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Princeton Instruments instruments proem 512b+ emccd camera
Instruments Proem 512b+ Emccd Camera, supplied by Princeton Instruments, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/instruments+proem+512b++emccd+camera/photonmax+emccd+camera/ppr0345650-75-12-10
Average 90 stars, based on 1 article reviews
instruments proem 512b+ emccd camera - by Bioz Stars, 2026-09
90/100 stars

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other:

Article Title: A Gain-series Method for Accurate EMCCD Calibration
Article Snippet: We applied MV methods and MLE methods to calibrate a Princeton Instruments ProEM 512B+ EMCCD camera (2012 manufacture date).

Article Title: Optical coherence tomography-guided confocal Raman microspectroscopy for rapid measurements in tissues
Article Snippet: The other end of the fiber was connected to a spectrometer equipped with a spectrograph (f/3.88, IsoPlane 160, Princeton Instrument, Trenton, NJ, USA) and an electron-multiplying charge coupled device (EMCCD) camera (ProEM:512B, Princeton Instrument, Trenton, NJ, USA).

Article Title: A gain series method for accurate EMCCD calibration
Article Snippet: We applied MV methods and MLE methods to calibrate a Princeton Instruments ProEM 512B+ EMCCD camera (2012 manufacture date).

Fluorescence:

Article Title: Efficient, Stable, and Photoluminescence Intermittency-Free CdSe-Based Quantum Dots in the Full-Color Range
Article Snippet: Colloidal semiconductor CdSe-based quantum dots (QDs) show undesirable photoluminescence (PL) intermittency with frequent and long-lasting dark states due to positively charged states, significantly limiting QD optoelectronic and photonics applications.. Here, we show that p-phenylenediamine (PPD) can completely suppress the long-lasting dark states in the PL intensity trajectories for single CdSe-based QDs in the full-color emission range from 459 to 800 nm, while hardly influencing any other PL properties of the QDs, such as the PL intensity, lifetime, and emission spectra.. The suppression mechanism is investigated by comparing PPD to another amine compound, N,N-dimethylaniline.

Imaging:

Article Title: Efficient, Stable, and Photoluminescence Intermittency-Free CdSe-Based Quantum Dots in the Full-Color Range
Article Snippet: Colloidal semiconductor CdSe-based quantum dots (QDs) show undesirable photoluminescence (PL) intermittency with frequent and long-lasting dark states due to positively charged states, significantly limiting QD optoelectronic and photonics applications.. Here, we show that p-phenylenediamine (PPD) can completely suppress the long-lasting dark states in the PL intensity trajectories for single CdSe-based QDs in the full-color emission range from 459 to 800 nm, while hardly influencing any other PL properties of the QDs, such as the PL intensity, lifetime, and emission spectra.. The suppression mechanism is investigated by comparing PPD to another amine compound, N,N-dimethylaniline.

Microscopy:

Article Title: Efficient, Stable, and Photoluminescence Intermittency-Free CdSe-Based Quantum Dots in the Full-Color Range
Article Snippet: Colloidal semiconductor CdSe-based quantum dots (QDs) show undesirable photoluminescence (PL) intermittency with frequent and long-lasting dark states due to positively charged states, significantly limiting QD optoelectronic and photonics applications.. Here, we show that p-phenylenediamine (PPD) can completely suppress the long-lasting dark states in the PL intensity trajectories for single CdSe-based QDs in the full-color emission range from 459 to 800 nm, while hardly influencing any other PL properties of the QDs, such as the PL intensity, lifetime, and emission spectra.. The suppression mechanism is investigated by comparing PPD to another amine compound, N,N-dimethylaniline.

Spectroscopy:

Article Title: Efficient, Stable, and Photoluminescence Intermittency-Free CdSe-Based Quantum Dots in the Full-Color Range
Article Snippet: Colloidal semiconductor CdSe-based quantum dots (QDs) show undesirable photoluminescence (PL) intermittency with frequent and long-lasting dark states due to positively charged states, significantly limiting QD optoelectronic and photonics applications.. Here, we show that p-phenylenediamine (PPD) can completely suppress the long-lasting dark states in the PL intensity trajectories for single CdSe-based QDs in the full-color emission range from 459 to 800 nm, while hardly influencing any other PL properties of the QDs, such as the PL intensity, lifetime, and emission spectra.. The suppression mechanism is investigated by comparing PPD to another amine compound, N,N-dimethylaniline.



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