English
新闻公告
More
化学进展 2011, Vol. 23 Issue (9): 1871-1882 前一篇   后一篇

• 综述与评论 •

基于离子型铱配合物的发光电化学池

周丽霞, 刘淑娟, 赵强*, 凌启淡, 黄维*   

  1. 南京邮电大学信息材料与纳米技术研究院 有机电子与信息显示 国家重点实验室培育基地 南京 210046
  • 收稿日期:2010-10-01 修回日期:2011-01-01 出版日期:2011-09-24 发布日期:2011-09-02
  • 通讯作者: 赵强, 黄维 E-mail:iamqzhao@njupt.edu.cn; wei-huang@njupt.edu.cn
  • 基金资助:

    国家重大科学研究计划(973)项目(No. 2009CB930601)、国家自然科学基金(No. 50803028, 20804019)、江苏省高校自然科学基础研究项目(No. 10KJB430010)、江苏省基础研究计划(No. BK2009427)、南京邮电大学攀登计划(NY210029, NY208405)资助

Light-Emitting Electrochemical Cells Based on Ionic Iridium(Ⅲ) Complexes

Zhou Lixia, Liu Shujuan, Zhao Qiang*, Ling Qidan, Huang Wei*   

  1. Key Laboratory for Organic Electronics & Information Displays (KLOEID) and Institute of Advanced Materials (IAM), Nanjing University of Posts & Telecommunications (NUPT), Nanjing 210046, China
  • Received:2010-10-01 Revised:2011-01-01 Online:2011-09-24 Published:2011-09-02

基于离子型过渡金属配合物的发光电化学池在信息显示和固体照明方面极具应用前景,因此其相关材料的设计、开发和器件性能的提高等工作在近几年引起了人们广泛的研究兴趣。在各类离子型过渡金属配合物中,离子型铱配合物由于发光效率高,发光颜色容易调节等优点而受到广泛关注。本文综述了近几年来离子型铱配合物在发光电化学池中的应用进展,重点评述了不同发光颜色的发光电化学池的制备和器件的高性能化等方面的研究进展,并展望了基于离子型铱配合物的发光电化学池这一研究领域的发展前景。

In recent years, light-emitting electrochemical cells (LECs) based on ionic transition metal complexes (iTMCs) with phosphorescent emission have attracted considerable interest because of their great potentials in display and lighting applications. Among all the iTMCs, ionic iridium(Ⅲ) complexes are one of the best phosphorescent materials because of their advantageous emission properties, such as high luminescent efficiency and tunable emission colors. This review summarized the recent research progress of ionic iridium(Ⅲ) complexes applied in light-emitting electrochemical cells, mainly focusing on the development of LECs with different light-emitting colors and the improvement of device performances. In addition, the future directions in this field are also discussed.

Contents
1 Introduction
2 Mechanism of LECs
3 Iionic Ir(Ⅲ) complexes-based LECs with different light-emitting colors
3.1 Blue-green-emitting ionic Ir(Ⅲ) complexes-based LECs
3.2 Red-emitting ionic Ir(Ⅲ) complexes-based LECs
3.3 Yellow-emitting ionic Ir(Ⅲ) complexes-based LECs
3.4 White-emitting ionic Ir(Ⅲ) complexes-based LECs
4 Optimization of ionic Ir(Ⅲ) complexes-based LECs performances
4.1 Decreasing the turn-on time of ionic Ir(Ⅲ) complexes-based LECs
4.2 Improving the stability of ionic Ir(Ⅲ) complexes-based LECs
4.1 Increasing the efficiency of ionic Ir(Ⅲ) complexes-based LECs
5 Conclusion and outlook

 

 

中图分类号: 

()

[1] Pei Q B, Yu G, Zhang C, Yang Y, Heeger A J.Science, 1995, 269: 1086-1088
[2] Smith D L.J.Appl.Phys., 1997, 81: 2869-2880
[3] Manzanares J A, Reiss H, Heeger A J.J.Phys.Chem.B, 1998, 102: 4327-4336
[4] He G F, Yang C H, Wang R Q, L Y F.Displays, 2000, 21: 69-72
[5] Morgado J, Friend R H, Cacialli F, Chuah B S, Rost H, Moratti S C, Holmes A B.Synth.Met., 2001, 122: 111-113
[6] Stéphan O, Collomb V, Vial J C, Armand M.Synth.Met., 2000, 113: 257-262
[7] Lee J I, Hwang D H, Park H, Do L M, Chu H Y, Zyung T, Miller R D.Synth.Met., 2000, 111/112: 195-197
[8] Yang Y, Pei Q B.Appl.Phys.Lett., 1996, 68: 2708-2710
[9] Edman L, Pauchard M, Liu B, Bazan G, Moses D, Heeger A J.Appl.Phys.Lett., 2003, 82: 3961-3963
[10] Shin J H, Edman L.J.Am.Chem.Soc., 2006, 128: 15568-15569
[11] Sun Q J, Wang H Q, Yang C H, Li Y F.J.Mater.Chem., 2003, 13: 800-806
[12] Sun Q J, Wang H Q, Yang C H, Li Y F.Synth.Met., 2003, 137: 1087-1088
[13] 冯海丽(Feng H L), 李枫(Li F), 孙明亮(Sun M L), 陈守刚(Chen S G).中国科技论文在线(Sciencepaper online), (2010-12-17).http: //www.paper.edu.cn/index.php/default/releasepaper/content/201012-681/
[14] Lee J K, Yoo D S, Handy E S, Rubner M F.Appl.Phys.Lett., 1996, 69: 1686-1688
[15] Gao F G, Bard A J.Chem.Mater., 2002, 14: 3465-3470
[16] Wang Y M, Teng F, Hou Y B, Xu Z, Wang Y S, Fu W F.Appl.Phys.Lett., 2005, 87: art.no.233512
[17] Liu C Y, Bard A J.Appl.Phys.Lett., 2005, 87: art.no.061110
[18] Zhao Q, Liu S J, Shi M, Wang C M, Yu M X, Li L, Li F Y, Yi T, Huang C H.Inorg.Chem., 2006, 45: 6152-6160
[19] Zhao Q, Liu S J, Shi M, Li F Y, Jing H, Yi T, Huang C H.Organometallics, 2007, 26: 5922-5930
[20] Zhao Q, Liu S J, Li F Y, Yi T, Huang C H.Dalton Trans., 2008: 3836-3840
[21] Xu W J, Liu S J, Zhao X Y, Sun S, Cheng S, Ma T C, Sun H B, Zhao Q, Huang W.Chem.Eur.J., 2010, 16: 7125-7133
[22] Zhao Q, Li F Y, Liu S J, Yu M X, Liu Z Q, Yi T, Huang C H.Inorg.Chem., 2008, 47: 9256-9264
[23] Zhao Q, Cao T Y, Li F Y, Li X H, Jing H, Yi T, Huang C H.Organometallics, 2007, 26: 2077-2081
[24] Chen H L, Zhao Q, Wu Y B, Li F Y, Yang H, Yi T, Huang C H.Inorg.Chem., 2007, 46: 11075-11081
[25] Zhao Q, Li F Y, Huang C H.Chem.Soc.Rev., 2010, 39: 3007-3030
[26] Zhao Q, Yu M X, Shi L X, Liu S J, Shi M, Zhou Z G, Li F Y, Huang C H.Organometallics, 2010, 29: 1085-1091
[27] Yu M X, Zhao Q, Shi L X, Li F Y, Zhou Z G, Yang H, Yi T, Huang C H.Chem.Commun., 2008, 2115-2117
[28] Xiong L Q, Zhao Q, Chen H L, Wu Y B, Dong Z S, Zhou Z G, Li F Y.Inorg.Chem., 2010, 49: 6402-6408
[29] Liu S J, Zhao Q, Chen R F, Deng Y, Fan Q L, Li F Y, Wang L H, Huang C H, Huang W.Chem.Eur.J., 2006, 12: 4351-4361
[30] Liu S J, Zhao Q, Xia Y J, Deng Y, Lin J, Fan Q L, Wang L H, Huang W.J.Phys.Chem.C, 2007, 111: 1166-1175
[31] Zhao Q, Liu S J, Huang W.Macro.Rapid Commun., 2010, 31: 794-807
[32] Deng Y, Liu S J, Fan Q L, Fang C, Zhu R, Pu K Y, Yuwen L H, Wang L H, Huang W.Synth.Met., 2008, 157: 813-822
[33] Bolink H J, Coronado E, Costa R D, Lardiés N, Ortí E.Inorg.Chem., 2008, 47: 9149-9151
[34] Bolink H J, Coronado E, Costa R D, Ortí E, Sessolo M, Graber S, Doyle K, Neuburger M, Housecroft C E, Constable E C.Adv.Mater., 2008, 20: 3910-3913
[35] Slinker J D, Defranco J A, Jaquith M J, Silveira W R, Zhong Y W, Moran-Mirabal J M, Craighead H G, Abruňa H D, Marohn J A, Malliaras G G.2007, nature materials, 6: 894-899
[36] Nazeeruddin M K, Wegh R T, Zhou Z, Klein C, Wang Q, Angelis F D, Fantacci S, Grätzel M.Inorg.Chem., 2006, 45: 9245-9250
[37] Margapoti E, Shukla V, Valore A, Sharma A, Dragonetti C, Kitts C C, Roberto D, Murgia M, Ugo R, Muccini M.J.Phys.Chem.C, 2009, 113: 12517-12522
[38] Costa R D, Ortí E, Bolink H J, Garber S, Housecroft C E, Constable E C.J.Am.Chem.Soc., 2010, 132: 5978-5980
[39] Slinker J D, Gorodetsky A A, Lowry M S, Wang J J, Parker S, Rohl R, Bernhard S, Malliaras G G..J.Am.Chem.Soc., 2004, 126: 2763-2767
[40] Slinker J D, Koh C Y, Malliaras G G, Lowry M S, Bernhard S.Appl.Phys.Lett., 2005, 86: art.no.173506
[41] Lowry M S, Goldsmith J I, Slinker J D, Rohl R, Pascal R A, Malliaras G G, Bernhard S.Chem.Mater., 2005, 17: 5712-5719
[42] Handy E S, Pal A J, Rubner M F.J.Am.Chem.Soc., 1999, 121: 3525-3528
[43] Bolink H J, Cappelli L, Cheylan S, Coronado E, Costa R D, Lardiés N, Nazeeruddin M K, Ortí E.J.Mater.Chem., 2007, 17: 5032-5041
[44] Tamayo A B, Garon S, Sajoto T, Djurovich P I, Tsyba I M, Bau R, Thompson M E.Inorg.Chem., 2005, 44: 8723-8732
[45] Bolink H J, Cappelli L, Coronado E, Parham A, Stössel P.Chem.Mater., 2006, 18: 2778-2780
[46] He L, Duan L, Qiao J, Wang R J, Wei P, Wang L D, Qiu Y.Adv.Funct.Mater., 2008, 18: 2123-2131
[47] Mydlak M, Bizzarri C, Hartmann D, Sarfert W, Schmid G, Cola L D.Adv.Funct.Mater., 2010, 20: 1812-1820
[48] Yang C H, Beltran J, Lemaur V, Cornil J, Hartmann D, Sarfert W, Fröhlich R, Bizzarri C, Cola L D.Inorg.Chem., 2010, 49: 9891-9901
[49] 张静(Zhang J).东北师范大学硕士论文(Master's Theses of Northeast Normal University), 2010
[50] 朱东霞(Zhu D X), 张静(Zhang J), 崔秀君(Cui X J), 芦红飞(Lu H F).CN 101723986 A, 2010
[51] Costa R D, Céspedes-Guirao F J, Ortí E, Bolink H J, Gierschner J, Fernández-Lázaro F, Sastre-Santos A.Chem.Commun., 2009, 3886-3888
[52] Rodríguez-Redondo J L, Costa R D, Ortí E, Sastre-Santos A, Bolink H J, Fernández-Lázaro F.Dalton Trans., 2009, 9787-9793
[53] Zeng X S, Tavasli M, Perepichka I F, Batsanov A S, Bryce M R., Chiang C J, Rothe C, Monkman A P.Chem.Eur.J., 2008, 14: 933-943
[54] Rothe C, Chiang C J, Jankus V, Abdullah K, Zeng X S, Jitchati R, Batsanov A S, Bryce M R, Monkman A P.Adv.Funct.Mater., 2009, 19: 2038-2044
[55] Kim J I, Shin I S, Kim H, Lee J K.J.Am.Chem.Soc., 2005, 127: 1614-1615
[56] Dragonetti C, Falciola L, Mussini P, Righetto S, Roberto D, Ugo R, Valore A, Angelis F D, Fantacci S, Sgamellotti A, Ramon M, Muccini M.Inorg.Chem., 2007, 46: 8533-8547
[57] Costa R D, Ortí E, Bolink H J, Graber S, Schaffner S, Neuburger M, Housecroft C E, Constable E C.Adv.Funct.Mater., 2009, 19: 3456-3463
[58] Costa R D, Fernández G, Sánchez L, Martín N, Ortí E, Bolink H J.Chem.Eur.J., 2010, 16: 9855-9863
[59] Yang Y, Pei Q B.J.Appl.Phys., 1997, 81: 3294-3298
[60] Su H C, Chen H F, Fang F C, Liu C C, Wu C C, Wong K T, Liu Y H, Peng S M.J.Am.Chem.Soc., 2008, 130: 3413-3419
[61] He L, Qiao J, Duan L, Dong G F, Zhang D Q, Wang L D, Qiu Y.Adv.Funct.Mater., 2009, 19: 2950-2960
[62] 何磊(He L), 段 炼(Duan L), 乔 娟(Qiao J), 董桂芳(Dong G F), 王立铎(Wang L D), 邱 勇(Qiu Y).中国化学会第27届学术年会第12分会场摘要集(27th CCS Congress).厦门: 2010.41
[63] He L, Duan L, Qiao J, Dong G F, Wang L D, Qiu Y.Chem.Mater., 2010, 22: 3535-3542
[64] Slinker J D, Malliaras G G, Flores-Torres S, Abruňa H D, Chunwachirasiri W, Winokur M J.J.Appl.Phys., 2004, 95: 4381-4384
[65] Kalyuzhny G, Buda M, McNeill J, Barbara P, Bard A J.J.Am.Chem.Soc., 2003, 125: 6272-6283
[66] Rudmann H, Shimada S, Rubner M F.J.Am.Chem.Soc., 2002, 124: 4918-4921
[67] Rudmann H, Shimada S, Rubner M F, Oblas D W, Whitten J E.J.Appl.Phys., 2002, 92: 1576-1581
[68] Rudmann H, Rubner M F.J.Appl.Phys., 2001, 90: 4338-4345
[69] Liu C Y, Bard A J.Appl.Phys.Lett., 2003, 83: 5431-5433
[70] Lee K W, Slinker J D, Gorodetsky A A, Flores-Torres S, Abruña H D, Houstona P L, Malliaras G G.Phys.Chem.Chem.Phys., 2003, 5: 2706-2709
[71] Bernhard S, Barron J A, Houston P L, Abruña H D, Ruglovksy J L, Gao X C, Malliaras G G.J.Am.Chem.Soc., 2002, 124: 13624-13628
[72] Handy E S, Pal A J, Rubner M F.J.Am.Chem.Soc., 1999, 121: 3525-3528
[73] Lyons C H, Abbas E D, Lee J K, Rubner M F.J.Am.Chem.Soc., 1998, 120: 12100-12107
[74] Leprêtrea J C, Deronziera A, Han O S.Synth.Met., 2002, 131: 175-183
[75] Parker S T, Slinker J D, Lowry M S, Cox M P, Bernhard S, Malliaras G G.Chem.Mater., 2005, 17: 3187-3190
[76] Costa R D, Pertegás A, Ortí E, Bolink H J.Chem.Mater., 2010, 22: 1288-1290
[77] Zysman-Colman E, Slinker J D, Parker J B, Malliaras G G, Bernhard S.Chem.Mater., 2008, 20: 388-396
[78] Su H C, Chen H F, Wu C C, Wong K T.Chem.Asian J., 2008, 3: 1922-1928
[79] Kwon T H, Oh Y H, Shin I S, Hong J I.Adv.Funct.Mater., 2009, 19: 711-717
[80] Kalyuzhny G, Buda M, McNeill J, Barbara P, Bard A J.J.Am.Chem.Soc., 2003, 125: 6272-6283
[81] Soltzberg L J, Slinker J D, Flores-Torres S, Bernards D A, Malliaras G G.Abruña H D, Kim J S, Friend R H, Kaplan M D, Goldberg V.J.Am.Chem.Soc., 2006, 128: 7761-7764
[82] Bolink H J, Cappelli L, Coronado E, Grätzel M, Ortí E, Costa R D, Viruela P M, Nazeeruddin M K.J.Am.Chem.Soc., 2006, 128: 14786-14787
[83] Costa R D, Ortí E, Bolink H J, Graber S, Housecroft C E, Neuburger M, Schaffner S, Constable E C.Chem.Commun., 2009, 2029-2031
[84] Graber S, Doyle K, Neuburger M, Housecroft C E, Constable E C, Costa R D, Ortí E, Repetto D, Henk J.Bolink.J.Am.Chem.Soc., 2008, 130: 14944-14945
[85] Costa R D, Ortí E, Bolink H J, Graber S, Housecroft C E, Constable E C.Adv.Funct.Mater., 2010, 20: 1-10
[86] Su H C, Fang F C, Hwu T Y, Hsieh H H, Chen H F, Lee G H, Peng S M, Wong K T, Wu C C.Adv.Funct.Mater., 2007, 17: 1019-1027
[87] Su H C, Wu C C, Fang F C, Wong K T.Appl.Phys.Lett., 2006, 89: art.no.261118
[88] Su H C, Lin Y H, Chang C H, Lin H W, Wu C C, Fang F C, Chen H F, Wong K T.J.Mater.Chem., 2010, 20: 5521-5526
[89] Sandstrǒm A, Matyba P, Inganǎs O, Edman L.J.Am.Chem.Soc., 2010, 132: 6646-6647

[1] 廖子萱, 王宇辉, 郑建萍. 碳点基水相室温磷光复合材料研究进展[J]. 化学进展, 2023, 35(2): 263-373.
[2] 于兰, 薛沛然, 李欢欢, 陶冶, 陈润锋, 黄维. 圆偏振发光性质的热活化延迟荧光材料及电致发光器件[J]. 化学进展, 2022, 34(9): 1996-2011.
[3] 李姝慧, 李倩倩, 李振. 从单分子到分子聚集态科学[J]. 化学进展, 2022, 34(7): 1554-1575.
[4] 职怡缤, 于兰, 李欢欢, 陶冶, 陈润锋, 黄维. 芳基硅磷光主体材料在有机电致发光器件中的应用[J]. 化学进展, 2022, 34(5): 1109-1123.
[5] 王金凤, 李爱森, 李振. 室温磷光凝胶研究进展[J]. 化学进展, 2022, 34(3): 487-498.
[6] 龚筑轲, 许辉. 晶态咔唑基有机室温磷光材料[J]. 化学进展, 2022, 34(11): 2432-2461.
[7] 蒋云波, 李欢欢, 陶冶, 陈润锋, 黄维. 热活化延迟荧光聚合物及其电致发光器件[J]. 化学进展, 2019, 31(8): 1116-1128.
[8] 陈晓红, 王允中, 张永明, 袁望章. 非典型发光化合物的簇聚诱导发光[J]. 化学进展, 2019, 31(11): 1560-1575.
[9] 何良, 谭彩萍, 曹乾, 毛宗万. 磷光环金属化铱(Ⅲ)配合物在癌症治疗方面的应用[J]. 化学进展, 2018, 30(10): 1548-1556.
[10] 梁爱辉, 黄贵, 王志平, 陈水亮, 侯豪情. 含铱配合物聚合物磷光材料及其电致发光性能[J]. 化学进展, 2016, 28(4): 471-481.
[11] 姜鸿基*, 张庆维. 三苯基膦氧基团在合成高性能有机电致发光材料中的应用[J]. 化学进展, 2016, 28(10): 1515-1527.
[12] 钟渤凡, 王世荣, 肖殷, 李祥高. 有机电致发光器件中的双极性蓝光荧光材料[J]. 化学进展, 2015, 27(8): 986-1001.
[13] 苏斌, 赵静, 刘春波, 车广波, 王庆伟, 徐占林. 基于8-羟基喹啉及其衍生物的有机小分子电致发光材料[J]. 化学进展, 2013, 25(07): 1090-1101.
[14] 马治军, 雷霆, 裴坚*, 刘晨江*. 蓝色有机电致磷光主体材料[J]. 化学进展, 2013, 25(06): 961-974.
[15] 方云霞, 方晓明*, 张正国. 基于纳米ZnO的白光LED[J]. 化学进展, 2012, 24(08): 1477-1483.