Logo image
Efficient and Bright All-Vacuum-Deposited Perovskite Light Emitting Diode via Guanidinium Doping and an Ultrathin Lithium Bromide Interfacial Layer
期刊文章   開放取用(OA)

Efficient and Bright All-Vacuum-Deposited Perovskite Light Emitting Diode via Guanidinium Doping and an Ultrathin Lithium Bromide Interfacial Layer

Yu-Jer Wu, Cheng-Yueh Chen, Yung-Tang Chuang, Hao-Cheng Lin, Pei-En Jan, Hung-Ming Chen, Ping-Hsun Tsai, Chun-Hao Li, Bo-Han Chen, Kai Chen, …
ACS energy letters, 卷.11(2), 頁碼.1983-1992
13/02/2026
Web of Science ID: WOS:001669590800001

摘要

Chemistry Chemistry, Physical Energy & Fuels Materials Science, Multidisciplinary Nanoscience & Nanotechnology Science & Technology Science & Technology - Other Topics Electrochemistry Materials Science Physical Sciences Technology
Perovskite light emitting diodes (PeLEDs) are highly promising for next-generation displays owing to their exceptional emissive properties. However, their complex fabrication, often relying on interleaved solution processing and vacuum deposition, hinders scalable mass production. Here, we present a strategy for high-performance, all-vacuum-deposited PeLEDs. By incorporating vacuum-sublimed nitrogen-containing additives, guanidinium bromide, we effectively suppress intrinsic bulk defects in perovskite films and mitigate nonradiative recombination. Furthermore, an ultrathin, vacuum-deposited alkali metal halide top layer is introduced to heal the defective interface by compensating for the loss of bromide during thermal evaporation and improving crystallinity. Integrating these advanced perovskite films with vacuum-sublimed organic transporting layers resulted in PeLEDs demonstrating a maximum luminance exceeding 164,000 cd/m2 and external quantum efficiencies (EQEs) of 14.83%. Our EQE approaches the current vacuum-device record, while the luminance represents a more than 5-fold improvement over most of the previously reported all-vacuum-deposited devices, highlighting a significant leap toward industrially viable PeLED displays.

檔案與連結 (1)

url
https://doi.org/10.1021/acsenergylett.5c03740檢視
已出版(紀錄版本) 開放

相關連結

詳細資料

Logo image