TY - JOUR
T1 - Multifunctional Glycinamide Hydrochloride Interface Bridging Enables Efficient Tin Perovskite Light-Emitting Diodes
AU - Tu, Hao
AU - Wang, Kun
AU - Liu, Yue
AU - Zhang, Xuewen
AU - Wang, Hongqiang
AU - Guo, Pengfei
AU - Tong, Yu
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Recently, tin-based perovskite light-emitting diodes (PeLEDs) have received extensive attention owing to their near-infrared (NIR) emission and environmental friendliness. However, tin perovskite films are prone to rapid Sn2+ oxidation and uncontrollable crystallization, which usually leads to undesirable device performance. Herein, we propose a multifunctional molecular bridging strategy based on glycinamide hydrochloride (GlyACl) for constructing efficient tin-based NIR PeLEDs. We demonstrate that the C═O and -NH2 groups in the GlyACl molecule form coordination bonds and hydrogen bonds with perovskite and PEDOT: PSS, respectively, thereby effectively suppressing the oxidation of Sn2+, reducing defect density, and regulating the crystallization of tin perovskite films. Moreover, GlyACl-mediated buried interface modification endows the perovskite layer with an undulant morphology, which is favorable for enhancing light output coupling efficiency. Benefiting from these effects, the performance of FA0.9Cs0.1SnI3 NIR PeLEDs is remarkably enhanced, with the maximum EQE rising from 6.32% to 10.80%, and the operational lifetime increasing to 9 times that of the control device. This research underscores the significance of buried interface engineering and establishes a viable route toward efficient tin PeLEDs.
AB - Recently, tin-based perovskite light-emitting diodes (PeLEDs) have received extensive attention owing to their near-infrared (NIR) emission and environmental friendliness. However, tin perovskite films are prone to rapid Sn2+ oxidation and uncontrollable crystallization, which usually leads to undesirable device performance. Herein, we propose a multifunctional molecular bridging strategy based on glycinamide hydrochloride (GlyACl) for constructing efficient tin-based NIR PeLEDs. We demonstrate that the C═O and -NH2 groups in the GlyACl molecule form coordination bonds and hydrogen bonds with perovskite and PEDOT: PSS, respectively, thereby effectively suppressing the oxidation of Sn2+, reducing defect density, and regulating the crystallization of tin perovskite films. Moreover, GlyACl-mediated buried interface modification endows the perovskite layer with an undulant morphology, which is favorable for enhancing light output coupling efficiency. Benefiting from these effects, the performance of FA0.9Cs0.1SnI3 NIR PeLEDs is remarkably enhanced, with the maximum EQE rising from 6.32% to 10.80%, and the operational lifetime increasing to 9 times that of the control device. This research underscores the significance of buried interface engineering and establishes a viable route toward efficient tin PeLEDs.
KW - glycinamide hydrochloride
KW - light output coupling efficiency
KW - multifunctional molecular bridge strategy
KW - near-infrared light-emitting diodes
KW - tin perovskite
UR - https://www.scopus.com/pages/publications/105047818157
U2 - 10.1002/lpor.71771
DO - 10.1002/lpor.71771
M3 - 文章
AN - SCOPUS:105047818157
SN - 1863-8880
JO - Laser and Photonics Reviews
JF - Laser and Photonics Reviews
ER -