| HS Code | |
| Productname | o-Xylene |
| Iupacname | 1,2-dimethylbenzene |
| Casnumber | 95-47-6 |
| Ecnumber | 202-422-2 |
| Molecularformula | C8H10 |
| Molecularweight | 106.17 g/mol |
| Appearance | Colorless liquid |
| Odor | Sweet, aromatic |
| Meltingpoint | -25.2 °C |
| Boilingpoint | 144.4 °C |
| Density | 0.879 g/cm3 at 20 °C |
| Vaporpressure | 0.8 kPa at 20 °C |
| Flashpoint | 17 °C closed cup |
| Refractiveindex | 1.505 at 20 °C |
| Solubilityinwater | Practically insoluble; 0.17 g/L |
| Solubilityinorganicsolvents | Miscible with ethanol, ether, acetone, benzene |
| Logp | 3.12 |
| Autoignitiontemperature | 463 °C |
| Viscosity | 0.81 mPa·s at 20 °C |
| Unnumber | 1307 |
| Hazardclass | 3 |
| Packinggroup | III |
As an accredited O-Xylene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | O-Xylene supplied in 20 L UN-approved steel drums, tightly sealed, flammable-labeled, with secure closures for safe transport and storage. |
| Container Loading (20′ FCL) | 20′ FCL loaded with O-Xylene (UN1307) in sealed drums/IBCs, correctly labeled, secured, and compliant with flammable liquid hazardous cargo regulations. |
| Shipping | O-Xylene ships as UN 1307, Xylenes, Class 3 flammable liquid, Packing Group III. Use UN-approved steel drums, tank trucks, railcars, or ISO tanks. Label flammable and follow DOT, IMDG, and IATA rules. Keep away from ignition sources; transport at ambient temperature. |
| Storage | Store o-xylene in a cool, dry, well-ventilated, fire-resistant area away from heat, sparks, open flames, and strong oxidizers. Keep containers tightly closed, labeled, and grounded; use approved flammable-liquid cabinets or rooms. Protect from direct sunlight and ignition sources. Avoid inhalation and skin contact. Use compatible containers, such as steel drums, and segregate from incompatible materials. Ensure adequate ventilation and spill containment. |
| Shelf Life | O-Xylene is stable under recommended storage; shelf life is indefinite if kept sealed in a cool, dry, well-ventilated area away from ignition sources. |
Catalytic oxidation of o-Xylene (CAS 95-47-6) to phthalic anhydride remains the dominant downstream route for merchant o-Xylene supply. Air-to-o-Xylene mass ratio is regulated between 35:1 and 45:1, which keeps the premixed feed below the lower explosive limit after preheating to 160–180°C. The reactor tubes have an internal diameter of 21–25 mm and a length of 3.5–4.0 m. Heat removal is provided by a molten salt bath held at 350–365°C; catalyst bed hot spots are limited to 420–450°C to avoid runaway oxidation to COx. The catalyst is a V₂O₅/TiO₂ extrudate with antimony, potassium, cesium, or phosphorus promoters. Particle diameter is typically 0.5–1.5 mm. At a gas hourly space velocity of 1,500–2,500 h⁻¹, o-Xylene conversion exceeds 99.5 mol% and phthalic anhydride selectivity falls between 78 mol% and 84 mol%.
Reactor effluent is cooled in switch condensers where crude phthalic anhydride desublimes on finned tube surfaces at gas-side outlet temperatures between 70°C and 90°C. The condensers are cycled automatically between loading and melting modes; melting is performed with hot oil at 180–220°C. Crude phthalic anhydride is then aged at 265–280°C for 12–24 h to convert residual phthalic acid to the anhydride and to decompose phthalide. Vacuum distillation delivers final product with purity not less than 99.8 wt%. Commercial specifications follow GB/T 15336-2013; maleic anhydride content is normally limited to 0.05–0.5 wt%, phthalide to 0.5 wt% maximum, and molten colour to 10–20 APHA depending on grade. Under the CLP Regulation (EC 1272/2008), phthalic anhydride is classified for serious eye damage (H318), skin irritation (H315), respiratory sensitisation (H334), skin sensitisation (H317), and specific target organ toxicity single exposure (H335). Bulk storage of molten phthalic anhydride requires jacketed tanks at 160–180°C with dry nitrogen blanketing; moisture intrusion accelerates phthalic acid formation and increases solidification risk. Phthalic anhydride from o-Xylene is the gateway intermediate for C8–C10 phthalate plasticizers, unsaturated polyester resins, alkyd resins, and phthalonitrile-based pigments.
In flexible PVC compounding, o-Xylene-derived phthalic anhydride is converted to high-molecular-weight phthalate plasticizers through esterification with C8–C10 oxo alcohols. The molar feed ratio is set at 1.0 mol phthalic anhydride to 2.20–2.60 mol alcohol, equivalent to a 20–30 mol% excess over the 2:1 stoichiometric requirement. Branched alcohols such as isononanol and isodecanol require the upper excess range because their steric hindrance reduces esterification kinetics. Tetrabutyl titanate catalyst loading is adjusted from 0.05 wt% to 0.25 wt% of total reactor charge. Loadings below 0.05 wt% produce unacceptably long cycle times at 180–220°C; loadings above 0.25 wt% can precipitate titanium dioxide haze in the finished plasticizer when water is not removed rapidly enough. Water is stripped with excess alcohol under vacuum that is stepped from 20 kPa to 2 kPa as the reaction approaches 99% conversion.
Crude ester is neutralised with 1–3 wt% aqueous sodium carbonate solution, water-washed, and steam-stripped at 140–160°C under 2–5 kPa. Final DINP or DIDP is dried to a water content below 0.1 wt% and filtered through plate filters; acid value is typically ≤ 0.05 mg KOH/g and colour ≤ 15 APHA. Plasticizer migration in finished articles is measured by ISO 176:2005; elevated-temperature activated carbon methods provide comparative loss values for compound qualification.
| Phthalate | Alcohol | REACH Annex XVII | RoHS 2011/65/EU Annex II |
|---|---|---|---|
| DOP / DEHP | 2-ethylhexanol | Entry 51 | Restricted at 0.1 wt% |
| DINP | isononanol | Entry 52 | Not listed |
| DIDP | isodecanol | Entry 52 | Not listed |
| DBP | n-butanol | Entry 51 | Restricted at 0.1 wt% |
Under EU REACH Annex XVII entry 51, DEHP, DBP, BBP, and DIBP are restricted to 0.1 wt% individually or combined in toys and childcare articles. Entry 52 restricts DINP, DIDP, and DNOP at the same 0.1 wt% threshold for toys and childcare articles that can be placed in the mouth. RoHS Directive 2011/65/EU Annex II restricts DEHP, DBP, BBP, and DIBP in electrical and electronic equipment at 0.1 wt% per homogeneous material. Food-contact uses are not automatic; they require positive listing under the applicable jurisdiction. Plasticized PVC compounds are processed on counter-rotating twin-screw extruders with L/D ratios of 25:1 to 30:1, barrel temperatures of 140–180°C, and screw speeds of 200–300 min⁻¹. Formulation ratios of 30–60 phr DINP in suspension PVC shift the glass transition temperature from approximately 80°C to below -10°C, depending on K-value and filler content. Overdosing above 60 phr may increase surface exudation risk in calendered sheet; underdosing below 30 phr reduces flexible cable low-temperature impact performance.
Before styrene dilution, orthophthalic unsaturated polyester resin is condensed from phthalic anhydride, maleic anhydride, and propylene glycol in a two-stage melt process. A general-purpose orthophthalic resin is formulated with a maleic anhydride-to-phthalic anhydride molar ratio of 1.0:1.0 and a total glycol-to-diacid molar ratio of 2.10:1 to 2.30:1. Propylene glycol is the primary diol, with ethylene glycol added at 10–30 mol% of the glycol charge to adjust tensile elongation and water absorption. The first stage at 160–180°C removes water of polyesterification at atmospheric pressure; the second stage at 180–210°C under 20–50 kPa reduces acid value to 15–30 mg KOH/g. Process viscosity is controlled at 300–800 mPa·s at 130°C to allow subsequent styrene dilution without excessive heat input.
Styrene monomer is added at 30–45 wt% of total resin at 70–90°C with hydroquinone inhibitor at 50–100 ppm. The cured resin system uses methyl ethyl ketone peroxide at 1.0–2.0 phr and cobalt naphthenate at 0.2–0.5 phr of a 6% cobalt solution; gel time at 25°C is typically 8–20 min. Laminators monitor cup gel time before each fabricator shift because ambient temperature changes above 5°C alter cure exotherm and glass wet-out. Mechanical properties are validated by ISO 527-2:2012 for tensile strength, ISO 75-2:2013 for heat deflection temperature, and ISO 62:2008 for water absorption. Glass fibre-reinforced laminates with 30 wt% glass content normally exhibit heat deflection temperatures above 70°C. Styrene content above 45 wt% reduces flash point below 31°C and increases workplace VOC exposure; below 30 wt% styrene, laminating viscosity rises above 800 mPa·s and impairs wet-out on continuous glass mat.
Alkyd resin synthesis uses o-Xylene-derived phthalic anhydride as the aromatic dibasic acid component. Medium-oil alkyd formulations consist of 22–28 wt% phthalic anhydride, 8–15 wt% pentaerythritol or glycerol, and 50–60 wt% tall oil fatty acid or soybean oil. The monoglyceride method is used when a single-step alcoholysis is required: oil and polyol are heated under nitrogen to 230–240°C in a stainless steel or glass-lined reactor, then phthalic anhydride is charged at 160–180°C to avoid sublimation into the condenser. Esterification continues at 220–240°C with xylene azeotropic reflux; water is removed through a decanter. Longer oil length of 60–70% lowers phthalic anhydride content to 15–20 wt% and yields softer air-drying films, while short-oil alkyds with 30–45% oil produce harder baking finishes.
Final acid number is reduced to 5–12 mg KOH/g for long-oil air-drying resins and below 10 mg KOH/g for medium-oil resins. Viscosity is controlled at 50–100 dPa·s at 25°C and 60% solids in white spirit or xylene. Drier metal additions are 0.03–0.08 wt% cobalt and 0.10–0.30 wt% zirconium or calcium based on resin solids; excess cobalt above 0.10 wt% accelerates skin formation and reduces through-dry uniformity. VOC emission compliance for architectural and industrial coatings is governed by EU Directive 2004/42/EC; test methods include ISO 11890-2:2020 for VOC determination. End products are brush-applied enamels, machinery finishes, and metal primers where phthalic anhydride content contributes hardness, chemical resistance, and adhesion to ferrous substrates.
Following ammoxidation of o-Xylene over a promoted vanadium-antimony-titanium oxide catalyst, phthalonitrile becomes the aromatic dinitrile intermediate for copper phthalocyanine pigments. The reaction is carried out at 350–420°C with an ammonia-to-o-Xylene molar ratio of 6:1 to 8:1 and an air-to-o-Xylene molar ratio of 40:1 to 60:1. Published single-pass phthalonitrile yield data for this configuration generally fall between 55 mol% and 70 mol%, with the balance reported as phthalimide, maleic anhydride, and COx. The reactor uses a fluidised bed or fixed bed with heat-transfer salt cooling to prevent hot spots above 450°C; ammonia slip below 200 ppm is targeted before off-gas treatment.
Phthalonitrile is then converted to copper phthalocyanine by reaction with copper(I) chloride, urea, and ammonium molybdate in a high-boiling solvent at 140–200°C. The crude pigment is conditioned by acid pasting or salt milling to produce Pigment Blue 15, Pigment Blue 15:3, or Pigment Green 7. Paint, ink, and plastics masterbatch grades are specified by ASTM D3256 for chemical composition and heavy-metal residues. Toy and childcare material applications require compliance with EN 71-3 migration limits for barium, copper, and other elements; industrial coatings and polymer converters must verify REACH registration and any relevant food-contact approval. Phthalocyanine pigment grades from o-Xylene-derived phthalonitrile are valued for high tinting strength, lightfastness, and heat resistance to 250–300°C in polyolefin masterbatches.
Because methyl-group oxidation competes with consecutive phthalic acid formation, liquid-phase partial oxidation of o-Xylene to o-toluic acid (CAS 118-90-1) is operated at low conversion on multi-purpose fine-chemical lines. The system uses air, acetic acid solvent, and a cobalt/manganese/bromide catalyst at 120–150°C under 0.5–2.0 MPa. Stoichiometric oxidation of one methyl group requires 1.5 mol O₂ per mol o-Xylene, but further oxidation to phthalic acid competes strongly. Published data for this specific configuration is limited; bench-scale studies typically report o-toluic acid selectivity below 70 mol% unless the reaction is stopped at low conversion. The crude acid is recovered by crystallisation, washed with cold acetic acid, and vacuum dried at 60–80°C.
Downstream derivatives include 2-methylbenzoyl chloride, which is used in pharmaceutical and pesticide synthesis. Process compliance is governed primarily by REACH registration and local workplace limit values for cobalt and acetic acid. Bulk storage requires stainless steel or glass-lined equipment because o-toluic acid is a weak carboxylic acid with a melting point near 103–105°C; transfer lines are heat-traced to 110–120°C. This route is commercially smaller than phthalic anhydride production and is generally operated as a campaign process rather than a continuous oxidation train.
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Ortho-xylene, systematic name 1,2-dimethylbenzene, is supplied as a bulk C8 aromatic isomer under the commercial product designation O-Xylene. The material is identified by CAS 95-47-6, molecular formula C₈H₁₀, and molar mass 106.16 g/mol. In merchant trade the product model is commonly expressed by assay, with ASTM D5471 providing the specification for o-xylene 980, corresponding to a minimum ortho-xylene content of 98.0 wt%. Higher-purity contracts frequently require 99.0 wt% minimum assay because residual ethylbenzene, para-xylene, and meta-xylene introduce downstream separation burdens or oxidation selectivity losses. The product is a clear flammable liquid at ambient temperature, produced by superfractionation and extractive distillation of mixed xylene streams from catalytic reforming, toluene disproportionation, or pyrolysis gasoline.
In a typical production sequence, mixed xylenes derived from reformate or pyrolysis gasoline contain ortho-xylene at approximately 20–25 wt%. Because the boiling points of the C8 aromatic isomers are separated by only a few degrees, recovery of ortho-xylene requires high-efficiency distillation with a pronounced reflux ratio. The column reboiler is operated under vacuum to limit bottoms temperature and prevent thermal degradation of heavy aromatic co-boilers. Product collected from the ortho-xylene draw is then polished through clay treaters or selective adsorption to reduce olefinic and sulfur species. This separation step is why high-purity ortho-xylene differs from mixed xylene solvent: the ortho isomer has a narrower boiling range and a controlled impurity profile suited to catalytic oxidation rather than general solvent end uses.
Typical physical and specification data for a high-purity merchant o-xylene are summarized below. The values are representative of a 99.0 wt% assay grade; acceptance should be based on the batch-specific certificate of analysis.
| Property | Typical value | Test method |
|---|---|---|
| Purity | ≥99.0 wt% | ASTM D5471 / GC assay |
| Boiling range | 144.2–144.6 °C | ASTM D86 |
| Density at 20 °C | 0.880 g/cm³ | ASTM D4052 |
| Freezing point | -25.2 °C | Published NIST/API data |
| Flash point, closed cup | 32 °C | ASTM D56 |
| Water content | ≤0.05 wt% | ASTM E203 |
| Color, Pt-Co scale | ≤15 | ASTM D1209 |
| Total sulfur | ≤1 mg/kg | ASTM D5453 |
| Non-aromatic hydrocarbons | ≤0.2 wt% | ASTM D5471 / GC |
The dominant use of o-xylene is partial oxidation to phthalic anhydride in fixed-bed multitubular reactors. Consequently, the economically relevant limits on product purity are catalyst-related rather than purely distillation-based. Sulfur compounds, chloride species, and heavy aromatic residues are controlled to low milligram-per-kilogram ranges because they compete for active sites on the vanadium pentoxide–titanium dioxide catalyst or accumulate as non-volatile fouling layers on the heat-transfer surface. The exothermic oxidation is carried out with molten salt cooling to hold catalyst tube temperatures within a published operating window of approximately 360 °C to 420 °C. Local hot spots above 450 °C promote over-oxidation to maleic anhydride and carbon oxides, reducing phthalic anhydride selectivity. Because the flash point is 32 °C and the published lower flammability limit is 0.9 vol%, feed vaporization and air mixing are interlocked with online flammable gas detection and automatic steam or nitrogen purge systems.
Published technical literature describes production-scale phthalic anhydride reactors as multitubular units with tube inner diameters in the range of 20–30 mm and tube lengths of 3–5 m. Exact tube geometry, catalyst particle size, and salt-bath circulation rate are licensor-specific, but the process objective is consistent: maintain a low pressure drop across the catalytic bed, maximize heat removal from the tube wall, and avoid localized temperature excursions that shift selectivity away from phthalic anhydride. Batch-to-batch variability in o-xylene feed purity is monitored by automated gas chromatography on the oxidation unit feed tank. A shift in m-xylene or ethylbenzene concentration above the contract limit triggers diversion to the mixed-xylene pool because off-spec o-xylene cannot be corrected by simple blending without also increasing total non-ortho components.
The boiling-point spread among C8 aromatic isomers is narrow but sufficient for separation by high-efficiency distillation. Ortho-xylene is the highest-boiling of the xylenes at 144.4 °C, whereas meta-xylene and para-xylene boil at 139.1 °C and 138.4 °C, respectively; ethylbenzene boils at 136.2 °C. This places o-xylene in the column bottoms stream, which is advantageous for partial oxidation feedstock quality but requires separation from heavy aromatics. The melting points show a wider differentiation: o-xylene freezes at -25.2 °C, meta-xylene at -47.9 °C, and para-xylene at 13.3 °C. Para-xylene can therefore be recovered by crystallization, whereas ortho-xylene remains liquid at temperatures that would freeze para-xylene-rich streams. Comparative data are summarized below.
| Property | O-Xylene | m-Xylene | p-Xylene | Ethylbenzene |
|---|---|---|---|---|
| Boiling point | 144.4 °C | 139.1 °C | 138.4 °C | 136.2 °C |
| Freezing point | -25.2 °C | -47.9 °C | 13.3 °C | -95.0 °C |
| Density at 20 °C | 0.880 g/cm³ | 0.864 g/cm³ | 0.861 g/cm³ | 0.867 g/cm³ |
| Primary industrial route | Phthalic anhydride oxidation | Isophthalic acid and gasoline blending | Purified terephthalic acid | Styrene monomer |
Although o-xylene is structurally similar to mixed xylene solvent, the ortho isomer has a slightly higher boiling point and a narrower boiling range. This reduces the rate of evaporative cooling at a given air flow on a coating line, which can change flash-off behavior in hot-weather automotive refinish operations. Formulation adjustments involving retarder solvents or lower-viscosity resins are therefore required when replacing mixed xylenes with o-xylene. The product is subject to the same occupational exposure framework as mixed xylenes under most jurisdictions: the European indicative occupational exposure limit is 50 ppm as an 8-hour time-weighted average with a short-term exposure limit of 100 ppm, while the United States OSHA permissible exposure limit for xylenes is 100 ppm as an 8-hour time-weighted average. Monitoring programs in coating and ink manufacturing typically use carbon-tube sampling followed by gas chromatography with flame ionization detection.
Selective oxidation is not the only route that imposes purity constraints. When ortho-xylene is nitrated, sulfonated, or chloromethylated to produce substituted aromatic intermediates, the presence of para-xylene and meta-xylene can generate co-products with closely related boiling points, complicating distillation and raising disposal costs. For example, nitration of o-xylene yields a mixture of nitro-o-xylene isomers; residual meta-xylene in the feed would be nitrated to nitro-meta-xylene, which is difficult to separate from the desired ortho-nitrated product by conventional distillation. Consequently, downstream specialty chemical producers may specify 99.5 wt% or higher assay with maximum m-xylene plus p-xylene content below 0.2 wt%. Published data for exact yield losses in these specific configurations is limited, and each production site typically validates the acceptable impurity profile against its equipment separation capability.
Storage and transfer systems for o-xylene are designed to flammable liquid code requirements. With a closed-cup flash point of 32 °C, the product is classified as a category 3 flammable liquid under GHS. Tanks and piping are constructed of carbon steel or stainless steel; copper and zinc-containing alloys are avoided because dissolved metals can catalyze oxidative discoloration. Nitrogen blanketing is applied on tanks operated above the ambient flash point or where exposure to atmospheric oxygen would raise gum formation risk. Transfer pumps are specified with mechanical seals rated for aromatic service, and loading lines are grounded and bonded to a resistance below 106 Ω to dissipate static charge. Bunded storage areas are sized in accordance with local regulations derived from NFPA 30 or the relevant national fire code. Spill response includes vapor-suppressing foam and hydrocarbon-compatible absorbents. Respiratory protection during tank cleaning follows air-purifying respirators with organic vapor cartridges only where oxygen content and contaminant concentrations are confirmed by direct-reading instruments.