• Frontiers of Optoelectronics
  • Vol. 9, Issue 2, 283 (2016)
Yangang BI1, Jinhai JI1, Yang CHEN1, Yushan LIU1, Xulin ZHANG1, Yunfei LI1, Ming XU1, Yuefeng LIU1, Xiaochi HAN1, Qiang GAO1、*, and Hongbo SUN1、2
Author Affiliations
  • 1State Key Laboratory on Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun 130012, China
  • 2College of Physics, Jilin University, Changchun 130023, China
  • show less
    DOI: 10.1007/s12200-016-0617-0 Cite this Article
    Yangang BI, Jinhai JI, Yang CHEN, Yushan LIU, Xulin ZHANG, Yunfei LI, Ming XU, Yuefeng LIU, Xiaochi HAN, Qiang GAO, Hongbo SUN. Dual-periodic-microstructure-induced color tunable white organic light-emitting devices[J]. Frontiers of Optoelectronics, 2016, 9(2): 283 Copy Citation Text show less
    References

    [1] D’Andrade B W, Forrest S R. White organic light-emitting devices for solid-state lighting. Advanced Materials, 2004, 16(18): 1585– 1595

    [2] Lee J, Slootsky M, Lee K, Zhang Y F, Forrest S R. An electrophosphorescent organic light emitting concentrator. Light: Science & Applications, 2014, 3: e181

    [3] Reineke S, Lindner F, Schwartz G, Seidler N, Walzer K, Lüssem B, Leo K. White organic light-emitting diodes with fluorescent tube efficiency. Nature, 2009, 459(7244): 234–238

    [4] Xiang C Y, Koo W, So F, Sasabe H, Kido J. A systematic study on efficiency enhancements in phosphorescent green, red and blue microcavity organic light emitting devices. Light: Science & Applications, 2013, 2: e74

    [5] Sun Y, Giebink N C, Kanno H, Ma B, Thompson M E, Forrest S R. Management of singlet and triplet excitons for efficient white organic light-emitting devices. Nature, 2006, 440(7086): 908–912

    [6] Yu J N, Lin H, Wang F F, Lin Y, Zhang J H, Zhang H, Wang Z X, Wei B. Sunlight-like, color-temperature tunable white organic lightemitting diode with high color rendering index for solid-state lighting application. Journal of Materials Chemistry, 2012, 22(41): 22097–22101

    [7] Zhao Y, Chen R, Gao Y, Leck K S, Yang X, Liu S, Abiyasa A P, Divayana Y, Mutlugun E, Tan S T, Sun H, Demir H V, Sun X W. AC-driven, color-and brightness-tunable organic light-emitting diodes constructed from an electron only device. Organic Electronics, 2013, 14(12): 3195–3200

    [8] HuangMH, LinWC, Fan C C,Wang Y S, Lin HW, Liao J L, Lin C H, Chi Y. Tunable chromaticity stability in solution-processed organic light emitting devices. Organic Electronics, 2015, 20: 36–42

    [9] Cheng G, Chan K T, ToWP, Che C M. Color tunable organic lightemitting devices with external quantum efficiency over 20% based on strongly luminescent gold(III) complexes having long-lived emissive excited states. Advanced Materials, 2014, 26(16): 2540– 2546

    [10] Hu F, Zhang G, Zhan C, Zhang W, Yan Y, Zhao Y, Fu H, Zhang D. Highly solid-state emissive pyridinium-substituted tetraphenylethylene salts: emission color-tuning with counter anions and application for optical waveguides. Small, 2015, 11(11): 1335–1344

    [11] Thomas K R J, Kapoor N, Bolisetty M N K P, Jou J H, Chen Y L, Jou Y C. Pyrene-fluorene hybrids containing acetylene linkage as color-tunable emitting materials for organic light-emitting diodes. Journal of Organic Chemistry, 2012, 77(8): 3921–3932

    [12] Keawin T, Sooksai C, Prachumrak N, Kaewpuang T, Muenmart D, Namuangruk S, Jungsuttiwong S, Sudyoadsuk T, Promarak V. Oligoarylenes end-capped with carbazol-N-yl-carbazole as color tunable light-emitting and hole-transporting materials for solutionprocessed OLEDs. RSC Advances, 2015, 5(21): 16422–16432

    [13] Bi Y G, Feng J, Liu Y S, Li Y F, Chen Y, Zhang X L, Han X C, Sun H B. Surface plasmon-polariton mediated red emission from organic light-emitting devices based on metallic electrodes integrated with dual-periodic corrugation. Scientific Reports, 2014, 4: 7108

    [14] Bi Y G, Feng J, Chen Y, Liu Y S, Zhang X L, Li Y F, Xu M, Liu Y F, Han X C, Sun H B. Dual-periodic-corrugation-induced broadband light absorption enhancement in organic solar cells. Organic Electronics, 2015, 27: 167–172

    [15] Park B, Yun S H, Cho C Y, Kim Y C, Shin J C, Jeon H G, Huh Y H, Hwang I, Baik K Y, Lee Y I. SupUhm H, Cho G S, Choi E H. Surface plasmon excitation in semitransparent inverted polymer photovoltaic devices and their applications as label-free optical sensors. Light: Science & Applications, 2014, 3: e222

    [16] Koller D M, Hohenau A, Ditlbacher H, Galler N, Reil F, Aussenegg F R, Leitner A, List E J W, Krenn J R. Organic plasmon-emitting diode. Nature Photonics, 2008, 2(11): 684–687

    [17] Barnes W L, Dereux A, Ebbesen T W. Surface plasmon subwavelength optics. Nature, 2003, 424(6950): 824–830

    [18] Wedge S, Hooper I R, Sage I, BarnesWL. Light emission through a corrugated metal film: the role of cross-coupled surface plasmon polaritons. Physical Review B: Condensed Matter and Materials Physics, 2004, 69(24): 245418

    [19] Jin Y, Feng J, Zhang X L, Bi Y G, Bai Y, Chen L, Lan T, Liu Y F, Chen Q D, Sun H B. Solving efficiency-stability tradeoff in topemitting organic light-emitting devices by employing periodically corrugated metallic cathode. Advanced Materials, 2012, 24(9): 1187–1191

    Yangang BI, Jinhai JI, Yang CHEN, Yushan LIU, Xulin ZHANG, Yunfei LI, Ming XU, Yuefeng LIU, Xiaochi HAN, Qiang GAO, Hongbo SUN. Dual-periodic-microstructure-induced color tunable white organic light-emitting devices[J]. Frontiers of Optoelectronics, 2016, 9(2): 283
    Download Citation