| Literature DB >> 31426537 |
Mingpeng Zhu1, Xueting Yuan1, Gang Ni2,3.
Abstract
Magnetic field effects (MFE) have been extensively studied in organic light emitting diodes because of their potential application in organic spintronics devices. However, only a few studies on MFE in organic light-emitting electrochemical cells (LEC) have been reported. In this paper, magnetic field effects on the electroluminescence of an LEC device with the structure of ITO/MEH-PPV:PEO:LiCF3SO3/Al were studied at various temperatures. The luminance-current-voltage curves of the device shows the typical bi-polar characteristics of LECs; positive magnetic electroluminescence (MEL) was observed with a value of about 2.5% (B = 42 mT, 250 K), showing a Lorentzian line shape. With a decrease in temperature, the MEL value and the threshold voltage increased accordingly, below the possible mechanism is discussed.Entities:
Keywords: light-emitting electrochemical cell; magnetic field effects; organics semiconductor
Year: 2019 PMID: 31426537 PMCID: PMC6723417 DOI: 10.3390/mi10080546
Source DB: PubMed Journal: Micromachines (Basel) ISSN: 2072-666X Impact factor: 2.891
Figure 1The chemical structures of these materials and the schematic view of the light-emitting electrochemical cells (LEC) device.
Figure 2Luminance–current–voltage curves of LEC devices at 250 K, and the fitting results according to the power law are shown in the lower right inset.
Figure 3(a) The magnetic electroluminescence (MEL) response of the device under the bias voltage of 4 V at 250 K, the red solid lines show the Lorentzian line shape. (b) The MEL values as a function of bias voltage in the device under the applied field of 42 mT at 250 K.
Figure 4(a) The EL-V curves of LEC sample at different temperatures (from 250 K to 100 K); (b) The I-V curves of LEC sample at different temperatures (from 250 K to 100 K).
Figure 5(a) The MEL curves of LEC sample at different temperatures (from 250 K to 150 K); (b) the MEL as a function of temperature in the LEC sample; (c) the temperature dependencies of the parameters B1/2 for the MEL response, extracted from (a).