Ultraviolet Emission from Cerium‐Based Organic‐Inorganic Hybrid Halides and Their Abnormal Anti‐Thermal Quenching Behavior

卤化物 光致发光 材料科学 荧光粉 紫外线 发光 金属卤化物 掺杂剂 量子效率 猝灭(荧光) 光化学 发光二极管 光电子学 镧系元素 无机化学 兴奋剂 荧光 离子 光学 有机化学 化学 冶金 物理
作者
Qiujie Wang,Tianxin Bai,Sujun Ji,Hongyuan Zhao,Xuan Meng,Ruiling Zhang,Junke Jiang,Feng Liu
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:33 (34) 被引量:14
标识
DOI:10.1002/adfm.202303399
摘要

Abstract Rare earth elements are widely employed and investigated as dopants in luminescent materials because of their ability to modulate hosts’ specific physical and chemical properties. However, stable phosphors crystallized with pure rare earth elements are few and hence their potential for wider utilization is largely limited. Herein, two examples of cerium (Ce)‐based organic–inorganic hybrid halides, (DFPD) 4 CeX 7 (DFPD + = 4,4‐difluoropiperidinium; X − = Cl − and Br − ) and (DFPD)CeCl 4 ·2MeOH are demonstrated. The Cl compositions of both examples are capable of emitting the fascinating ultraviolet (UV) light (350–375 nm), which represents the shortest emission wavelength ever reported in existing metal halide perovskites. Moreover, the resulting crystals are of high quality, which have intrinsic photoluminescence quantum yields of 95%–100%. Besides, in contrast to their all‐inorganic counterparts like Ce 3 CeBr 6 , the proposed two forms of Ce 3+ ‐based halides show abnormal anti‐thermal quenching behavior (≈128% of emission intensity at 420 K relative to 80 K), being particularly applicable for practical use in a heated environment. A phosphor‐converted light‐emitting diode fabricated with (DFPD) 4 CeCl 7 demonstrates stable UV emission (840 min) and has a high external quantum efficiency of 1%. This study opens up the way to a possible design of robust UV‐emitting structures based on rare earth hybrid metal halides.
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