Time Domain Flim

Time-domain fluorescence lifetime imaging microscopy (FLIM) is an optical imaging technique that maps how long fluorescent molecules remain in an excited state, providing information beyond fluorescence intensity. It uses short excitation pulses and records the arrival times of emitted photons, then fits the resulting fluorescence decay to calculate a lifetime for each image pixel. Because fluorescence lifetime responds to molecular environment, energy transfer, and interactions, FLIM can distinguish biochemical states even when fluorophore concentrations vary. In bioengineering, it supports cellular imaging, biosensor characterization, protein interaction studies, metabolic analysis, and evaluation of engineered tissues and biomaterials.

Time Domain Flim - Related Videos

Research

JoVE EoE - Biomolecular Interaction Detection Techniques

FLIM-FRET Imaging for Characterization of Protein-Protein Interactions in Live Bacteria

0 Views •

2025

The video describes the FLIM-FRET imaging technique to determine the protein-protein interaction in live bacteria expressing cytoplasmic proteins labeled with fluorescent proteins, a donor eGFP, and acceptor mCherry. The combined technique also allows the quantification of the interacting proteins.

Education

JoVE Core - Electrical Engineering

Linear Approximation in Time Domain

0 Views •

2024

Nonlinear systems often require sophisticated approaches for accurate modeling and analysis, with state-space representation being particularly effective. This method is especially useful for systems where variables and parameters vary with time or operating conditions, such as in a simple pendulum or a translational mechanical system with nonlinear springs. For a simple pendulum with a mass evenly distributed along its length and the center of mass located at half the pendulum's length, the...

Time-Domain Interpretation of PD Control

0 Views •

2024

Proportional-Derivative (PD) control is a widely used control method in various engineering systems to enhance stability and performance. In a system with only proportional control, common issues include high maximum overshoot and oscillation, observed in both the error signal and its rate of change. This behavior can be divided into three distinct phases: initial overshoot, subsequent undershoot, and gradual stabilization. Consider the example of control of motor torque. Initially, a positive...

Time and frequency -Domain Interpretation of PI Control

0 Views •

2024

Proportional-Integral (PI) controllers are essential in many control systems to improve stability and performance. They are commonly used in everyday devices like thermostats to enhance system damping and reduce steady-state error. When the zero in the controller's transfer function is optimally placed, the system benefits significantly in terms of stability and accuracy. Acting as a low-pass filter, the PI controller slows the system's response and extends settling times. This requires careful...

Time and frequency -Domain Interpretation of Phase-lead Control

0 Views •

2024

Phase-lead controllers are commonly used in various control systems to enhance response speed and stability. Adjusting the brightness on a television screen offers a practical example of phase-lead control. When contrast is enhanced, a phase-lead controller is employed. Mathematically, phase-lead control is identified when the first parameter is smaller than the second. The design of phase-lead control involves the strategic placement of poles and zeros to balance steady-state error and system...

View All Results

FAQs

Related Topics