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研究生: 施奇
Shih, Chih
論文名稱: 以(LaSr)MO3(M=Co, Mn)為電化學雙電池 之陰極材料行二氧化硫及氮氧化物分解 之研究
A study of (LaSr)MO3(M=Co, Mn) as the cathode material of electrochemical double cell for the decomposition of sulfur dioxide and nitrogen oxides
指導教授: 黃大仁
Huang, Ta-Jen
口試委員: 黃大仁
Ta-Jen Huang
呂世源
Shih-Yuan Lu
竇維平
Wei-Ping Dow
學位類別: 碩士
Master
系所名稱: 工學院 - 化學工程學系
Department of Chemical Engineering
論文出版年: 2014
畢業學年度: 102
語文別: 中文
論文頁數: 58
中文關鍵詞: 脫硝脫硫
外文關鍵詞: deNOx, deSO2
相關次數: 點閱:2下載:0
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  • 交通運輸以及工廠鍋爐一直以來都是氮氧化物(NOx)以及二氧化硫(SO2)排放的主要來源,然而在空氣汙染亦趨嚴重的情況下,各國政府對於廢氣排放的標準更加嚴格。在現今的處理技術,氮氧化物以及二氧化硫皆必須使用大量的還原劑與之反應,不僅耗費大量設備成本且有二次汙染的疑慮,然而以實驗室所發展之電化學雙電池(Electrochemical double cell,EDC),利用陰極材料與陽極材料之間產生的電動勢(Electromotive force,EMF)使氮氧化物和二氧化硫在觸媒表面上進行分解反應以達到減排之效果。
    以鈣鈦礦結構(La0.8Sr0.2)0.95MnO3-δ(LSM)以及La0.6Sr0.4CoO3-δ(LSC)搭配具有導氧離子性質之材料Ce0.9Gd0.1O1.95(GDC)做為EDC之陰極材料,以氮氣、氧氣、一氧化氮、二氧化硫、二氧化碳以及水等做為氣體之成分去模擬汽機車廢氣或是工業廢氣。藉由氮氧化物以及二氧化硫濃度之間的調變,可以進一步了解此二種材料對於NOx以及SO2的催化活性。本研究以LSC-GDC以及LSM-GDC作為EDC的陰極材料,而結果顯示LSC對於氮氧化物的處理有更好的效果。LSM則對於二氧化硫的分解表現較LSC為更突出。


    Since the transportation as well as the factory boiler has been the main emission sources of nitrogen oxides(NOx) and sulfur dioxide (SO2), governments around the world adopt strict standards because of serious cases in air pollution. In today's processing technology, large amounts of reducing agent must be used, not only consumes the massive equipment cost but also has the secondary pollution concerns. The development of Electrochemical double cell(EDC) in our lab using Electromotive force(EMF) between cathode and anode to make NOx and SO2 decomposing on the catalyst surfaces in order to achieve emission reduction.

    Perovskite structure (La0.8Sr0.2) 0.95MnO3-δ (LSM) and La0.6Sr0.4CoO3-δ (LSC) with oxygen ion conductivity material Ce0.9Gd0.1O1.95 (GDC) as EDC's cathode material, nitrogen, oxygen, nitric oxide, sulfur dioxide, carbon dioxide and water as a component gases to simulate car exhaust or industrial emissions. By modulating the concentration of nitrogen oxides and sulfur dioxide between, we can learn more about these two kinds of materials for the catalytic activity of the reactants. In this study, we use LSC-GDC and LSM-GDC as the cathode of EDC,and the result show that LSC has a better activity on NOx while LSM has a better performance than LSC on SO2.

    Abstract I 摘要 II 目錄 III 圖目錄 VI 表目錄 VIII 第一章 緒論 1 第二章 文獻回顧與原理 2 2.1氮氧化物之來源 2 2.2氮氧化物之減量處理技術 3 2.2.1直接分解氮氧化物 4 2.2.2選擇性觸媒還原法 5 2.2.3氮氧化物儲存還原法 7 2.2.4外加電壓分解氮氧化物 8 2.2.5固態氧化物燃料電池分解氮氧化物 10 2.2.6電催化電池分解氮氧化物 13 2.3二氧化硫之減量處理技術 17 2.4固態氧化物燃料電池材料組成 21 2.5電解質材料 21 2.5.1立方螢石結構 22 2.5.2鈣鈦礦型結構 22 2.6陽極材料 24 2.7陰極材料 25 第三章 研究構想 27 第四章 實驗材料與方法 29 4.1 實驗藥品 29 4.2 實驗儀器 31 4.3 實驗藥品配製 33 4.3.1粉體製作 33 4.3.2漿料製備 34 4.4 電化學雙電池(Electrochemical double cell,EDC)製作 35 4.4.1 連接層漿料塗佈 35 4.4.2 陽極漿料塗佈 35 4.4.3 陰極漿料塗佈 36 4.4.4 陽極還原 36 4.4.5 EDC封裝 37 4.5 EDC脫硫及脫硝反應實驗系統 38 第五章 結果與討論 41 5.1 以LSC為陰極材料行氮氧化物處理 42 5.2 以LSM為陰極材料行氮氧化物處理 43 5.3 LSC及LSM對於氮氧化物處理能力之比較 45 5.4以LSC為陰極材料行二氧化硫處理 46 5.5以LSM為陰極材料行二氧化硫處理 48 5.6 LSC及LSM對於二氧化硫處理能力之比較 49 5.7 氧分壓對於EDC之影響 51 5.8 相同陰極材料對於氮氧化物及二氧化硫活性比較 54 第六章 結論 56 第七章 參考文獻 57

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