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研究生:林國峰
論文名稱:氧化鋅量子點尺寸對能帶變化及電子-聲子交互作用之影響
論文名稱(外文):Size dependence of band gap variation and electron-phonon coupling in ZnO Quantum Dots
指導教授:謝文峰謝文峰引用關係
學位類別:碩士
校院名稱:國立交通大學
系所名稱:光電工程系所
學門:工程學門
學類:電資工程學類
論文種類:學術論文
論文出版年:2005
畢業學年度:93
語文別:英文
論文頁數:48
中文關鍵詞:量子點氧化鋅
外文關鍵詞:quantum dotZnO
相關次數:
  • 被引用被引用:0
  • 點閱點閱:310
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  • 下載下載:40
  • 收藏至我的研究室書目清單書目收藏:0
我們成功地利用溶膠-凝膠製造氧化鋅量子點,再利用改變溶液濃度、加熱速率以及反應時間等方法去控制氧化鋅量子點的尺寸大小。 室溫螢光及吸收光譜觀察到明顯的藍位移現象,並與effective mass model 的弱侷限效應計算的結果相符合。室溫螢光與吸收光譜譜峰之間距隨氧化鋅量子點的尺寸變小而變大的現象,也顯示氧化鋅量子點存在量子侷限效應。最後,我們由Raman光譜發現隨著氧化鋅量子點的尺寸變小而造成能量守恆的鬆弛及電子-聲子交互作用的能量變小的現象。
ZnO quantum dots were successfully synthesized by a simple sol-gel method. The average size of quantum dots can be tailored under several well-controlled methods which are solution concentration, heating rate and aging time. Size-dependent blue shifts of photoluminescence and absorption spectra reveal the quantum confinement effect. The band gap enlargement is in agreement with the theoretical calculation based on the weak confinement of effective mass model. Furthermore, we observed increase of the size-dependent Stokes shift of the photoluminescence peak relative to the absorption onset as the particle size decreases. Finally, we observed the results that energy conservation was relaxed and electron-phonon coupling energy was decreasing with decreasing quantum dots size by Raman spectra.
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