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研究生: 曾子豪
Zi-hao Zeng
論文名稱: 釔摻雜在SrCeO3之電導率及化學穩定性影響
Electrical Conductivity and Chemical Stability of Yttrium Doped SrCeO3
指導教授: 李 雄
Shyong Lee
口試委員:
學位類別: 碩士
Master
系所名稱: 工學院 - 機械工程學系
Department of Mechanical Engineering
畢業學年度: 100
語文別: 中文
論文頁數: 81
中文關鍵詞: 鈣鈦礦氫傳輸膜化學穩定性電導率
外文關鍵詞: HTM, Perovskite, Conductivity, Chemical Stability
相關次數: 點閱:13下載:0
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  •   鍶鈰氧化物有利於當作固態氧化物氫傳輸膜(SOHTM)之材料,導因於其擁有高的電子及質子電導率。固態氧化物氫傳輸膜用來萃取天然氣或石化燃料中的氫氣,有幾點條件須滿足方能維持運作:對於氫氣需有高選擇性,具備足夠機械強度以抵抗膜兩端的壓力差,在高水氣、二氧化碳及硫化物分壓下須有良好的化學穩定性。本實驗所使用摻雜釔之鍶鈰氧化物(SrCe1-xYxO3-δ, x=0, 0.05, 0.1)是以檸檬酸-EDTA方法製備,材料之微結構以X光繞射儀(XRD)、場發掃描式電子顯微鏡(FE-SEM)及穿透式電子顯微鏡(TEM)來做觀察。材料之電導率使用兩點式電阻量測,化學穩定性則在CO2氣氛下處理後觀察實驗結果。由1000°C瑕燒所得之粉體經XRD鑑定顯示為不含其他相之純相。在導電率方面,鍶鈰氧化物電導率隨著釔摻雜含量增加而提升。此外在低於700°C下,質子傳導主導大部分的傳導。而在高於700°C溫度時,電子傳導為總電導率之主要貢獻。在CO2化學穩定性實驗中,穩定性隨釔摻雜含量增加而下降。


      Strontium-cerium oxides are beneficial for solid oxide hydrogen transport membranes (SOHTMs) because of their relatively high electrical and protonic conductivities. SOHTMs for the purpose of extraction of hydrogen from supplied gas mixtures are required to be: high selectivity for hydrogen but not others; mechanically strong enough to resist differential pressures across them; chemically stable under high partial pressure of moisture, carbon dioxide and sulfides; In this study, yttrium substituted strontium cerate (SrCe1-xYxO3-δ, x=0, 0.05, 0.1) was prepared by Citrate-EDTA complexing method. The microstructures were identified using X-ray diffraction (XRD), field emission scanning electron microscope (FE-SEM) and transmission electron microscope (TEM). Electrical conductivity was measured by two-point probe and chemical stability was examined under CO2 atmosphere. Preliminary results from XRD showed no detectable impurity phases when powders were calcined at 1000℃. The electrical conductivity increased as concentration of doped Y increased. However, At lower temperature (<700°C), the protonic conductivity dominated the total conductivity. At high temperature (>700°C), the electronic conductivity dominated the total conductivity. The chemical stability under CO2 was significantly to lose as more Y was doped into strontium cerates.

    摘要....................................................i Abstract...............................................ii 致謝..................................................iii 目錄...................................................iv 圖目錄................................................vii 表目錄..................................................x 第一章 前 言............................................1  1-1 簡介..............................................1  1-2 研究目的及動機....................................2 第二章 文獻回顧.........................................5  2-1 固態氧化物燃料電池(Solid Oxide Fuel Cell, SOFC)...5   2-1-1 電解質材料....................................8   2-1-2 陰極材料.....................................10   2-1-3 陽極材料.....................................13  2-2 質子及氫傳輸膜(Proton/Hydrogen Transport Membrane, PTM/HTM)...............................................15   2-2-1 HTM材料......................................18   2-2-2 鈣鈦礦結構 (Perovskite)......................20 第三章 實驗方法與設備..................................27  3-1 實驗流程.........................................27  3-2 實驗設備.........................................27  3-3 粉體及試片製備...................................28   3-3-1 粉體製備(溶膠-凝膠, 檸檬酸-EDTA法)...........28   3-3-2 試片製作(壓錠燒結)...........................29  3-4材料特性分析......................................30   3-4-1 X光晶體結構分析.............................30   3-4-2 TEM分析.....................................30   3-4-3 粉體粒徑量測................................30   3-4-4 SEM表面型態觀察.............................31  3-5化學穩定性分析....................................31  3-6 電導率量測.......................................31 第四章 實驗結果與討論..................................42  4-1 XRD分析..........................................42  4-2 粉體形貌及大小分析...............................43   4-2-1 TEM分析......................................43   4-2-2 粒徑分析及Crystal Size分析...................43  4-3 SEM表面型態分析..................................44  4-4 化學穩定性分析...................................45  4-5 電導率分析.......................................47 第五章 結論............................................62 參考文獻...............................................64

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