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亮度均衡量子点

Brightness-equalized quantum dots.

作者信息

Lim Sung Jun, Zahid Mohammad U, Le Phuong, Ma Liang, Entenberg David, Harney Allison S, Condeelis John, Smith Andrew M

机构信息

Department of Bioengineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.

Micro and Nanotechnology Laboratory, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.

出版信息

Nat Commun. 2015 Oct 5;6:8210. doi: 10.1038/ncomms9210.

Abstract

As molecular labels for cells and tissues, fluorescent probes have shaped our understanding of biological structures and processes. However, their capacity for quantitative analysis is limited because photon emission rates from multicolour fluorophores are dissimilar, unstable and often unpredictable, which obscures correlations between measured fluorescence and molecular concentration. Here we introduce a new class of light-emitting quantum dots with tunable and equalized fluorescence brightness across a broad range of colours. The key feature is independent tunability of emission wavelength, extinction coefficient and quantum yield through distinct structural domains in the nanocrystal. Precise tuning eliminates a 100-fold red-to-green brightness mismatch of size-tuned quantum dots at the ensemble and single-particle levels, which substantially improves quantitative imaging accuracy in biological tissue. We anticipate that these materials engineering principles will vastly expand the optical engineering landscape of fluorescent probes, facilitate quantitative multicolour imaging in living tissue and improve colour tuning in light-emitting devices.

摘要

作为细胞和组织的分子标记物,荧光探针塑造了我们对生物结构和过程的理解。然而,它们的定量分析能力有限,因为多色荧光团的光子发射速率不同、不稳定且通常不可预测,这使得测量的荧光与分子浓度之间的相关性变得模糊。在此,我们引入了一类新型发光量子点,其在广泛的颜色范围内具有可调谐且均衡的荧光亮度。关键特性是通过纳米晶体中不同的结构域实现发射波长、消光系数和量子产率的独立可调谐性。精确调谐消除了尺寸调谐量子点在整体和单粒子水平上100倍的红到绿亮度失配,这大大提高了生物组织中定量成像的准确性。我们预计,这些材料工程原理将极大地扩展荧光探针的光学工程领域,促进活体组织中的定量多色成像,并改善发光器件中的颜色调谐。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0e25/4600722/e6c717c58d94/ncomms9210-f1.jpg

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