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Control of exciton spin statistics through spin polarization in organic optoelectronic devices

机译:通过有机光电器件中的自旋极化控制激子自旋统计

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摘要

Spintronics based on organic semiconductor materials is attractive because of its rich fundamental physics and potential for device applications. Manipulating spins is obviously important for spintronics, and is usually achieved by using magnetic electrodes. Here we show a new approach where spin populations can be controlled primarily by energetics rather than kinetics. We find that exciton spin statistics can be substantially controlled by spin-polarizing carriers after injection using high magnetic fields and low temperatures, where the Zeeman energy is comparable with the thermal energy. By using this method, we demonstrate that singlet exciton formation can be suppressed by up to 53% in organic light-emitting diodes, and the dark conductance of organic photovoltaic devices can be increased by up to 45% due to enhanced formation of triplet charge-transfer states, leading to less recombination to the ground state.
机译:基于有机半导体材料的自旋电子学因其丰富的基础物理特性和在设备应用中的潜力而具有吸引力。操纵自旋对于自旋电子学显然很重要,通常通过使用磁性电极来实现。在这里,我们展示了一种新方法,其中自旋种群可以主要通过高能而不是动力学来控制。我们发现,在高磁场和低温下注入后,激子自旋统计可以通过自旋极化载流子来基本控制,其中塞曼能量与热能相当。通过使用这种方法,我们证明了在有机发光二极管中单重态激子的形成最多可被抑制53%,并且由于增强了三重态电荷的形成,有机光伏器件的暗电导率可最多增加45%。转移态,从而减少了与基态的重组。

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