Cas no 303-80-0 (3-hydroxyphenazine-5,10-diium-5,10-bis(olate))

3-hydroxyphenazine-5,10-diium-5,10-bis(olate) structure
303-80-0 structure
Product Name:3-hydroxyphenazine-5,10-diium-5,10-bis(olate)
CAS No:303-80-0
MF:C12H8N2O3
MW:228.20352268219
MDL:MFCD00128499
CID:311867
PubChem ID:135403208
Update Time:2025-11-02

3-hydroxyphenazine-5,10-diium-5,10-bis(olate) Chemical and Physical Properties

Names and Identifiers

    • 2-Phenazinol,5,10-dioxide
    • 10-hydroxy-5-oxidophenazin-5-ium-2-one
    • 2-Hydroxyphenazine 5,10-dioxide
    • 2-Hydroxyphenazin-5,10-dioxid
    • 2-Hydroxy-phenazin-5,10-dioxid
    • 2-Hydroxyphenazin-5.10-dioxid
    • 2-Hydroxyphenazin-di-N-oxid
    • 2-Hydroxy-phenazin-di-N-oxid
    • 2-Phenazinol,10-dioxide
    • 5,10-Dioxy-phenazin-2-ol
    • AC1L7ZIK
    • NSC400608
    • phenazin-2-ol 5,10-dioxide
    • phenazine-2,5,10-triol
    • 2-Phenazinol, 5,10-dioxide
    • SCHEMBL2373437
    • SDCCGMLS-0064679.P001
    • Cambridge id 5302586
    • CHEMBL179611
    • 3-HYDROXYPHENAZINE-5,10-DIIUM-5,10-BIS(OLATE)
    • AKOS000513778
    • F0266-0179
    • NSC-400608
    • 303-80-0
    • 10-hydroxy-5-oxido-phenazin-5-ium-2-one
    • 2-hydroxyphenazine-5,10-diium-5,10-bis(olate)
    • 10-hydroxy-5-oxido-2-phenazin-5-iumone
    • SCHEMBL8785885
    • AB00079449-09
    • NCGC00338743-01
    • 5,10-dioxidophenazine-5,10-diium-2-ol
    • VU0012845-2
    • AB00079449-01
    • 5-oxidanidyl-10-oxidanyl-phenazin-5-ium-2-one
    • EN300-265731
    • MLS001208198
    • HMS2858D20
    • CS-0270393
    • SMR000513883
    • DTXSID20322175
    • cid_343973
    • BDBM58394
    • 2-Hydroxyphenazine-5,10-dioxide
    • 3-hydroxyphenazine-5,10-diium-5,10-bis(olate)
    • MDL: MFCD00128499
    • Inchi: 1S/C12H8N2O3/c15-8-5-6-11-12(7-8)14(17)10-4-2-1-3-9(10)13(11)16/h1-7,15H
    • InChI Key: BMYLMFASUBJXBU-UHFFFAOYSA-N
    • SMILES: [O-][N+]1C2C=CC=CC=2[N+](=C2C=CC(=CC=12)O)[O-]

Computed Properties

  • Exact Mass: 228.05354
  • Monoisotopic Mass: 228.053
  • Isotope Atom Count: 0
  • Hydrogen Bond Donor Count: 1
  • Hydrogen Bond Acceptor Count: 1
  • Heavy Atom Count: 17
  • Rotatable Bond Count: 0
  • Complexity: 464
  • Covalently-Bonded Unit Count: 1
  • Defined Atom Stereocenter Count: 0
  • Undefined Atom Stereocenter Count : 0
  • Defined Bond Stereocenter Count: 0
  • Undefined Bond Stereocenter Count: 0
  • XLogP3: 0.3
  • Topological Polar Surface Area: 71.2?2

Experimental Properties

  • Density: 1.55
  • Boiling Point: 451.5°Cat760mmHg
  • Flash Point: 226.8°C
  • Refractive Index: 1.719
  • PSA: 74.11
  • LogP: 2.55560

3-hydroxyphenazine-5,10-diium-5,10-bis(olate) Pricemore >>

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Additional information on 3-hydroxyphenazine-5,10-diium-5,10-bis(olate)

Exploring 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) (CAS No. 303-80-0): Properties, Applications, and Innovations

The compound 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) (CAS No. 303-80-0) is a fascinating molecule in the field of organic chemistry and materials science. Known for its unique structural features and versatile applications, this compound has garnered attention in both academic research and industrial applications. Its phenazine-based framework and hydroxyl functional groups contribute to its distinct chemical behavior, making it a subject of interest for scientists exploring advanced materials and bioactive compounds.

One of the key properties of 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) is its ability to participate in redox reactions, which is crucial for its role in electron transfer processes. This characteristic has led to its investigation in the development of organic semiconductors and electrochemical sensors. Researchers are particularly interested in how this compound can be integrated into next-generation energy storage devices, such as batteries and supercapacitors, where efficient electron transfer is essential for performance.

In addition to its electrochemical applications, 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) has shown promise in the field of biomedical research. Its structural similarity to naturally occurring phenazines, which are known for their antimicrobial and anticancer properties, has spurred studies into its potential therapeutic uses. Recent trends in drug discovery highlight the demand for novel compounds with bioactive potential, and this molecule fits well within this paradigm. Scientists are exploring its interactions with biological targets to assess its efficacy in treating various diseases.

The synthesis and modification of 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) are also areas of active research. Advances in green chemistry have prompted the development of more sustainable methods for producing this compound, reducing the environmental impact of chemical synthesis. This aligns with the growing emphasis on sustainable manufacturing and the reduction of hazardous byproducts in industrial processes. Researchers are investigating catalytic routes and solvent-free reactions to optimize the production of this valuable compound.

From a commercial perspective, the demand for 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) is influenced by its applications in high-performance materials and biotechnology. Companies specializing in advanced materials are keen on leveraging its properties to create innovative products, such as conductive polymers and coatings. Meanwhile, the biotechnology sector is exploring its use in diagnostic tools and therapeutic agents, driven by the need for more effective and targeted solutions in healthcare.

As the scientific community continues to uncover the potential of 3-hydroxyphenazine-5,10-diium-5,10-bis(olate), its relevance in cutting-edge research is expected to grow. Whether in the realm of renewable energy, medical advancements, or sustainable chemistry, this compound exemplifies the intersection of innovation and practicality. For researchers and industry professionals alike, staying informed about the latest developments related to this molecule is essential for driving progress in their respective fields.

In summary, 3-hydroxyphenazine-5,10-diium-5,10-bis(olate) (CAS No. 303-80-0) is a multifaceted compound with significant implications across multiple disciplines. Its unique chemical properties, combined with its diverse applications, make it a valuable subject of study and a promising candidate for future technological breakthroughs. As interest in functional materials and bioactive compounds continues to rise, this molecule is poised to play a pivotal role in shaping the next generation of scientific and industrial innovations.

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