Cas no 13393-64-1 (1,5,9-Decatriene)

1,5,9-Decatriene is a linear, unsaturated hydrocarbon with the molecular formula C??H??, featuring three conjugated double bonds. This compound is primarily utilized in organic synthesis and polymer chemistry due to its reactive diene structure, which facilitates Diels-Alder reactions and copolymerization processes. Its conjugated system also makes it a candidate for studies in photochemistry and material science. The product is typically supplied as a clear, colorless liquid with high purity, ensuring consistent performance in research and industrial applications. Handling requires standard precautions for volatile hydrocarbons, including storage under inert gas to prevent polymerization. Its well-defined structure and reactivity make it a valuable intermediate in specialty chemical synthesis.
1,5,9-Decatriene structure
1,5,9-Decatriene structure
Product Name:1,5,9-Decatriene
CAS No:13393-64-1
MF:C10H16
MW:136.234043121338
MDL:MFCD00055625
CID:86924
PubChem ID:87568448
Update Time:2025-06-09

1,5,9-Decatriene Chemical and Physical Properties

Names and Identifiers

    • 1,5,9-Decatriene
    • 1,5,9-Decatriene,mixture of cis and trans
    • Decatrienecistrans
    • deca-1,5,9-triene
    • cis-,trans-1,5,9-Decatriene
    • 1,5,9-Decatriene, cis + trans, 97%
    • 1,5,9-DECATRIENE, 97%, MIXTURE OF CIS AN D TRANS
    • 43LKX63VU7
    • J-006457
    • UNII-43LKX63VU7
    • (5E)-1,5,9-Decatriene #
    • GMGYODAMPOELNZ-MDZDMXLPSA-N
    • MFCD00055625
    • 13393-64-1
    • D1993
    • AKOS040744759
    • (5Z)-1,5,9-Decatriene
    • BS-22673
    • (5E)-deca-1,5,9-triene
    • 1,5,9-Decatriene, cis + trans
    • E-1,5,9-Decatriene
    • AKOS015913884
    • EINECS 236-474-2
    • D89970
    • MDL: MFCD00055625
    • Inchi: 1S/C10H16/c1-3-5-7-9-10-8-6-4-2/h3-4,9-10H,1-2,5-8H2/b10-9+
    • InChI Key: GMGYODAMPOELNZ-MDZDMXLPSA-N
    • SMILES: C(/C=C/CCC=C)CC=C

Computed Properties

  • Exact Mass: 136.12500
  • Monoisotopic Mass: 136.125
  • Isotope Atom Count: 0
  • Hydrogen Bond Donor Count: 0
  • Hydrogen Bond Acceptor Count: 0
  • Heavy Atom Count: 10
  • Rotatable Bond Count: 6
  • Complexity: 95.2
  • Covalently-Bonded Unit Count: 1
  • Defined Atom Stereocenter Count: 0
  • Undefined Atom Stereocenter Count : 0
  • Defined Bond Stereocenter Count: 1
  • Undefined Bond Stereocenter Count: 0
  • Surface Charge: 0
  • XLogP3: 3.7
  • Topological Polar Surface Area: 0

Experimental Properties

  • Color/Form: liquid
  • Density: 0.765?g/mL?at 25?°C(lit.)
  • Melting Point: -27.17°C (estimate)
  • Boiling Point: 55°C/12mmHg(lit.)
  • Flash Point: 115?°F
  • Refractive Index: n20/D 1.448(lit.)
  • PSA: 0.00000
  • LogP: 3.47500
  • Solubility: Not determined
  • Vapor Pressure: 2.5±0.1 mmHg at 25°C

1,5,9-Decatriene Security Information

1,5,9-Decatriene Customs Data

  • HS CODE:2901299090
  • Customs Data:

    China Customs Code:

    2901299090

    Overview:

    2901299090 Other unsaturated acyclic hydrocarbons.Regulatory conditions:nothing.VAT:17.0%.Tax refund rate:9.0%.MFN tariff:2.0%.general tariff:30.0%

    Declaration elements:

    Product Name, component content, use to, The volume of packaging container used as gaseous fuel shall be reported, Bulk cargo shall be reported

    Summary:

    2901299090 unsaturated acyclic hydrocarbons.Supervision conditions:None.VAT:17.0%.Tax rebate rate:9.0%.MFN tariff:2.0%.General tariff:30.0%

1,5,9-Decatriene Pricemore >>

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abcr
AB126523-5 ml
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1,5,9-Decatriene Production Method

Additional information on 1,5,9-Decatriene

Comprehensive Overview of 1,5,9-Decatriene (CAS No. 13393-64-1): Properties, Applications, and Industry Insights

1,5,9-Decatriene (CAS No. 13393-64-1) is a linear, unsaturated hydrocarbon belonging to the class of polyenes. This compound, characterized by its three double bonds at the 1, 5, and 9 positions, is widely studied for its unique chemical reactivity and potential applications in specialty chemicals and material science. Its molecular formula, C10H16, and structural features make it a versatile intermediate in organic synthesis. Recent interest in sustainable materials and bio-based polymers has further highlighted the relevance of 1,5,9-Decatriene in industrial research.

The physical properties of 1,5,9-Decatriene include a boiling point of approximately 170–175°C and a density of 0.78 g/cm3. Its low viscosity and high reactivity due to conjugated double bonds make it suitable for polymerization reactions and cross-linking agents. Researchers and manufacturers often explore its role in creating elastomers, adhesives, and coatings, aligning with the growing demand for eco-friendly alternatives to petroleum-derived products.

In the context of green chemistry, 1,5,9-Decatriene has garnered attention as a potential building block for renewable polymers. With increasing consumer awareness of carbon footprint reduction, industries are investigating its use in biodegradable plastics and composite materials. For instance, its incorporation into UV-curable resins addresses the need for energy-efficient manufacturing processes, a topic frequently searched in sustainable material forums.

From a synthetic perspective, 1,5,9-Decatriene is often derived from terpene precursors or via catalytic oligomerization of smaller olefins. Its production methods are a subject of optimization studies, particularly in catalyst design and process efficiency, which are critical for scaling up industrial applications. Questions like "How to improve the yield of 1,5,9-Decatriene?" or "What catalysts are best for its synthesis?" are common in chemical engineering discussions.

Beyond industrial uses, 1,5,9-Decatriene is also explored in flavor and fragrance applications due to its volatile nature and potential to contribute to complex scent profiles. This aligns with the rising trend of natural aroma compounds in cosmetics and food industries. However, regulatory compliance and safety assessments remain essential, as highlighted by frequent searches on REACH compliance and product safety data sheets.

In summary, 1,5,9-Decatriene (CAS No. 13393-64-1) exemplifies the intersection of fundamental chemistry and applied industrial innovation. Its multifaceted applications—from advanced materials to sustainable manufacturing—reflect broader market trends toward environmentally conscious solutions. As research continues, this compound is poised to play a pivotal role in addressing challenges like resource efficiency and circular economy goals.

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