Effect of atomic layer deposition and alumina actions of optoelectronic behaviour of polyfluorene OLEDS

聚芴 有机发光二极管 电致发光 光电子学 原子层沉积 涂层 量子效率 二极管 光致发光 材料科学 聚合物 纳米颗粒 封装(网络) 化学 波长 平板 电流密度 聚对苯二甲酸乙二醇酯 活动层 纳米技术 兴奋剂 渗透 薄膜 热的
作者
Gopal Kaliyaperumal,Nagabhooshanam Nagarajan,Sunil Rathore,Ankur Kulshreshta,S Sheela,B. David,Ramya Maranan,Murali Mohan,S. Sathiyamurthy
出处
期刊:Pure and Applied Chemistry [International Union of Pure and Applied Chemistry]
卷期号:98 (6): 1021-1035
标识
DOI:10.1515/pac-2025-0545
摘要

Abstract With unique properties such as enhanced photoluminescence (PL) efficiency, improved thermal stability, and favourable optical properties, polyfluorenes (PFs) are well-suited for organic light-emitting diode (OLED) applications. However, the conventional PF layers are found to have drawbacks, including variation in charge transport, which minimizes the overall PL efficiency due to uneven coating and photo-oxidation. Current research aims to overcome the above difficulties and to synthesize PF reinforced with alumina (Al 2 O 3 ) nanoparticles (3 wt%) along with encapsulation coating via Atomic Layer Deposition (ALD) and investigates the influence of varying encapsulation coating thicknesses (0, 10, 30, and 50 nm) in the enhancement of optoelectronic performances and operational stability. The fabricated devices were characterized using electroluminescence (EL) spectra, external quantum efficiency (EQE), current–voltage (I–V) plots, and encapsulation effectiveness tests. The investigational results indicate that an encapsulation thickness of 30 nm yields the maximum EL intensity, with a peak wavelength of 470 nm and an external quantum efficiency (EQE) of 8.1 %. This configuration exhibited a low turn-on voltage of 3 V. The I–V plot demonstrated a maximum current density of 8.2 mA/cm 2 . The Hall mobility was increased to 1.0 × 10 −4 cm 2 /V.s with the observed carrier concentration of 2.6 × 10 16 cm −3 . The alumina encapsulation significantly improved the durability and stability, with a device lifetime of 312 hours, and reduced the oxygen permeation rate to 5 cm 3 /m 2 /day/atm. The findings highlight the crucial role of optimizing alumina encapsulation thickness in enhancing the functional performance of PF-based OLED devices.
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