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Spin-pair state-induced exceptional magnetic field responses from a thermally activated delayed fluorescence-assisted fluorescent material doping system

机译:旋转对状态诱导的来自热活化的延迟荧光辅助荧光材料掺杂系统的卓越磁场应答

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摘要

The thermally activated delayed fluorescence (TADF) material 2,3,5,6-tetrakis(3,6-diphenylcarbazol-9-yl)-1,4-dicyanobenzene (4CzTPN-Ph) and the conventional fluorescent dopant 4-(dicyanomethylene)-2-tert-butyl-6-(1,1,7,7-tetramethyljulolidin-4-yl-vinyl)-4H-pyran (DCJTB) were used to co-dope the host material 4,4 '-bis(carbazol-9-yl)biphenyl (CBP) for the fabrication of TADF-assisted fluorescent organic light-emitting diodes (OLEDs). Some exceptional magnetic field effect (MFE) curves with abundant structures and four tunable components within a low magnetic field range (<= 50 mT) were obtained, in sharp contrast to the maximum of two components observed in typical OLEDs. These MFE components were easily tuned by the injection current, dopant concentration, working temperature, and dopant energy gap, leading to a wide variety of MFE curve line shapes. The experimental results are attributed to the spin-pair state inter-conversions occurring in the device, including intersystem crossing (ISC) of CBP polaron pairs, ISC of 4CzTPN-Ph polaron pairs, reverse ISC (RISC) of 4CzTPN-Ph excitons, RISC of DCJTB polaron pairs, DCJTB triplet fusion, and DCJTB triplet-charge annihilation. Moreover, the exciton energy transfer processes among the host material and the guest dopants had a pronounced impact on the formation of these four components. This work gives a deeper understanding of the microscopic mechanisms of TADF-based co-doped systems for the further development of organic magnetic field effects in the extensive field of OLEDs.
机译:热活化的延迟荧光(TADF)材料2,3,5,6-四(3,6-二苯基咔唑-9-基)-1,4-二氰基苯(4CzTPN-pH)和常规荧光掺杂剂4-(二甘香亚甲基) - 2-2-叔丁基-6-(1,1,7,7-四甲基丁酰胺-4-基-1-乙烯基)-4H-吡喃(DCJTB)用于共同掺杂宿主材料4,4'-BIS(咔唑-9-yl)Biphenyl(CBP)用于制备TADF辅助荧光有机发光二极管(OLED)。获得具有丰富结构的一些特殊磁场效应(MFE)曲线和低磁场范围(<= 50mt)内的四个可调谐组件,与在典型OLED中观察到的两个部件的最大值鲜明对比。这些MFE组件通过喷射电流,掺杂剂浓度,工作温度和掺杂剂能隙容易调整,导致各种MFE曲线形状。实验结果归因于在装置中发生的旋转对状态,包括CBP PolarOn对的ISC的ISC,4CzTPN-pH激发子(RISC),RISC的逆转ISC(RISC)的ISC的旋转对态DCJTB Polaron对,DCJTB三联融合和DCJTB三态电荷湮灭。此外,主体材料和旨器掺杂剂之间的激子能量转移过程对这四种组分的形成具有明显的影响。这项工作更深入地了解塔德夫的共掺杂系统的显微机制,以进一步发展在整个OLED领域中的有机磁场效应的进一步发展。

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    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

    Southwest Univ Sch Phys Sci &

    Technol MOE Key Lab Luminescence &

    Real Time Anal Chongqing 400715 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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