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1,8-Octanediol
[CAS# 629-41-4]

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Complete supplier list of 1,8-Octanediol
Identification
Classification Chemical reagent >> Organic reagent >> Fatty alcohol
Name 1,8-Octanediol
Synonyms Octane-1,8-diol; Octamethylene glycol
Molecular Structure CAS # 629-41-4, 1,8-Octanediol, Octane-1,8-diol, Octamethylene glycol
Molecular Formula C8H18O2
Molecular Weight 146.23
CAS Registry Number 629-41-4
EC Number 211-090-8
SMILES C(CCCCO)CCCO
Properties
Density 0.9±0.1 g/cm3 Calc.*
Melting point 57 - 61 ºC (Expl.)
Boiling point 278.8 ºC 760 mmHg (Calc.)*, 322.1 ºC (Expl.)
Flash point 128.0±13.0 ºC (Calc.)*, 120 ºC (Expl.)
Index of refraction 1.455 (Calc.)*
* Calculated using Advanced Chemistry Development (ACD/Labs) Software.
Safety Data
Hazard Symbols symbol   GHS07 Warning    Details
Hazard Statements H319    Details
Precautionary Statements P280-P305+P351+P338-P337+P313    Details
Hazard Classification
up    Details
HazardClassCategory CodeHazard Statement
Acute toxicityAcute Tox.4H302
Skin irritationSkin Irrit.2H315
Eye irritationEye Irrit.2H319
Specific target organ toxicity - single exposureSTOT SE3H335
Flammable solidsFlam. Sol.2H228
SDS Available
up Discovory and Applicatios
1,8-Octanediol is a linear aliphatic diol consisting of an eight-carbon hydrocarbon chain with hydroxyl groups attached at both terminal carbons. Its molecular formula is C8H18O2. As an α,ω-diol, it features two primary alcohol functional groups separated by a flexible alkyl chain, which makes it an important intermediate in polymer chemistry and specialty chemical synthesis.

The synthesis of 1,8-octanediol is commonly achieved through catalytic hydrogenation of octanedioic acid (suberic acid) or its derivatives such as esters or acid chlorides. Catalysts such as Raney nickel or copper chromite are typically used under elevated temperature and pressure to reduce the carboxyl groups to primary alcohols. Alternative synthetic methods include multi-step sequences starting from shorter-chain precursors followed by chain extension.

1,8-Octanediol’s bifunctional alcohol groups make it a valuable monomer or intermediate in the production of polyesters, polyurethanes, and other polymers. The eight-carbon alkyl spacer contributes flexibility, moderate hydrophobicity, and thermal stability to polymer chains. Polymers derived from 1,8-octanediol exhibit balanced mechanical strength and elasticity, useful for applications in coatings, adhesives, fibers, and biodegradable plastics.

Beyond polymer synthesis, 1,8-octanediol is used in manufacturing surfactants, plasticizers, and lubricant additives. Chemical modifications such as esterification or etherification yield amphiphilic molecules used in detergents, emulsifiers, and personal care products. The balance between hydrophilic hydroxyl groups and the hydrophobic alkyl chain enables interactions with both polar and nonpolar phases.

Physically, 1,8-octanediol is typically a colorless to pale yellow liquid or solid depending on purity and temperature. It has limited solubility in water but dissolves well in organic solvents such as alcohols, ethers, and hydrocarbons. The compound is chemically stable under normal conditions but can react with strong oxidizers or undergo hydrolysis in acidic or basic environments.

Toxicological data indicate low acute toxicity and good biodegradability, supporting its use in environmentally friendly chemical manufacturing. It can also be produced from renewable feedstocks, aligning with green chemistry principles.

In summary, 1,8-octanediol is a bifunctional diol featuring hydroxyl groups at both ends of an eight-carbon chain. Its chemical reactivity and structural properties make it a valuable intermediate for polymer production and specialty chemical applications.

References

2024. Bio-upcycling of even and uneven medium-chain-length diols and dicarboxylates to polyhydroxyalkanoates using engineered Pseudomonas putida. Microbial Cell Factories, 23(1).
DOI: 10.1186/s12934-024-02310-7

2023. Accurate Measurements of the Thermal Conductivity of n-Docosane, n-Tetracosane, 1,6-Hexanediol, and 1,8-Octanediol in the Solid and Liquid Phases. International Journal of Thermophysics, 44(7).
DOI: 10.1007/s10765-023-03182-6

2023. Catalytic synthesis of spiromacrocyclic diperoxides based on α,ω-diols. Russian Chemical Bulletin, 72(5).
DOI: 10.1007/s11172-023-3884-0
Market Analysis Reports
List of Reports Available for 1,8-Octanediol
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