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新型芴基衍生物的双光子吸收和时间分辨受激发射损耗光谱学研究。

Two-photon absorption and time-resolved stimulated emission depletion spectroscopy of a new fluorenyl derivative.

机构信息

Department of Chemistry, University of Central Florida, Orlando, FL 32816-2366, USA.

出版信息

Chemphyschem. 2012 Oct 22;13(15):3481-91. doi: 10.1002/cphc.201200405. Epub 2012 Aug 7.

Abstract

The synthesis, comprehensive linear photophysical characterization, two-photon absorption (2PA), steady-state and time-resolved stimulated emission depletion properties of a new fluorene derivative, (E)-1-(2-(di-p-tolylamino)-9,9-diethyl-9H-fluoren-7-yl)-3-(thiophen-2-yl)prop-2-en-1-one (1), are reported. The primary linear spectral properties, including excitation anisotropy, fluorescence lifetimes, and photostability, were investigated in a number of aprotic solvents at room temperature. The degenerate 2PA spectra of 1 were obtained with open-aperture Z-scan and two-photon induced fluorescence methods, using a 1 kHz femtosecond laser system, and maximum 2PA cross-sections of ∼400-600 GM were obtained. The nature of the electronic absorption processes in 1 was investigated by DFT-based quantum chemical methods implemented in the Gaussian 09 program. The one- and two-photon stimulated emission spectra of 1 were measured over a broad spectral range using a femtosecond pump-probe-based fluorescence quenching technique, while a new methodology for time-resolved fluorescence emission spectroscopy is proposed. An effective application of 1 in fluorescence bioimaging was demonstrated by means of one- and two-photon fluorescence microscopy images of HCT 116 cells containing dye encapsulated micelles.

摘要

报告了一种新型芴衍生物(E)-1-(2-(二对甲苯氨基)-9,9-二乙基-9H-芴-7-基)-3-(噻吩-2-基)-2-丙烯-1-酮(1)的合成、综合线性光物理特性、双光子吸收(2PA)、稳态和时间分辨受激发射损耗特性。在室温下,在多种非质子溶剂中研究了主要的线性光谱特性,包括激发各向异性、荧光寿命和光稳定性。使用 1 kHz 飞秒激光系统,通过开孔径 Z 扫描和双光子诱导荧光方法获得了 1 的简并 2PA 光谱,获得了约 400-600 GM 的最大 2PA 截面。通过在 Gaussian 09 程序中实施基于 DFT 的量子化学方法,研究了 1 中电子吸收过程的性质。使用飞秒泵浦-探针荧光猝灭技术在较宽的光谱范围内测量了 1 的单光子和双光子受激发射光谱,同时提出了一种新的时间分辨荧光发射光谱学方法。通过含有染料包封胶束的 HCT 116 细胞的单光子和双光子荧光显微镜图像,证明了 1 在荧光生物成像中的有效应用。

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