Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Use of nanosecond excitation pulses in fluorescence lifetime measurement via phasor analysis

View through CrossRef
We investigated the possibility of using long excitation pulses in fluorescence lifetime imaging microscopy (FLIM) using phasor analysis. It has long been believed that the pulse width of an excitation laser must be shorter than the lifetime of a fluorophore in a time-domain FLIM system. Even though phasor analysis can effectively minimize the pulse effect by using deconvolution, the precision of a measured lifetime can be degraded seriously. Here, we provide a fundamental theory on pulse-width-dependent measurement precisions in lifetime measurement in the phasor plane. Our theory predicts that high-precision lifetimes can be obtained even with a laser whose pulse width is four times larger than the lifetime of a fluorophore. We have experimentally demonstrated this by measuring the lifetimes of fluorescence probes with 2.57 ns and 3.75 ns lifetimes by using various pulse widths (0.52–38 ns) and modulation frequencies (10–200 MHz). We believe our results open a new possibility of using long pulse-width lasers for high-precision FLIM.
Title: Use of nanosecond excitation pulses in fluorescence lifetime measurement via phasor analysis
Description:
We investigated the possibility of using long excitation pulses in fluorescence lifetime imaging microscopy (FLIM) using phasor analysis.
It has long been believed that the pulse width of an excitation laser must be shorter than the lifetime of a fluorophore in a time-domain FLIM system.
Even though phasor analysis can effectively minimize the pulse effect by using deconvolution, the precision of a measured lifetime can be degraded seriously.
Here, we provide a fundamental theory on pulse-width-dependent measurement precisions in lifetime measurement in the phasor plane.
Our theory predicts that high-precision lifetimes can be obtained even with a laser whose pulse width is four times larger than the lifetime of a fluorophore.
We have experimentally demonstrated this by measuring the lifetimes of fluorescence probes with 2.
57 ns and 3.
75 ns lifetimes by using various pulse widths (0.
52–38 ns) and modulation frequencies (10–200 MHz).
We believe our results open a new possibility of using long pulse-width lasers for high-precision FLIM.

Related Results

Applications of Total Scanning Fluorescence to Exploration Geochemistry
Applications of Total Scanning Fluorescence to Exploration Geochemistry
ABSTRACT A total scanning fluorescence technique is described for correlation (oil/oil and oil/source rock) and surface geochemical prospecting studies. The fluor...
High-Throughput Single-Cell Spectroscopy Using Phasor Analysis of Spectral Flow Cytometry
High-Throughput Single-Cell Spectroscopy Using Phasor Analysis of Spectral Flow Cytometry
Abstract Phasor analysis is a well-established tool in hyperspectral and lifetime microscopy, providing a powerful, fit-free approach for interpreting complex fluor...
Research on fluorescence lifetime dynamics of quantum dot by single photons modulation spectrum
Research on fluorescence lifetime dynamics of quantum dot by single photons modulation spectrum
Fluorescence lifetime is an important characteristic parameter of quantum dot, which plays an important role in studying the optical properties of quantum dot. As a common method t...
Fluorescence quenching of the phenanthrene excimer on Al2O3(0001): Coverage and distance dependence
Fluorescence quenching of the phenanthrene excimer on Al2O3(0001): Coverage and distance dependence
The fluorescence from disordered phenanthrene adlayers on Al2O3(0001) was examined in ultrahigh vacuum at 20 K using laser-induced fluorescence techniques. The fluorescence spectra...
Phasor measurement method based on soft synchronized sampling with temporal pulse signal reference
Phasor measurement method based on soft synchronized sampling with temporal pulse signal reference
Introduction: Phasor measurement is crucial for the monitoring and management of power grids. Traditional hardware-based phasor measurement units (PMUs) are effective but often com...
Phasor approach to fluorescence lifetime microscopy distinguishes different metabolic states of germ cells in a live tissue
Phasor approach to fluorescence lifetime microscopy distinguishes different metabolic states of germ cells in a live tissue
We describe a label-free imaging method to monitor stem-cell metabolism that discriminates different states of stem cells as they differentiate in living tissues. In this method we...

Back to Top