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Efficient deep-blue non-doped organic light-emitting diode with improved roll-off of efficiency based on hybrid local and charge-transfer excited state

机译:高效的深蓝色非掺杂有机发光二极管,基于混合局部和电荷转移激发状态改善效率的滚动

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High-efficiency deep-blue light-emitting materials are of significance in the fields of commercial full-color displays and solid-state lightings. A hybrid local and charge-transfer (HLCT) excited state not only favors deep-blue emission avoiding a large redshift from a strong charge-transfer (CT) state, but also simultaneously harvests both high photoluminescence efficiency and high exciton-utilizing efficiency. Herein, we report a new V-shaped acceptor–donor–acceptor (A–D–A) type molecule TPA–2PPI with an HLCT emissive state, which is modified from D–A type TPA–PPI. The non-doped device based on the TPA–2PPI emitter still exhibits deep-blue emission peaking at 452 nm with a full width at half maximum (FWHM) of only 50 nm and Commission International de L'Eclairage (CIE) coordinates of (0.151, 0.108). Compared with TPA–PPI, the electroluminescence (EL) not only maintains high efficiency with a maximum external quantum efficiency (EQE) of 4.91%, but also the EL device displays a significantly slower roll-off of efficiency at high luminances with an EQE of 4.89% (or 4.56%) at 100 cd m ~(?2) (or 1000 cd m ~(?2) ), which is confidently beneficial for the operative stability of OLED devices.
机译:高效的深蓝色发光材料在商业全彩色显示器和固态灯的领域具有重要意义。杂交局部和电荷转移(HLCT)激发状态不仅有利于深蓝色排放避免了来自强电荷转移(CT)状态的大型红移,而且同时收获高光致发光效率和高兴奋性利用效率。在此,我们报告了一种新的V形受体 - 供体 - 受体(A-D-A)型分子TPA-2PPI,其具有HLCT发光状态,其从D-A型TPA-PPI修饰。基于TPA-2PPI发射器的非掺杂器件仍然在452nm处表现出深蓝色排放峰值,全宽在半最大(FWHM),仅为50纳米和委托International de L'EclaReage(CIE)坐标(0.151 ,0.108)。与TPA-PPI相比,电致发光(EL)不仅能够高效,最大外部量子效率(EQE)为4.91%,而且EL器件也在高亮度下显示出明显较慢的效率较慢在100cd m〜(α2)(或1000cd m〜(Δ2))下4.89%(或4.56%),这对OLED器件的可操作稳定性是自信的。

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