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Isooctyl Alcohol

    • Product Name: Isooctyl Alcohol
    • Factroy Site: Yudu County, Ganzhou, Jiangxi, China
    • Price Inquiry: admin@ascent-chem.com
    • Manufacturer: Ascent Petrochem Holdings Co., Limited
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    Specifications
    HS Code
    Product Name Isooctyl Alcohol
    Chemical Formula C8H18O
    Molecular Weight 130.23 g/mol
    Cas Number 26952-21-6
    Einecs Number 248-133-5
    Appearance Colorless liquid
    Odor Mild alcoholic odor
    Boiling Point 179-184 °C
    Melting Point -76 °C
    Density 0.832 g/mL at 20 °C
    Refractive Index 1.432 at 20 °C
    Flash Point 71 °C (closed cup)
    Solubility In Water Slightly soluble
    Solubility In Organic Solvents Miscible with alcohols, ethers, and hydrocarbons
    Vapor Pressure 0.1 mmHg at 20 °C
    Autoignition Temperature 270 °C
    Logp 2.8
    Purity ≥99% (typical)
    Hazard Classification Flammable liquid, irritant

    As an accredited Isooctyl Alcohol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Isooctyl Alcohol supplied in 200 L UN-approved steel drums, net 170 kg, sealed and labeled with hazard warnings.
    Container Loading (20′ FCL) Isooctyl Alcohol loaded in a 20-foot FCL container, palletized in drums, secured, labeled, and documented for safe ocean transport.
    Shipping Isooctyl alcohol (2-ethylhexanol) is generally not regulated as dangerous goods for transport by DOT, IMDG, or IATA. Ship in clean, tightly closed steel drums or IBCs, protected from heat, ignition sources, and oxidizers. No hazard labels or UN number required. Consult the SDS and carrier rules for exceptions.
    Storage Store isooctyl alcohol in a cool, dry, well-ventilated area away from heat, sparks, flames, and strong oxidizers. Keep containers tightly closed, upright, clearly labeled, and protected from physical damage. Use compatible materials and secondary containment to prevent leaks. Ground and bond during transfer if required. Follow local regulations and safety data sheet recommendations.
    Shelf Life Isooctyl alcohol: stable for about 24 months when stored tightly closed, cool, dry, ventilated, and away from heat and ignition sources.
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    Certification & Compliance
    More Introduction

    Isooctyl alcohol, CAS 26952-21-6, is a branched C8 oxo alcohol produced by hydroformylation of heptenes followed by hydrogenation of the resultant aldehydes. The commercial term does not denote a single pure isomer; it describes a controlled mixture in which 2-ethylhexanol, CAS 104-76-7, is the predominant component, typically accompanied by 2-methylheptanol, 3-methylheptanol, and 2,4-dimethylhexanol. The product is supplied as a clear, low-color liquid with a characteristic mild alcohol odor. Purchase specifications are generally defined by total C8 alcohol content, 2-ethylhexanol content, water content, acid value, color, density, and distillation range. Grades used in esterification are commonly designated by purity thresholds such as 99.0 wt% total C8 alcohol or by plasticizer-alcohol quality with 94–98 wt% 2-ethylhexanol. The molecular formula is C8H18O, and the molecular weight is 130.23 g/mol. The hydroxyl value is approximately 430 mg KOH/g, which sets the stoichiometric demand in esterification and isocyanate reactions. Production-scale material is typically available in bulk marine, rail, and tank-truck quantities, with drums used for pilot and small-batch consumption. The low water solubility, approximately 0.07 g/100 g water at 20°C, permits phase separation from aqueous workup streams but requires dry equipment for esterification to avoid yield loss and byproduct formation.

    Specification Ranges and Receiving-Qualification Methods

    Receiving inspection for bulk isooctyl alcohol compares the certificate of analysis against the purchase specification. Typical limits and methods are shown in Table 1. The gas chromatographic isomer distribution is generated on a 60 m polyethylene glycol capillary column with split injection and internal normalization. No single ASTM method governs the resolution of all branched C8 alcohol isomers; consequently, the chromatographic method is validated against a certified reference mixture and is reported as area percent. The remaining properties are anchored to the standard test designations indicated.

    PropertyTypical rangeTest method
    Total C8 alcohol content≥99.0 wt%GC-FID internal normalization
    2-Ethylhexanol content94.0–98.0 wt%GC-FID internal normalization
    Color, Pt-Co≤10ASTM D1209
    Water≤0.10 wt%ASTM E203
    Acidity as acetic acid≤0.01 wt%ASTM D1613
    Density at 20°C0.832–0.834 g/cm³ASTM D4052
    Distillation range, IBP–FBP182–189°CASTM D1078
    Refractive index n20/D1.430–1.432ASTM D1218
    Viscosity at 20°C8.5–10.5 mPa·sASTM D445

    Bulk cargo is sampled from top, middle, and bottom hatch points after a minimum settling period of 24 h to avoid stratification artifacts. Sample lines are flushed with nitrogen and the first 5 L of product is discarded before a composite is drawn. For esterification-grade material, water is typically rejected at ≤0.05 wt% because residual water hydrolyzes the catalyst and consumes phthalic anhydride or acrylic acid, increasing acid value and color in the finished ester. The distillation range is used as an indicator of isomeric balance: an upward shift in the final boiling point above 189°C suggests accumulation of higher-boiling C9–C10 alcohol impurities, while a low initial boiling point below 182°C may indicate residual heptene or light hydrocarbons.

    Isooctyl alcohol is transferred from bulk storage to esterification reactors at 60–80°C to maintain pumpability and to prevent moisture condensation in suction lines. In the production of phthalate plasticizers, the alcohol is charged with phthalic anhydride in a molar ratio of 2.2:1 to 2.5:1 alcohol to anhydride. The reaction is conducted in baffled stainless steel 316L vessels with an overhead condenser and decanter. Water removal is continuous; the esterification temperature is held at 180–220°C under atmospheric or slight vacuum, and catalyst systems include tetraalkyl titanates or organotin compounds. The reaction is equilibrium-limited; conversion above 99% requires effective water stripping and excess alcohol recovery under vacuum at 10–20 kPa. Compared with linear n-octanol, the β-branching in 2-ethylhexanol reduces esterification rate under identical acid catalysis; production recipes compensate by increasing temperature or residence time. The resulting di(2-ethylhexyl) phthalate remains liquid below -40°C when measured by ASTM D97, whereas di-n-octyl phthalate has a melting point near 25°C.

    What Distinguishes Isooctyl Alcohol from Linear C8 and Higher Oxo Alcohols?

    The distinction is primarily isomer branching. n-Octanol is a linear primary alcohol with a normal boiling point of 195–198°C and a solidification point near -15°C. Isooctyl alcohol is a branched mixture with a distillation range of 182–189°C; the branch at the β-carbon of 2-ethylhexanol disrupts crystal packing and lowers the freezing point of both the alcohol and its downstream esters. Isononanol, a branched C9 oxo alcohol, extends the carbon chain to a molecular weight of 144.25 g/mol and a boiling range of 193–196°C; its esters have lower volatility and higher viscosity than C8 alcohol esters. Table 2 provides comparative data for alcohol selection.

    PropertyIsooctyl alcohol2-Ethylhexanoln-OctanolIsononanol
    Molecular weight130.23 g/mol130.23 g/mol130.23 g/mol144.25 g/mol
    Boiling range, IBP–FBP182–189°C184–185°C195–198°C193–196°C
    Density at 20°C0.832–0.834 g/cm³0.832 g/cm³0.824 g/cm³0.833 g/cm³
    Flash point, closed cup71–73°C73°C81°C85°C
    Kinematic viscosity at 20°C8.5–10.5 mm²/s9.8 mm²/s7.6 mm²/s11.5 mm²/s

    These differences translate directly into application performance. In plasticizer alcohol selection, the branched C8 chain lowers plasticizer pour point and improves low-temperature flexibility in polyvinyl chloride compounds; however, the linear n-octyl chain provides lower volatility and better thermal stability in high-temperature wire and cable formulations. The choice between isooctyl alcohol and isononanol is driven by migration resistance and permanence: isononanol esters typically show lower volatility and lower extractability in hydrocarbon media, whereas isooctanol esters offer lower plastisol viscosity and faster processing. Comparative volatility is measured in PVC compounds by ASTM D1203 activated-carbon loss, and extraction resistance by ASTM D1239 soapy-water extraction or ASTM D5227 hexane extraction.

    Monomer production by direct esterification of acrylic acid with isooctyl alcohol yields 2-ethylhexyl acrylate or mixed isooctyl acrylate. The process is conducted in a continuous esterification column with acrylic acid and alcohol feeds at molar ratios near 1.1:1 acid to alcohol, using a strong acid catalyst and azeotropic solvent or vacuum water removal. The crude ester is washed with aqueous alkali to remove unreacted acrylic acid, then distilled under reduced pressure. Residual alcohol is controlled to ≤0.1 wt% in monomer-grade acrylate because residual alcohol acts as a chain-transfer agent in subsequent free-radical polymerization and reduces polymer molecular weight. Inhibitors such as hydroquinone monomethyl ether at 5–15 ppm are added during distillation to prevent premature polymerization.

    When Isooctyl Alcohol Replaces n-Octanol in Surfactant and Lubricant Ester Synthesis

    Substitution of linear n-octanol with isooctyl alcohol in ethoxylation or esterification changes the hydrophilic-lipophilic balance and the cold-flow behavior of the product. Branched alcohol ethoxylates exhibit lower foam stability and lower pour points than linear alcohol ethoxylates, which is relevant in hard-surface cleaners and textile processing. In synthetic lubricant esters, the branched C8 alcohol yields esters with lower kinematic viscosity and lower pour point than linear C8 esters, but with slightly higher volatility and lower oxidative stability due to tertiary C–H bonds in the branched chain. Formulators using ASTM D445 for kinematic viscosity and ASTM D97 for pour point can quantify the shift. The cloud point of branched alcohol ethoxylates is generally lower than that of linear homologues at the same degree of ethoxylation, as determined by ASTM D2024 or ISO 1065. The esterification rate is slower with isooctyl alcohol than with n-octanol under identical acid catalysis because the β-branch sterically inhibits nucleophilic attack on the carbonyl carbon. Process control is based on measured acid value using ASTM D1613 rather than fixed residence time, because the endpoint shift varies with catalyst type and reactor configuration.

    Storage Stability Is Governed by Water Exclusion and Nitrogen Blanketing

    Bulk isooctyl alcohol is stored in carbon steel tanks fitted with pressure-vacuum relief valves and nitrogen blanketing to maintain a headspace dew point below -20°C. Storage temperature is normally maintained below 40°C to limit color development and acid value increase. Prolonged air exposure can increase acidity and color; the product is not classified as a peroxide-forming substance under routine storage because the alcohol is saturated and primary. However, material exposed to air for extended periods should be tested for water and acidity before use. Avoid contact with strong oxidizing agents, and use conductive bonding and grounding during transfer because the flash point is 71–73°C closed cup. Stainless steel 304 or 316L is preferred for process piping; carbon steel is acceptable for bulk storage. The product is registered under EU REACH as a substance intermediate, and users must confirm substance identity against EINECS 248-133-5 when importing into European Economic Area supply chains. Material safety data sheets should be consulted for exposure limits and spill procedures.

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