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聚(儿茶酚胺)包覆的CsPbBr钙钛矿微激光器:在水中的激光发射及生物功能化

Poly(catecholamine) coated CsPbBr perovskite microlasers: lasing in water and biofunctionalization.

作者信息

Cho Sangyeon, Yun Seok Hyun

机构信息

Wellman Center for Photomedicine, Massachusetts General Hospital and Harvard Medical School, Cambridge, Massachusetts, 02139, USA.

Harvard-MIT Health Sciences and Technology, Massachusetts Institute of Technology, Cambridge, Massachusetts, 02139, USA.

出版信息

Adv Funct Mater. 2021 Jul 2;31(27). doi: 10.1002/adfm.202101902. Epub 2021 Apr 25.

Abstract

Lead halide perovskite (LHP) is a promising material for various optoelectronic applications. Surface coating on particles is a common strategy to improve their functionality and environmental stability, but LHP is not amenable to most coating chemistries because of its intrinsic weakness against polar solvents. Here, we describe a novel method of synthesizing LHP microlasers in a super-saturated polar solvent using sonochemistry and applying various functional coatings on individual microlasers . We synthesize cesium lead bromine perovskite (CsPbBr) microcrystals capped with organic poly-norepinephrine (pNE) layers. The catechol group of pNE coordinates to bromine-deficient lead atoms, forming a defect-passivating and diffusion-blocking shell. The pNE layer enhances the material lifetime of CsPbBr3 in water by 2,000-folds, enabling bright luminescence and lasing from single microcrystals in water. Furthermore, the pNE shell permits biofunctionalization with proteins, small molecules, and lipid bilayers. Luminescence from CsPbBr microcrystals is sustained in water over 1 hour and observed in live cells. The functionalization method may enable new applications of LHP laser particles in water-rich environments.

摘要

卤化铅钙钛矿(LHP)是一种在各种光电子应用中很有前景的材料。对颗粒进行表面包覆是提高其功能和环境稳定性的常用策略,但由于LHP对极性溶剂的固有弱点,它不适用于大多数包覆化学方法。在此,我们描述了一种利用声化学在超饱和极性溶剂中合成LHP微激光器并在单个微激光器上应用各种功能涂层的新方法。我们合成了包覆有有机聚去甲肾上腺素(pNE)层的铯铅溴钙钛矿(CsPbBr)微晶。pNE的儿茶酚基团与缺溴的铅原子配位,形成一个缺陷钝化和扩散阻挡壳层。pNE层使CsPbBr3在水中的材料寿命提高了2000倍,从而使单个微晶在水中能够发出明亮的光并产生激光。此外,pNE壳层允许用蛋白质、小分子和脂质双层进行生物功能化。CsPbBr微晶在水中的发光持续超过1小时,并且在活细胞中也能观察到。这种功能化方法可能使LHP激光颗粒在富水环境中有新的应用。

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