博碩士論文 111323002 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:169 、訪客IP:3.15.17.25
姓名 蘇峻威(Jun-Wei Su)  查詢紙本館藏   畢業系所 機械工程學系
論文名稱 利用TPBi增益綠光鈣鈦礦電致發光元件效率之分析
(Analysis of Efficiency Enhancement Electroluminescent Devices using TPBi in Green Perovskite)
相關論文
★ 以CaTiO3應用於鈣鈦礦太陽能電池電子傳輸層之研究★ 奈微米結構於鈣鈦礦太陽能電池光捕捉應用之研究
★ 氟摻雜氧化錫奈米週期結構電極應用於鈣/鈦複合物作為鈣鈦礦太陽能電池介孔層之研究★ 具奈米結構之氟摻雜氧化錫玻璃基板應用於鈣鈦礦太陽能電池之研究
★ 利用光發射光譜儀監控高功率脈衝磁控濺鍍光學薄膜之研究★ 利用溶劑萃取法結合綠色溶劑製備鈣鈦礦太陽能電池
★ ITO奈米週期結構提升鈣鈦礦發光二極體光萃取率之模擬研究★ 水溶液法製備CsxPbyBrz鈣鈦礦系材料之研究
★ CsPb(BrxI1-x)3@SiO2量子點薄膜之合成及其性質探討★ 單源熱蒸鍍全無機鈣鈦礦薄膜與發光二極體之研究
★ APTES製備CsPbBr3@SiO2量子點擴散粒子暨擴散膜之研究★ 二氧化矽包覆鈣鈦礦量子點薄膜 暨擴散粒子之研究
★ 高壓輔助熱退火製程改善全無機鈣鈦礦太陽能電池之研究★ 雙源順序熱蒸鍍全無機混合鹵化物鈣鈦礦藍色發光二極體之研究
★ 以高壓輔助熱退火製備高開關比之自供電全無機鈣鈦礦光電感測器★ 不同熱處理製程對於全無機混合鹵化物鈣鈦礦 藍色發光二極體之研究
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]   至系統瀏覽論文 (2027-8-1以後開放)
摘要(中) 全無機鈣鈦礦材料CsPbBr3是一種半導體材料,不僅具有優異的半導體特性,還具備良好的發光波長可調性、可控的能隙,以及可透過簡易且低成本的製程方式製造等優點。目前,它廣泛應用於太陽能電池、光電感測器與發光元件等領域。本實驗針對鈣鈦礦材料在發光元件中的應用進行研究與分析,並為了未來商業化的需求,製備出具有均勻且大面積的元件,因此採用了單源熱蒸鍍法來製備鈣鈦礦薄膜。
本研究延續了實驗室對於CsPbBr3鈣鈦礦材料綠色發光元件的研究。為了改善發光效率,我們透過探討CsPbBr3發光層的厚度並調整退火持溫時間,以提升元件的性能。結果顯示,在薄膜厚度為350nm的情況下,經過100分鐘的退火持溫,可獲得波長529nm、亮度達13320 cd/m2的高亮度發光元件。此外,為了改善元件電流擴散不佳的問題,研究中引入了TPBi電子阻擋層,並發現這樣的設計能獲得波長530nm、亮度12920 cd/m2的發光元件,且電流效率提升至1.92 cd/A,相較於未導入TPBi的元件之電流效率1.3 cd/A有明顯改善。進一步的研究顯示,將TPBi導入的發光元件的電極材料從碳更換為銀後,成功製備出波長為529 nm、亮度達11067 cd/m²的高均勻性發光元件。此外,在不改變製程的前提下,僅需更換電極材料,即可同時製備出CsPbBr₃鈣鈦礦的正式與反式結構發光元件。
摘要(英) CsPbBr3, a fully inorganic perovskite material, is a semiconductor with excellent properties. It has a tunable emission wavelength, controllable bandgap, and can be produced using simple and low-cost fabrication methods. Currently, it is widely used in solar cells, optoelectronic sensors, and light-emitting devices. In this study, we focus on the application of perovskite materials in light-emitting devices, analyzing and researching their performance. To meet future commercialization needs, we prepared uniform and large-area devices by using a single-source thermal evaporation method to fabricate perovskite thin films.
This study continues our lab′s research on CsPbBr3 perovskite green light-emitting devices. To improve the luminous efficiency, we explored the thickness of the CsPbBr3 emission layer and adjusted the annealing time to enhance the device′s performance. The results showed that with a film thickness of 350 nm and 100 minutes of annealing, we could achieve a high-brightness light-emitting device with a wavelength of 529 nm and brightness of 13,320 cd/m². Additionally, to address the issue of poor current spreading, we introduced a TPBi electron-blocking layer. This design resulted in a light-emitting device with a wavelength of 530 nm, brightness of 12,920 cd/m², and an improved current efficiency of 1.92 cd/A, compared to 1.3 cd/A in devices without TPBi. Further research showed that by replacing the carbon electrodes with silver in TPBi-based devices, we successfully produced a highly uniform light-emitting device with a wavelength of 529 nm and brightness of 11,067 cd/m². Moreover, by simply changing the electrode material, we could fabricate both normal and inverted structures of CsPbBr3 perovskite light-emitting devices without altering the process.
關鍵字(中) ★ 鈣鈦礦
★ 1,3,5-三(1-苯基-1H-苯并咪唑-2-基)苯
關鍵字(英) ★ Perovskite
★ TPBI
論文目次 摘要 i
Abstract ii
致謝 iii
目錄 iv
圖目錄 vi
表目錄 xi
第一章 緒論 I
1-1 前言 1
1-2 鈣鈦礦材料介紹 2
1-3 鈣鈦礦薄膜之應用 3
1-4 鈣鈦礦發光二極體製備方法 9
1-4-1 溶液法 9
1-4-1-1 一步驟法 9
1-4-1-2 兩步驟法 10
1-4-2 蒸鍍法 15
1-4-2-1 雙源熱蒸鍍法 15
1-4-2-2 單源熱蒸鍍法 16
1-5 鈣鈦礦發光二極體之改善 20
1-5-1 電子傳輸層改善 20
1-5-2 電洞傳輸層改善 21
1-6 研究動機 29
第二章 實驗方法 30
2-1 實驗材料與儀器 30
2-1-1 實驗材料 30
2-1-2 實驗儀器 30
2-2 實驗步驟 32
2-2-1 ITO導電玻璃清洗 32
2-2-2 製備CsPbBr3薄膜 32
2-2-3 薄膜熱處理 33
2-2-4 碳電極刮塗 33
2-3 實驗儀器分析介紹 34
2-3-1 X射線繞射儀(X-ray Diffractometer,XRD) 34
2-3-2 紫外線/可見光分光光譜儀(Ultraviolet-visble spectroscopy,UV-visble) 34
2-3-3 掃描式電子顯微鏡(Scanning Electron Microscope,SEM) 34
2-3-4 電致發光元件I-V curve量測 35
第三章 結果與討論 36
3-1 CsPbBr3薄膜熱處理分析 36
3-2 元件結構 41
3-2-1 減少主動層厚度對元件之影響 41
3-2-2 元件電流擴散之改善 48
3-2-3改變電極製作出高均勻發光元件 55
第四章 結論 61
參考文獻 62
參考文獻 [1] Y Lu, K Qu,T Zhang,Q He,J Pan,"Metal Halide Perovskite Nanowires: Controllable Synthesis, Mechanism, and Application in Optoelectronic Devices", Nanomaterials vol.13, no.3: 419, p.9919554,2023.
[2] A Kojima, K Teshima, Y Shirai, T Miyasaka,"Organometal Halide Perovskites as Visible-Light Sensitizers for Photovoltaic Cell", Journal of the american chemical society, vol.131, pp.6050-6051,2009.
[3] J Burschka, N Pellet, SJ Moon, R Humphry-Baker, P Gao, MK Nazeeruddin, M Grätzel , "Sequential deposition as a route to high-performance perovskite-sensitized solar cells", Nature, vol.499, pp.316-319,2013.
[4] R Guo, Q Xiong, A Ulatowski, S Li, Z Ding, T Xiao, S Liang, JE Heger, T Guan, X Jiang, K Sun, L.K. Reb, M. A. Reus, A Chumakov, M Schwartzkopf, M Yuan, Yi Hou, S.V. Roth, L.M. Herz, P Gao, P.M.-Buschbaum, "Trace Water in Lead Iodide Affecting Perovskite Crystal Nucleation Limits the Performance of Perovskite Solar Cells", Advanced Materials, vol.36, p.2310237,2024.
[5] Z.K. Tan, RS Moghaddam, M.L. Lai, P Docampo, R Higler, F Deschler, M Price, A Sadhanala, L.M. Pazos, D Credgington, F Hanusch, T Bein, H.J. Snaith & R.H. Friend, "Bright light-emitting diodes based on organometal halide perovskite", Nature, vol.149,pp.687–692,2014.
[6] YH Kim, H Cho, JH Heo, TS Kim, NS Myoung, CL Lee, SH Im, TW Lee , "Multicolored Organic/Inorganic Hybrid Perovskit Light-Emitting Diodes", Advanced Materials, vol.27, pp.1248-1254,2014.
[7] J Dai, H Roshan, M.De Franco, L Goldoni, F.De Boni, J Xi, F Yuan, H Dong, Z Wu, F.Di Stasio, "Liberato Manna,Partial Ligand Stripping from CsPbBr3 Nanocrystals Improves Their Performance in Light-Emitting Diodes", ACS Applied Materials & Interfaces, vol.16, pp.11627-11636,2024.
[8] K.-C. Yeh & C.-H. Chan,"High brightness and low operating voltage CsPbBr3 perovskite LEDs by single-source vapor deposition", Scientific reports, vol.14, p.10858048,2024.
[9] Y Ling, Y Tian, X Wang, JC Wang, JM Knox, F Perez‐Orive, Y Du, L Tan, K Hanson, B Ma, HGao,"Enhanced Optical and Electrical Properties of Polymer-Assisted All-Inorganic Perovskites for Light-Emitting Diodes", Advanced Materials, vol.52, pp.8983-8989,2016.
[10] W Li, T Li, Y Tong, H Qi, Y Zhang, Y Guo, H Wang, H Wang, K Wang, H Wang,"Fabrication of Highly Luminescent Quasi Two-Dimensional CsPbBr3 Perovskite Films in High Humidity Air for Light-Emitting Diodes", ACS Applied Materials & Interfaces, vol.15, pp. 36602-36610,2023.
[11] L.-C. Chen & C.-H. Kao,"Improved extraction efficiency of CsPbBr3 perovskite light-emitting diodes due to anodic aluminum oxide nanopore structure", Nature, vol.12, p.9428172.2022.
[12] YF Ng, WJ Neo, NF Jamaludin, N Yantara, S Mhaisalkar, N Mathews,"Enhanced Coverage of All-Inorganic Perovskite CsPbBr3 through Sequential Deposition for Green Light-Emitting Diodes", Energy Technology, vol.10, pp.1859-1865,2017.
[13] W Yue, Y Liu, C Heyu, L Chunyang, L Weizhen, X Haiyang, Z Cen, W Zhongqiang, L Yichun,"White LED based on CsPbBr3 nanocrystal phosphors via a facile two-step solution synthesis route", ScienceDirect, vol.104, pp.10448-10452,2018.
[14] M Liu, M B Johnston, H J Snaith,"Efficient planar heterojunction perovskite solar cells by vapour deposition", Nature, vol.501, pp.395-398,2013.
[15] N Kim, M Shin, S Jun, B Choi, J Kim, J Park, H Kim, W Jung, JY Lee, YH Cho, B Shin ,"Highly Efficient Vacuum-Evaporated CsPbBr3 Perovskite Light-Emitting Diodes with an Electrical Conductivity Enhanced Polymer-Assisted Passivation Layer", ACS Applied Materials & Interfaces, vol.31. pp.37323-37330,2021.
[16] SR Bae, MJ Seol, SY Kim, "CsPbBr3 and Cs4PbBr6 perovskite light-emitting diodes using a thermally evaporated host–dopant system" Nanoscale, vol.15. pp.9533-9542,2023.
[17] PN Tran, HH Phan, TN Luu, QH Tran, TT Duong , "Optimizing the single-source flash thermal evaporation process of Zn-doped CsPbBr3 films for enhanced performance in perovskite LEDs", Applied Physics A, vol.130. p.130,2024.
[18] M. S. White; D. C. Olson; S. E. Shaheen; N. Kopidakis; D. S. Ginley, "Inverted bulk-heterojunction organic photovoltaic device using a solution-derived ZnO underlayer", Applied Physics Letters, vol.89, p.143517,2006.
[19] C.X Qian, Z.Y Deng, K Yang, J Feng, M.Z Wang ,Z Yang;,S.F Liu;,H.-J. Feng,"Interface engineering of CsPbBr3/TiO2 heterostructure with enhanced optoelectronic properties for all-inorganic perovskite solar cells", Applied Physics Letters, vol.112, p093901,2018.
[20] FB Chiu, YW Wu, SH Yang ,"Surface Modification of ZnO Nanocrystals with Conjugated Polyelectrolytes Carrying Different Counterions for Inverted Perovskite Light-Emitting Diodes", ACS Applied Materials & Interfaces, vol.21,pp.19109–19118,2023.
[21] V.R.F Schröder, N Fratzscher, F Mathies, E.R. Nandayapa, F Hermerschmidt, EL Unger, E.J. W. L.-Kratochvil, "Large area inkjet-printed metal halide perovskite LEDs enabled by gas flow assisted drying and crystallization", Nanoscale, vol.15, pp.5649-5654,2023.
[22] CH Hsieh, CH Huang, PL Chu, SY Chu, P Chen ,"The hole transport layer with ammonia-modified to improve luminescence efficiency of all-inorganic perovskite light-emitting diodes", Organic Electronics, vol.101, p. 106418,2022.
[23] YL Shi, MP Zhuo, XC Fang, XQ Zhou, XD Wang, WF Chen, LS Liao ,"Efficient All-Inorganic Perovskite Light-Emitting Diodes with Cesium Tungsten Bronze as a Hole-Transporting Layer", The Journal of Physical Chemistry Letters, vol.11, pp.7624-7629,2020.
[24] P Akhtar, HC Hung, HS Devi, YR Wu "Defect-assisted hole transport through transition metal oxide-based injection layers for passivated nanocrystalline CsPbBr3 emissive thin films: A combined experimental and modeling study", Journal of Applied Physics, vol.135, p. 054501,2024.
[25] Huang, C. Y., Chang, S. P., Ansay, A. G., Wang, Z. H., & Yang, C. C. "Ambient-Processed, Additive-Assisted CsPbBr3 Perovskite Light-Emitting Diodes with Colloidal NiOx Nanoparticles for Efficient Hole Transporting. Coatings", Coatings ,vol.10, p.336,2020.
[26] H Du, Y Yu, Q Zhou, C Liu, J Li, S Han, Z Pang,"An exciplex-type thermally activated delayed fluorescence material with wide up-conversion fluorescence excitation window", Optical Materials, vol.134, p.113106,2022.
[27] X Han, X Wang, J Feng, H Huang, Z Zhu, T Yu, Z Li, Z Zou,"Carrier Mobility Enhancement in (121)-Oriented CsPbBr3 Perovskite Films Induced by the Microstructure Tailoring of PbBr2 Precursor Films", ACS Applied Materials & Interfaces, vol.3, pp.373-384,2020.
指導教授 詹佳樺(Chia-Hua Chan) 審核日期 2024-8-15
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