3,5-di(4-hydroxylphenyl)vinyl-BODIPYs

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3,5-di(4-hydroxylphenyl)vinyl-BODIPYs

3,5-di(4-hydroxylphenyl)vinyl-BODIPYs | 1421836-97-6

Catalog Number F01-0131
Category BODIPY
Molecular Formula C33H27BF2N2O3
Molecular Weight 548.397
Catalog Number Size Price Quantity
F01-0131 -- $--

Product Introduction

BODIPY dyes are used to generate fluorescent conjugates of proteins, nucleotides, oligonucleotides and dextrans, as well as to prepare fluorescent enzyme substrates, fatty acids, phospholipids, lipopolysaccharides, receptor ligands and polystyrene microspheres.

  • Product Specification
  • Application
Storage Store at -20°C

3,5-di(4-hydroxylphenyl)vinyl-BODIPYs, a class of fluorescent dyes, find specialized applications in various fields.

Bioimaging: Trusted for their robust fluorescence and photostability, these compounds are essential tools in bioimaging. Researchers leverage their luminosity to tag and visualize biological components in cell and tissue samples, unlocking insights into cellular processes, disease mechanisms, and microbial interactions at a microscopic scale.

Photodynamic Therapy: Exploring new horizons in cancer treatment, 3,5-di(4-hydroxylphenyl)vinyl-BODIPYs emerge as potential photosensitizers in photodynamic therapy. Upon illumination, these compounds generate reactive oxygen species that selectively target and eradicate diseased cells, offering a minimally invasive therapeutic option with fewer side effects than conventional treatments.

Chemical Sensing: The distinctive optical characteristics of these dyes position them as prime candidates for chemical sensing tasks. Tailorable to detect specific metal ions, pH levels, or environmental fluctuations, they manifest changes in fluorescence intensity or wavelength, serving critical roles in environmental monitoring, industrial processes, and laboratory analyses.

Organic Electronics: In the realm of organic electronics, 3,5-di(4-hydroxylphenyl)vinyl-BODIPYs are under scrutiny for their potential in OLEDs and other electronic gadgets. Their efficient light emission capabilities and adjustable electronic traits make them ideal materials for pioneering new electronic displays and lighting solutions.

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