论文标题
一个无源,柔性和防水有机发光二极管
A substrateless, flexible, and water-resistant organic light-emitting diode
论文作者
论文摘要
尽管人们广泛关注,但可以无缝集成并用于柔性显示器,可穿戴设备,并且随着生物植物的启动仍然难以捉摸。已经证明了具有$ $ M级厚度和出色柔韧性的有机发光二极管(OLEDS),但由于缺乏合适的封装壁垒,在空气和潮湿环境中的稳定性不足。在这里,我们展示了一种高效且稳定的OLED,总厚度约为$ \ $ 12 $μ$ m,可以完全浸入水或细胞养分培养基中,而不会大量降解。该设备的活性层嵌入在通过低温化学蒸气过程中沉积的Parylene-C交替层和金属氧化物形成的保形屏障之间。这些障碍还赋予了OLED的稳定性,以重复弯曲和广泛的后处理,例如通过反应性气体等离子体,有机溶剂和光刻学。这种前所未有的鲁棒性为超薄OLED提供了广泛的新型可能性。
Despite widespread interest, ultrathin and highly flexible light-emitting devices that can be seamlessly integrated and used for flexible displays, wearables, and as bioimplants remain elusive. Organic light-emitting diodes (OLEDs) with $μ$m-scale thickness and exceptional flexibility have been demonstrated but show insufficient stability in air and moist environments due to a lack of suitable encapsulation barriers. Here, we demonstrate an efficient and stable OLED with a total thickness of $\approx$12 $μ$m that can be fully immersed in water or cell nutrient media for weeks without suffering substantial degradation. The active layers of the device are embedded between conformal barriers formed by alternating layers of parylene-C and metal oxides that are deposited through a low temperature chemical vapour process. These barriers also confer stability of the OLED to repeated bending and to extensive postprocessing, e.g. via reactive gas plasmas, organic solvents, and photolithography. This unprecedented robustness opens up a wide range of novel possibilities for ultrathin OLEDs.