of fluid slugs in liquid crystal polymer microactuators, Nature 537(7619) (2016) 179-84.
[3] H. Chen, P. Zhang, L. Zhang, H. Liu, Y. Jiang, D. Zhang, Z. Han, L. Jiang, Continuous directional water transport on the peristome surface of Nepenthes alata, Nature 532(7597) (2016) 85-9.
[4] C. Wang, S.S. Nair, S. Veeravalli, P. Moseh, K.J. Wynne, Sticky or Slippery Wetting: Network Formation Conditions Can Provide a One-Way Street for Water Flow on Platinum-cured Silicone, ACS Appl. Mater. Interfaces 8(22) (2016) 14252-62.
[5] A. Zavabeti, T. Daeneke, A.F. Chrimes, A.P. O′Mullane, J. Zhen Ou, A. Mitchell, K. Khoshmanesh, K. Kalantar-Zadeh, Ionic imbalance induced self-propulsion of liquid metals, Nat. Commun. 7 (2016) 12402.
[6] F.D. Dos Santos, T. Ondarcuhu, Free-running droplets, Phys. Rev. Lett. 75(16) (1995) 2972-2975.
[7] M.K. Chaudhury, G.M. Whitesides, How to make water run uphill, Science 256(5063) (1992) 1539-1541.
[8] Y. Zheng, H. Bai, Z. Huang, X. Tian, F.Q. Nie, Y. Zhao, J. Zhai, L. Jiang, Directional water collection on wetted spider silk, Nature 463(7281) (2010) 640-3.
[9] C. Liu, J. Sun, J. Li, C. Xiang, L. Che, Z. Wang, X. Zhou, Long-range spontaneous droplet self-propulsion on wettability gradient surfaces, Sci. Rep. 7(1) (2017) 7552.
[10] V. Singh, C.-J. Huang, Y.-J. Sheng, H.-K. Tsao, Smart zwitterionic sulfobetaine silane surfaces with switchable wettability for aqueous/nonaqueous drops, J. Mater. Chem. A 6(5) (2018) 2279-2288.
[11] V. Singh, C.-J. Wu, Y.-J. Sheng, H.-K. Tsao, Self-propulsion and shape restoration of aqueous drops on sulfobetaine silane surfaces, Langmuir 33(24) (2017) 6182-6191.
[12] S.-W. Hu, C.-Y. Wang, Y.-J. Sheng, H.-K. Tsao, Peculiar Wetting of N,N-Dimethylformamide: Expansion, Contraction, and Self-Running, J. Phys. Chem. C 123(40) (2019) 24477-24486.
[13] Y.-H. Weng, C.-J. Wu, H.-K. Tsao, Y.-J. Sheng, Spreading dynamics of a precursor film of nanodrops on total wetting surfaces, Phys. Chem. Chem. Phys. 19(40) (2017) 27786-27794.
[14] N.A. Ivanova, N.M. Kovalchuk, V.D. Sobolev, V.M. Starov, Wetting films of aqueous solutions of Silwet L-77 on a hydrophobic surface, Soft Matter 12(1) (2016) 26-30.
[15] S.W. Hu, K.Y. Chen, Y.J. Sheng, H.K. Tsao, Directed self-propulsion of droplets on surfaces absent of gradients for cargo transport, J. Colloid Interface Sci. 586 (2021) 469-478.
[16] J.S. Sander, R.M. Erb, C. Denier, A.R. Studart, Magnetic transport, mixing and release of cargo with tailored nanoliter droplets, Adv. Mater. 24(19) (2012) 2582-2587.
[17] A.F. Demirörs, M.T. Akan, E. Poloni, A.R. Studart, Active cargo transport with Janus colloidal shuttles using electric and magnetic fields, Soft Matter 14(23) (2018) 4741-4749.
[18] L. Guo, G.H. Tang, S. Kumar, Droplet Morphology and Mobility on Lubricant-Impregnated Surfaces: A Molecular Dynamics Study, Langmuir 35(49) (2019) 16377-16387.
[19] F. Schellenberger, J. Xie, N. Encinas, A. Hardy, M. Klapper, P. Papadopoulos, H.J. Butt, D. Vollmer, Direct observation of drops on slippery lubricant-infused surfaces, Soft Matter 11(38) (2015) 7617-26.
[20] S. Sett, X. Yan, G. Barac, L.W. Bolton, N. Miljkovic, Lubricant-Infused Surfaces for Low-Surface-Tension Fluids: Promise versus Reality, ACS Appl. Mater. Interfaces 9(41) (2017) 36400-36408.
指導教授 曹恆光(Heng-Kwong Tsao) 審核日期 2021-6-21
推文 facebook   plurk   twitter   funp   google   live   udn   HD   myshare   reddit   netvibes   friend   youpush   delicious   baidu   
網路書籤 Google bookmarks   del.icio.us   hemidemi   myshare   

若有論文相關問題,請聯絡國立中央大學圖書館推廣服務組 TEL:(03)422-7151轉57407,或E-mail聯絡  - 隱私權政策聲明