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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/80068
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor徐治平(Jyh-Ping Hsu)
dc.contributor.authorChia-Yang Chungen
dc.contributor.author鍾嘉陽zh_TW
dc.date.accessioned2022-11-23T09:24:17Z-
dc.date.available2021-07-23
dc.date.available2022-11-23T09:24:17Z-
dc.date.copyright2021-07-23
dc.date.issued2021
dc.date.submitted2021-07-14
dc.identifier.citation[1] T. Humplik, J. Lee, S.C. O'Hern, B.A. Fellman, M.A. Baig, S.F. Hassan, M.A. Atieh, F. Rahman, T. Laoui, R. Karnik, E.N. Wang, Nanostructured materials for water desalination, Nanotechnology 22 (2011) 292001. [2] Y. Mei, C.Y.Y. Tang, Recent developments and future perspectives of reverse electrodialysis technology: A review, Desalination 425 (2018) 156-174. [3] C. Fritzmann, J. Löwenberg, T. Wintgens, T. Melin, State-of-the-art of reverse osmosis desalination, Desalination 216 (2007) 1-76. [4] K.P. Lee, T.C. Arnot, D. Mattia, A review of reverse osmosis membrane materials for desalination—development to date and future potential, J. Membr. Sci. 370 (2011) 1-22. [5] L.F. Greenlee, D.F. Lawler, B.D. Freeman, B. Marrot, P. Moulin, Reverse osmosis desalination: Water sources, technology, and today's challenges, Water Res. 43 (2009) 2317-2348. [6] T. Mezher, H. Fath, Z. Abbas, A. Khaled, Techno-economic assessment and environmental impacts of desalination technologies, Desalination 266 (2011) 263-273. [7] J. Bundschuh, N. Ghaffour, H. Mahmoudi, M. Goosen, S. Mushtaq, J. Hoinkis, Low-cost low-enthalpy geothermal heat for freshwater production: Innovative applications using thermal desalination processes, Renew. Sust. Energ. Rev. 43 (2015) 196-206. [8] A.W. Mohammad, Y.H. Teow, W.L. Ang, Y.T. Chung, D.L. Oatley-Radcliffe, N. Hilal, Nanofiltration membranes review: Recent advances and future prospects, Desalination 356 (2015) 226-254. [9] A. AlTaee, A.O. Sharif, Alternative design to dual stage nf seawater desalination using high rejection brackish water membranes, Desalination 273 (2011) 391-397. [10] D. Zhou, L. Zhu, Y. Fu, M. Zhu, L. Xue, Development of lower cost seawater desalination processes using nanofiltration technologies — a review, Desalination 376 (2015) 109-116. [11] W. Guan, R. 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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/80068-
dc.description.abstract奈米流體裝置具有高度的應用潛力,目前已在發展中的應用有: 離子電流整流、鹽濃差發電、奈米孔道除鹽以及檢測。在本篇當中我們展示了奈米孔道應用於除鹽以及檢測的表現並加以討論,除鹽和檢測的應用分別在第一章節以及第二章節中。 在第一章節中,我們考慮在一個以介電材料改質孔道表面的薄膜中,施以軸向的壓力梯度以及徑向的電壓差,軸向的壓力梯度用以推動流體通過薄膜,而孔道徑向的電壓差可以調控孔道表面的帶電性質,進而達到除鹽的效果。整體而言,孔道表面的介電材料層越薄,以及該材料的介電常數越大,則用以除鹽的效果會越佳。在本章節當中,我們將上述的系統在不同的單一鹽類水溶液以及含有多種不同價數鹽類水溶液中做測試,結果顯示只要電壓調控得當,可以達到特定離子分離的效果。 在第二章節中,我們在一個聚電解質改質孔道表面的子彈型奈米孔道中探討檢測物以及孔道表面官能基若以不同的反應方式互動,在檢測表現上會有甚麼影響。孔道表面改質的聚電解質層的帶電情形,會受到檢測溶液的pH值以及和檢測物間的互動影響,進而影響偵測的結果。結果而言,檢測物與表面官能基的反應級數越大,則應用於檢測時所觀測到的電流訊號變化量越小,這也使得對應的離子整流比越小。zh_TW
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dc.description.tableofcontents中文摘要…....……………………………………………………………………………I Abstract….……...……………………………………………...……………...………III Contents....…………………………………………………...………………………....V List of Tables…....……………………………………………………………………...VI List of Figures………...………………………………………………..………...…...VII Chapter 1 Nanopore-based desalination subject to simultaneously applied pressure gradient and gating potential……………………………………………..1 References of Chapter 1………………………….……………………………………18 Chapter 2 Nanopore-based molecule sensing: Influence of adsorption reaction…………………………………………………………………33 References of Chapter 2…………………………………………………………….....60 Conclusion……………………………………………………………………………..67
dc.language.isoen
dc.subject吸附zh_TW
dc.subject奈米流體裝置zh_TW
dc.subject奈米孔道zh_TW
dc.subject除鹽zh_TW
dc.subject介電材料zh_TW
dc.subject檢測zh_TW
dc.subjectdesalinationen
dc.subjectadsorptionen
dc.subjectsensingen
dc.subjectdielectric materialen
dc.subjectnanofluidic deviceen
dc.subjectnanoporeen
dc.title奈米孔道於除鹽與分子檢測之應用zh_TW
dc.titleNanopore Based Desalination and Molecular Detectionen
dc.date.schoolyear109-2
dc.description.degree碩士
dc.contributor.oralexamcommittee曾琇瑱(Hsin-Tsai Liu),郭勇志(Chih-Yang Tseng)
dc.subject.keyword奈米流體裝置,奈米孔道,除鹽,介電材料,檢測,吸附,zh_TW
dc.subject.keywordnanofluidic device,nanopore,desalination,dielectric material,sensing,adsorption,en
dc.relation.page69
dc.identifier.doi10.6342/NTU202101428
dc.rights.note同意授權(全球公開)
dc.date.accepted2021-07-15
dc.contributor.author-college工學院zh_TW
dc.contributor.author-dept化學工程學研究所zh_TW
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