镧系元素
光子上转换
材料科学
光漂白
涂层
光化学
纳米技术
激发态
激发
光电子学
可见光谱
化学工程
发色团
两亲性
三乙醇胺
抗坏血酸
葫芦素
激光器
介孔材料
作者
Xukai Chen,Longfei Song,Wang Chen,Yong Liu,Yuehua Chen,Yuyan Cai,Weidong Du,Xiangyu Peng,Zichen Li,Huan Zuo,B. L. Wang,Rui Pu,Zhengfei Zhuang,Tongsheng Chen,Wei Wu,Qiuqiang Zhan
出处
期刊:Small
[Wiley]
日期:2026-02-09
卷期号:22 (20): e12083-e12083
标识
DOI:10.1002/smll.202512083
摘要
ABSTRACT Achieving efficient lanthanide upconversion excited by low‐power incoherent light remains a daunting challenge due to the low extinction coefficients of lanthanide ions. Although dye sensitization is a promising route for enabling such excitation, dye‐sensitized UCNPs (dsUCNPs) typically suffer from hydrophobicity and photolability, thus hindering their practical applications. In order to overcome these limitations, we present a “one‐stone‐two‐birds” strategy by coating dsUCNPs with unsaturated fatty acid salts (UFAS). By leveraging the amphiphilic and antioxidant properties of UFAS, the coating imparts both excellent water dispersibility and photostability to dsUCNPs. We demonstrate that the photostability of UFAS‐coated dsUCNPs increases with the increasing degree of unsaturation (i.e., the content of carbon‐carbon double bond) in the UFAS molecules, with sodium linolenate (SLn) offering the most significant improvement. SLn‐coated dsUCNPs exhibit a photobleaching half‐life of 260 min, which is 87 times longer than those coated with conventional materials such as F‐127, DSPE‐PEG2000, and mesoporous silica. Importantly, SLn‐coated dsUCNPs are excitable under low‐power incoherent‐light excitation (100 mW/cm 2 ) and enable high‐contrast cell imaging using light‐emitting diodes (LED), making it possible to obviate the need for a high‐intensity laser as an excitation source and significantly minimizing phototoxicity. This work offers a simple and effective strategy for producing highly hydrophilic and photostable dsUCNPs of practical significance, paving the way for their practical use in a broad range of applications involving incoherent low‐power light excitation.
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