Cas no 4239-24-1 (1,6-Bis(mesyloxy)hexane)

1,6-Bis(mesyloxy)hexane is a bifunctional mesylate compound commonly employed as an alkylating agent in organic synthesis. Its structure features two mesyloxy (methanesulfonate) groups at the terminal positions of a hexane chain, enabling efficient crosslinking or functionalization in polymer chemistry and pharmaceutical intermediates. The compound exhibits high reactivity in nucleophilic substitution reactions, facilitating the introduction of hexyl spacers or bridging moieties in target molecules. Its stability under controlled conditions and well-defined reactivity profile make it a reliable reagent for precise synthetic modifications. Applications include the preparation of specialty polymers, dendrimers, and modified biomolecules, where its bifunctionality and predictable behavior are advantageous.
1,6-Bis(mesyloxy)hexane structure
1,6-Bis(mesyloxy)hexane structure
Product Name:1,6-Bis(mesyloxy)hexane
CAS No:4239-24-1
MF:C8H18O6S2
MW:274.354920864105
CID:1067023
PubChem ID:145735
Update Time:2025-05-25

1,6-Bis(mesyloxy)hexane Chemical and Physical Properties

Names and Identifiers

    • Hexasulfan
    • 1,6-Hexanediol dimethanesulfonate
    • 1,6-Bis(mesyloxy)hexane
    • 6-methylsulfonyloxyhexyl methanesulfonate
    • 6-(METHANESULFONYLOXY)HEXYL METHANESULFONATE
    • 16-Bismesyloxyhexane
    • BRN 1796026
    • AKOS025311615
    • Methanesulfonic acid, hexamethylene ester
    • 1,6-Hexanediol, dimethanesulfonate
    • 1,6-bis(methanesulfonyloxy)hexane
    • DTXSID50195197
    • AI3-61596
    • CS-0147897
    • HY-138327
    • Hexane dimethanesulphonate
    • 1,6-hexanediyl dimethanesulfonate
    • starbld0009330
    • 1,6-Hexanediol, bis(methanesulphonate)
    • SCHEMBL1931795
    • Hexasulphan
    • 6-methylsulfonyloxyhexyl methylsulfonate
    • 4239-24-1
    • STL490607
    • 6-[(Methylsulfonyl)oxy]hexyl methanesulfonate #
    • 1,6-Hexanediol, dimethanesulphonate
    • hexane-1,6-diyl dimethanesulfonate
    • DA-69409
    • Inchi: 1S/C8H18O6S2/c1-15(9,10)13-7-5-3-4-6-8-14-16(2,11)12/h3-8H2,1-2H3
    • InChI Key: WZOJEWBBWCYINS-UHFFFAOYSA-N
    • SMILES: S(C)(=O)(=O)OCCCCCCOS(C)(=O)=O

Computed Properties

  • Exact Mass: 274.05454
  • Monoisotopic Mass: 274.05448064g/mol
  • Isotope Atom Count: 0
  • Hydrogen Bond Donor Count: 0
  • Hydrogen Bond Acceptor Count: 6
  • Heavy Atom Count: 16
  • Rotatable Bond Count: 9
  • Complexity: 320
  • 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: 0.2
  • Topological Polar Surface Area: 104?2

Experimental Properties

  • Melting Point: 56-59°C
  • Solubility: Chloroform (Slightly), Methanol (Slightly)
  • PSA: 86.74

1,6-Bis(mesyloxy)hexane Security Information

  • Storage Condition:-20°C Freezer

1,6-Bis(mesyloxy)hexane Pricemore >>

Related Categories No. Product Name Cas No. Purity Specification Price update time Inquiry
TRC
B311855-500mg
1,6-Bis(mesyloxy)hexane
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$ 266.00 2023-04-18
TRC
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Biosynth
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Additional information on 1,6-Bis(mesyloxy)hexane

1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1): A Versatile Chemical Intermediate in Modern Applications

1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1), also known as hexane-1,6-diyl dimethanesulfonate, is a specialized organic compound with significant utility in synthetic chemistry and industrial applications. This mesylate derivative is characterized by its two methanesulfonyloxy (mesyloxy) groups attached to a linear hexane backbone, making it a valuable bifunctional linker in polymer science, pharmaceuticals, and material engineering. Its molecular formula, C8H18O6S2, reflects its role as a cross-linking agent and alkylating reagent, often leveraged for its reactivity in nucleophilic substitution reactions.

In recent years, the demand for 1,6-Bis(mesyloxy)hexane has surged due to its compatibility with green chemistry principles. Researchers prioritize compounds like this for their efficiency in low-waste synthesis, aligning with global trends toward sustainable manufacturing. A common query in AI-driven chemical databases revolves around its use in biodegradable polymers, where it serves as a precursor for eco-friendly materials. This aligns with the broader industry focus on reducing carbon footprints, a topic frequently searched in scientific forums and patent literature.

The compound’s thermal stability and solubility profile (e.g., in polar aprotic solvents like DMF or DMSO) make it a preferred choice for high-performance coatings and adhesive formulations. Notably, its application in click chemistry—a trending topic in drug discovery??has been explored for modular biomolecule conjugation. Users often search for "1,6-Bis(mesyloxy)hexane solubility" or "mesylate reactivity in SN2 reactions," highlighting its relevance in academic and industrial workflows.

From a safety and handling perspective, CAS 4239-24-1 requires standard laboratory precautions, though it is not classified under stringent regulatory lists. Its non-volatile nature and moderate melting point (~80°C) facilitate safe storage and transport, addressing common concerns in chemical procurement discussions. Analytical techniques such as HPLC and NMR spectroscopy are typically employed for purity verification, a detail frequently queried in quality control contexts.

Innovations in catalysis have further expanded the scope of 1,6-Bis(mesyloxy)hexane. For instance, its role in phase-transfer catalysis (PTC) systems is gaining traction, particularly in asymmetric synthesis—a hot topic in organic chemistry research. Searches like "mesylates in PTC" or "hexane-linked catalysts" reflect this niche interest. Additionally, its potential in nanomaterial functionalization is under investigation, catering to the booming field of smart materials.

In summary, 1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1) exemplifies a multifaceted chemical bridge between traditional synthesis and cutting-edge applications. Its adaptability to sustainable practices, coupled with its utility in high-value industries, ensures its continued prominence in both academic publications and industrial workflows. As AI-assisted molecular design advances, compounds like this will remain pivotal in addressing complex material challenges of the future.

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