量子点
比克西顿
荧光
光子
荧光寿命成像显微镜
红外线的
物理
光电子学
分子物理学
近红外光谱
双光子激发显微术
核磁共振
材料科学
化学
生物物理学
光学
生物
作者
Junlei Yang,Shiyi Peng,Yunlong Zhao,Tao Tang,Jian Guo,Ran Cui,Taolei Sun,Mingxi Zhang
出处
期刊:Nano Letters
[American Chemical Society]
日期:2024-05-22
卷期号:24 (22): 6706-6713
被引量:8
标识
DOI:10.1021/acs.nanolett.4c01406
摘要
Three-photon fluorescence microscopy (3PFM) is a promising brain research tool with submicrometer spatial resolution and high imaging depth. However, only limited materials have been developed for 3PFM owing to the rigorous requirement of the three-photon fluorescence (3PF) process. Herein, under the guidance of a band gap engineering strategy, CdTe/CdSe/ZnS quantum dots (QDs) emitting in the near-infrared window are designed for constructing 3PF probes. The formation of type II structure significantly increased the three-photon absorption cross section of QDs and caused the delocalization of electron-hole wave functions. The time-resolved transient absorption spectroscopy confirmed that the decay of biexcitons was significantly suppressed due to the appropriate band gap alignment, which further enhanced the 3PF efficiency of QDs. By utilizing QD-based 3PF probes, high-resolution 3PFM imaging of cerebral vasculature was realized excited by a 1600 nm femtosecond laser, indicating the possibility of deep brain imaging with these 3PF probes.
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