Multi-color fluorescence switching with electrofluorochromic polymers

被引:11
|
作者
Lim, Hanwhuy [1 ]
Seo, Seogjae [1 ]
Park, Chihyun [1 ]
Shin, Haijin [1 ]
Yang, Xu [1 ]
Kanazawa, Kenji [1 ]
Kim, Eunkyoung [1 ]
机构
[1] Yonsei Univ, Dept Chem & Biomol Engn, 50 Yonsei Ro, Seoul 120749, South Korea
来源
OPTICAL MATERIALS EXPRESS | 2016年 / 6卷 / 06期
基金
新加坡国家研究基金会;
关键词
POLYFLUORENES; MODULATION; STABILITY;
D O I
10.1364/OME.6.001808
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The multi-color switching of electrofluorochromism was examined from the thin electrofluorochromic (EF) films of polyfluorene (PFO) and poly(propylenedioxythiophene-phenylene) (P(ProDOT-Ph)). The PFO and P(ProDOT-Ph) films showed vivid blue and yellow fluorescence, respectively, at neutral state but their emission was quenched upon application of oxidation potential leading to ion radical states. The fluorescence from the polymer films was reversibly switched to vivid color when the films were returned to their neutral states. The EF color switching ratio (r(c1/c2)) between the fluorescent state (c1) and dark (c2) state for the yellow color EF device with P(ProDOT-Ph) film was about four times higher than that of the PFO. Because the two polymer films have different colors and working potentials, a multi-color switching device was fabricated by coating the P(ProDOT-Ph) and PFO films onto working and counter electrodes, respectively. The multi-color EF device showed fluorescence switching from blue (B) to white (W) to yellow (Y), and vice versa, depending on the applied potential. The rc1/c2 for yellow (c1) and blue (c2) switching (Y/B) was larger (9.71) than those for Y/W and W/B. Moreover, the EF switching for Y/B in the multi-EF device was also very effective and showed the largest EF efficiency (E-EF = 3.82 x 10(6)) among the EF color switching. (C) 2016 Optical Society of America
引用
收藏
页码:1808 / 1816
页数:9
相关论文
共 50 条
  • [21] MULTI-COLOR BALANCE FOR COLOR CONSTANCY
    Akazawa, Teruaki
    Kinoshita, Yuma
    Kiya, Hitoshi
    2021 IEEE INTERNATIONAL CONFERENCE ON IMAGE PROCESSING (ICIP), 2021, : 1369 - 1373
  • [22] A Technical Note on Quantum Dots for Multi-Color Fluorescence in situ Hybridization
    Mueller, S.
    Cremer, M.
    Neusser, M.
    Grasser, F.
    Cremer, T.
    CYTOGENETIC AND GENOME RESEARCH, 2009, 124 (3-4) : 351 - 359
  • [23] Multi-color fluorescence detection of ribosomal RNA in micro-channels
    Balberg, M
    Hristova, K
    Mau, M
    Frigon, D
    Zeringue, HC
    Brady, DJ
    Beebe, DJ
    Raskin, L
    MICRO- AND NANOTECHNOLOGY FOR BIOMEDICAL AND ENVIRONMENTAL APPLICATIONS, 2000, 1 : 35 - 40
  • [24] Spectral unmixing of multi-color tissue specific in vivo fluorescence in mice
    Zacharakis, Giannis
    Favicchio, Rosy
    Garofalakis, Anikitos
    Psycharakis, Stylianos
    Mamalaki, Clio
    Ripoll, Jorge
    MOLECULAR IMAGING, 2007, 6626
  • [25] Spectrally Resolved Fiber Photometry for In Vivo Multi-Color Fluorescence Measurements
    Zhou, Jingheng
    Yeh, Alan
    Meng, Chengbo
    Papaneri, Amy B.
    Peddada, Teja
    Kobzar, Nicholas P.
    Cui, Guohong
    CURRENT PROTOCOLS, 2022, 2 (11):
  • [26] Multi-Color, Single-Molecule Fluorescence Imaging of GPCR Signalosomes
    Huber, Thomas
    Fuerstenberg, Alexandre
    Tian, He
    Gaertner, Hubert F.
    Hartley, Oliver
    Sakmar, Thomas P.
    BIOPHYSICAL JOURNAL, 2014, 106 (02) : 238A - 238A
  • [27] Lanthanide coordination polymers for multi-color luminescence and sensing of Fe3+
    Weng, Han
    Yan, Bing
    INORGANIC CHEMISTRY COMMUNICATIONS, 2016, 63 : 11 - 15
  • [28] Multi-color Forcing in Graphs
    Chassidy Bozeman
    Pamela E. Harris
    Neel Jain
    Ben Young
    Teresa Yu
    Graphs and Combinatorics, 2020, 36 : 1855 - 1868
  • [29] Multi-Color Spaceplates in the Visible
    Pahlevaninezhad, Masoud
    Monticone, Francesco
    ACS NANO, 2024, 18 (42) : 28585 - 28595
  • [30] Color control of the multi-color printing device
    Wang X.-H.
    Xiu X.-J.
    Zhu W.-H.
    Tang H.-J.
    Journal of Zhejiang University: Science, 2006, 7 (07): : 1187 - 1192