奥斯特瓦尔德成熟
量子点
材料科学
光致发光
钙钛矿(结构)
纳米颗粒
发光
纳米技术
热稳定性
激子
荧光
化学工程
齿合度
光化学
量子产额
辐照
光电子学
纳米结构
作者
Junyang Yin,Jie Zhang,Wen Pan,Zhenzi Wu,Feng Wu,Jiangnan Dai,Jiajun Luo,Changqing Chen
标识
DOI:10.1002/adfm.202514590
摘要
Abstract Ongoing research on perovskite quantum dots (PQDs) spanning diverse areas such as crystallography and biology represents a rapidly expanding frontier in nanotechnology, yet is still limited by the poor water stability and inadequate biocompatibility. Herein, this study reports an ultra‐simplified, eco‐friendly, cost‐effective, and industrial‐grade fully aqua‐mediated ripening (FAMR) technique for aqueous‐PQDs (APQDs) with tunable spectra, achieved by directly stirring the raw precursors with zwitterionic ligands in water at a set pH via Ostwald ripening crystallization.These APQDs exhibit high photoluminescence quantum yields (PLQYs) of up to 82.8% (blue), 98.2% (green), and 92.4% (red), respectively. Owing to the highly efficient bidentate binding of zwitterionic ligands onto APQDs surfaces, as confirmed by theoretical studies, the APQDs demonstrate excellent water storage stability for over 1 month and can retain an impressive 83% of the initial PL intensity after 3 months when transferred to EtOH. With elevated exciton binding energy, extended carrier lifetimes, and lower defect density, APQDs also outperform conventional oil‐phase PQDs in terms of thermal and UV irradiation stability. Based on this, water‐soluble fluorescent nanoparticles (NPs) are synthesized through self‐assembly of APQDs and DSPE‐PEG 2000 using EtOH and water as biphasic solvents. Finally, the APQDs@NPs, possessing desired luminescence and biocompatibility, exhibited excellent bioimaging performance in U251 cells.
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