Spectrally Selective Time-Resolved Emission through Fourier-Filtering (STEF).
Anthony V SicaAsh Sueh HuaHelen H LinEllen M SlettenTimothy L AtallahJustin R CaramPublished in: The journal of physical chemistry letters (2023)
We demonstrate a method for separating and resolving the dynamics of multiple emitters without the use of conventional filters. By directing the photon emission through a fixed path-length imbalanced Mach-Zehnder interferometer, we interferometrically cancel (or enhance) certain spectral signatures corresponding to one emissive species. Our approach, Spectrally selective Time-resolved Emission through Fourier-filtering (STEF), leverages the detection and subtraction of both outputs of a tuned Mach-Zehnder interferometer, which can be combined with time-correlated single photon counting (TCSPC) or confocal imaging to demix multiple emitter signatures. We develop a procedure to calibrate out imperfections in Mach-Zehnder interferometry schemes. Additionally, we demonstrate the range and utility of STEF by performing the following procedures with one measurement: (1) filtering out laser scatter from a sample, (2) separating and measuring a fluorescence lifetime from a binary chromophore mixture with overlapped emission spectra, (3) confocally imaging and separately resolving the standard fluorescent stains in bovine pulmonary endothelial cells and nearly overlapping fluorescent stains on RAW 264.7 cells. This form of spectral balancing can allow for robust and tunable signal sorting.
Keyphrases
- optical coherence tomography
- endothelial cells
- living cells
- high resolution
- quantum dots
- induced apoptosis
- label free
- light emitting
- high speed
- solid state
- genome wide
- pulmonary hypertension
- cell cycle arrest
- cell death
- gene expression
- minimally invasive
- fluorescent probe
- single molecule
- endoplasmic reticulum stress
- magnetic resonance
- vascular endothelial growth factor
- photodynamic therapy
- ionic liquid
- dna methylation
- loop mediated isothermal amplification