Solid state ASE from an oligomer (HOTF) in polymethyl methacrylate

被引:0
|
作者
K. H. Ibnaouf
Kamal K. Taha
Hajo Idriss
R. Alhathlool
机构
[1] Al Imam Mohammad Ibn Saud Islamic University (IMSIU),Physics Department, College of Science
[2] Alneelain University,Faculty of Science and Technology, School of Physics
[3] Al Imam Mohammad Ibn Saud Islamic University (IMSIU),Chemistry Department, College of Science
[4] University of Bahri,College of Applied and Industrial Science
[5] Al Imam Mohammad Ibn Saud Islamic University (IMSIU),Committee on Radiation and Environmental Pollution Protection, College of Science
[6] Ministry of Higher Education and Scientific Research,Sudan Atomic Energy Commission
来源
Optical Review | 2019年 / 26卷
关键词
Conjugated oligomer HOTF; Solid state; Spectral and ASE spectra;
D O I
暂无
中图分类号
学科分类号
摘要
Solid state laser material based on oligomer 9,9,9′,9′,9″,9″-hexakis(octyl)-2,7′,2′,7″-trifluorene (HOTF) doped poly methyl methacrylate (PMMA) was fabricated. The absorption spectrum showed only one band at 355 nm with different concentration ratios (7–12 mM); thus the broad absorption band could be attributed to the α-phase formation. In addition, there was no new band detected at the end of the spectrum as the concentration increased. This indicates the absence of the β-phase formation for all concentrations used. On the other hand, HOTF exhibited two distinct emission bands at 420 and 470 nm for 7 mM concentration. When the concentration was increased to 9 mM, the intensity of the band 470 nm increased. Further increase the concentration to 12 mM, the intensity of the band at 420 nm totally vanished and there was only one band at 470 nm. Therefore, the band at 470 could be attributed to excimer state. However, the results revealed that there is a strong correlation between quantum yield of fluorescence and fluorescence life-time, absorption cross section, and emission cross section. Under pulsed laser excitation. The ASE spectrum of HOTF has been obtained using a transverse cavity configuration where the conjugated HOTF was pumped by the third-harmonic of Nd:YAG nanosecond pulsed laser (λex = 355 nm). We demonstrate that HOTF in the solid state could produce an ASE peak at 420 nm. The obtained results were compared with the HOTF and a conducting polymer poly (9,9-dioctylfluorene) (PFO)in the liquid state.
引用
收藏
页码:103 / 110
页数:7
相关论文
共 50 条
  • [21] Solid surface composite materials manufactured from syrup of polymethyl methacrylate, alumina trihydrate and natural mineral fillers
    Arribasplata Seguin, Adan
    Lucas Lizano, Kelly
    Rueda Sanchez, Juan
    Acosta Sullcahuaman, Julio
    MATERIA-RIO DE JANEIRO, 2020, 25 (03):
  • [22] DETERMINATION OF DYNAMIC COMPLIANCE FROM CREEP DATA FOR POLYMETHYL METHACRYLATE
    MCCAMMOND, D
    PLASTICS & POLYMERS, 1973, 41 (154): : 207 - 210
  • [23] Silver ion release from polymethyl methacrylate silver nanocomposites
    Damm, C
    POLYMERS & POLYMER COMPOSITES, 2005, 13 (07): : 649 - 656
  • [24] CRITICAL INDEXES FOR MOLECULAR BENZOPHENOL CLUSTERS IN ETHANOL AND POLYMETHYL METHACRYLATE SOLID-SOLUTIONS
    BAGNICH, SA
    DOROKHIN, AV
    PERSHUKEVICH, PP
    FIZIKA TVERDOGO TELA, 1992, 34 (09): : 2867 - 2873
  • [25] SOLID STATE POLYMERIZATION OF ZINC METHACRYLATE
    PARRISH, CF
    KOCHANNY, GL
    MAKROMOLEKULARE CHEMIE-MACROMOLECULAR CHEMISTRY AND PHYSICS, 1968, 115 (JUN): : 119 - &
  • [26] Photoinduced enhancement of luminescence from (dibenzoylmethanato)boron difluoride in polymethyl methacrylate
    A. G. Mirochnik
    E. V. Fedorenko
    D. Kh. Gizzatulina
    V. E. Karasev
    Russian Journal of Physical Chemistry A, 2007, 81 : 1880 - 1883
  • [27] Thermal Destruction of Nonwoven Filter Materials from Polystyrene and Polymethyl Methacrylate
    Kapustin, I. A.
    Filatov, I. Yu
    Filatov, Yu N.
    FIBRE CHEMISTRY, 2013, 44 (06) : 377 - 380
  • [28] Anomalous photoluminescence from C60 polymethyl methacrylate films
    Ma, GB
    Yang, YH
    Chen, GH
    MATERIALS LETTERS, 1998, 34 (3-6) : 377 - 382
  • [29] Photoinduced enhancement of luminescence from (Dibenzoylmethanato) boron difluoride in polymethyl methacrylate
    Mirochnik, A. G.
    Fedorenko, E. V.
    Gizzatulina, D. Kh.
    Karasev, V. E.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2007, 81 (11) : 1880 - 1883
  • [30] Thermal Destruction of Nonwoven Filter Materials from Polystyrene and Polymethyl Methacrylate
    I. A. Kapustin
    I. Yu. Filatov
    Yu. N. Filatov
    Fibre Chemistry, 2013, 44 : 377 - 380