电致发光
材料科学
圆极化
聚合物
发光
手性(物理)
薄膜
活动层
对映体
光电子学
有机发光二极管
发光二极管
二极管
分子
圆二色性
图层(电子)
纳米技术
光学
结晶学
化学
立体化学
有机化学
物理
复合材料
微带线
薄膜晶体管
量子力学
手征对称破缺
Nambu–Jona Lasinio模型
夸克
作者
Li Wan,Jessica Wade,Francesco Salerno,Oriol Arteaga,Beth A. Laidlaw,Xuhua Wang,Thomas J. Penfold,Matthew J. Fuchter,Alasdair J. Campbell
出处
期刊:ACS Nano
[American Chemical Society]
日期:2019-06-17
卷期号:13 (7): 8099-8105
被引量:220
标识
DOI:10.1021/acsnano.9b02940
摘要
The emission of circularly polarized light is central to many applications, including data storage, optical quantum computation, biosensing, environmental monitoring, and display technologies. An emerging method to induce (chiral) circularly polarized (CP) electroluminescence from the active layer of polymer light-emitting diodes (polymer OLEDs; PLEDs) involves blending achiral polymers with chiral small-molecule additives, where the handedness/sign of the CP light is controlled by the absolute stereochemistry of the small molecule. Through the in-depth study of such a system we report an interesting chiroptical property: the ability to tune the sign of CP light as a function of active layer thickness for a fixed enantiomer of the chiral additive. We demonstrate that it is possible to achieve both efficient (4.0 cd/A) and bright (8000 cd/m 2 ) CP-PLEDs, with high dissymmetry of emission of both left-handed (LH) and right-handed (RH) light, depending on thickness (thin films, 110 nm: g EL = 0.51, thick films, 160 nm: g EL = −1.05, with the terms “thick” and “thin” representing the upper and lower limits of the thickness regime studied), for the same additive enantiomer. We propose that this arises due to an interplay between localized CP emission originating from molecular chirality and CP light amplification or inversion through a chiral medium. We link morphological, spectroscopic, and electronic characterization in thin films and devices with theoretical studies in an effort to determine the factors that underpin these observations. Through the control of active layer thickness and device architecture, this study provides insights into the mechanisms that result in CP luminescence and high performance from CP-PLEDs, as well as demonstrating new opportunities in CP photonic device design.
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