| HS Code | |
| Product Name | Propylene Glycol Monomethyl Ether |
| Iupac Name | 1-Methoxypropan-2-ol |
| Synonyms | PGME; 1-Methoxy-2-propanol; Methoxypropanol; Propylene glycol methyl ether |
| Cas Number | 107-98-2 |
| Ec Number | 203-539-1 |
| Molecular Formula | C4H10O2 |
| Molecular Weight | 90.12 g/mol |
| Appearance | Colorless liquid |
| Odor | Mild, ether-like |
| Boiling Point | 120 °C |
| Melting Point | -97 °C |
| Flash Point | 32 °C (closed cup) |
| Autoignition Temperature | 270 °C |
| Density | 0.92 g/cm³ at 20 °C |
| Vapor Pressure | 10.9 mmHg at 25 °C |
| Vapor Density | 3.1 (air = 1) |
| Solubility | Miscible with water, alcohols, ethers, and ketones |
| Refractive Index | 1.402 at 20 °C |
| Viscosity | 1.75 mPa·s at 20 °C |
| Ph | 7 (neutral) |
| Partition Coefficient | log Kow = -0.49 |
| Explosive Limits | 1.6% to 13.8% (v/v) in air |
| Evaporation Rate | 0.7 (butyl acetate = 1) |
| Surface Tension | 27.5 mN/m at 20 °C |
As an accredited Propylene Glycol Monomethyl Ether factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Available in 200-liter steel drums and 20-liter polyethylene pails, clearly labeled Propylene Glycol Monomethyl Ether, with flammable-liquid hazard warnings. |
| Container Loading (20′ FCL) | Container Loading (20′ FCL): Propylene Glycol Monomethyl Ether in palletized drums/IBCs, UN 3092 Class 3 labeled, secured, ventilated, stowed to prevent shifting/leakage. |
| Shipping | During transport, propylene glycol monomethyl ether (1-methoxy-2-propanol) is shipped as UN3092, Proper Shipping Name: 1-Methoxy-2-propanol, Hazard Class 3, Packing Group III. It is a flammable liquid requiring UN-approved packaging, Class 3 labels, and compliance with DOT, IATA, or IMDG regulations; keep away from ignition sources and segregate from strong oxidizers. |
| Storage | Store Propylene Glycol Monomethyl Ether in a cool, dry, well-ventilated, flammable-liquid storage area away from heat, sparks, open flames, oxidizers, and acids. Keep containers tightly closed, upright, labeled, and grounded/bonded during transfer. Use explosion-proof equipment and secondary containment. Protect from sunlight and temperatures above 30°C. Avoid inhalation of vapors. Store only in approved containers. Ensure adequate ventilation and spill containment. |
| Shelf Life | Shelf life: typically 2–3 years if stored sealed in a cool, dry, well-ventilated area, away from ignition sources, moisture, and sunlight. |
In waterborne acrylic and styrene-acrylic emulsion coatings, propylene glycol monomethyl ether is introduced during let-down rather than pigment grinding because its polar ether and hydroxyl groups compete with dispersant anchoring sites on titanium dioxide and carbon black. A high-shear Cowles disperser operating at 7–10 m/s peripheral speed is used for the pigment stage; PGME is added at 30–50 g/kg resin solids only after the grind has reached a Hegman gauge reading of 6–7 according to ISO 1524:2022. The solvent partitions between the aqueous phase and the latex particle surface and reduces the minimum film formation temperature of the coalescing polymer; ASTM D2354 MFFT bars frequently record a 5–12 K depression at these doses, but the exact response is controlled by methacrylic acid content, particle size distribution, and the neutralizer counterion. The Hansen solubility parameters of PGME—δD=15.6 MPa0.5, δP=6.3 MPa0.5, δH=11.6 MPa0.5—place the solvent at the polar edge of the solubility window for butyl acrylate/methyl methacrylate copolymers, allowing controlled plasticization without complete dissolution at ambient temperature. Stormer viscosity measured by ASTM D562 at 25°C shifts by less than 5 KU when PGME is post-added at 40 g/kg in a 42% solids styrene-acrylic dispersion; published data for this specific configuration is limited, but plant-side measurements confirm that overdosing above 50 g/kg extends open time enough to reduce sag resistance under ASTM D4400. The volatile organic content of the ready-to-use product is determined by ISO 11890-2:2020; PGME has a boiling point of 120°C at 101.3 kPa and is counted as VOC under EU Directive 2004/42/EC, so reducing coalescent loading or blending with non-VOC plasticizers is required when formulators approach lower VOC limits. Airless spray application at 10–12 MPa with tip sizes 0.013–0.015 inch shows prolonged wet edge on primed wood and metal substrates, while pendulum hardness development measured by ISO 1522:2022 is retarded relative to faster-evaporating tertiary alcohol coalescents. End products include waterborne architectural trim enamels, direct-to-metal industrial topcoats, and clear wood varnishes applied in factory spray lines.
| Standard | Parameter | Equipment / procedure |
|---|---|---|
| ISO 11890-2:2020 | VOC content | Gas chromatography after sample dissolution |
| ASTM D2354 | Minimum film formation temperature | MFFT bar with controlled temperature gradient |
| ASTM D562 | Stormer viscosity | Rotating paddle viscometer at 25°C |
| ISO 1522:2022 | Pendulum damping hardness | König pendulum |
| ISO 1524:2022 | Dispersion fineness | Hegman gauge |
Replacement of ethylene glycol methyl ether and ethylene glycol ethyl ether in semiconductor photoresist thinning and edge bead removal is driven by lower acute toxicity and improved water miscibility for rinse removal. High-purity PGME used for these processes is supplied with sodium, potassium, iron, copper, zinc, and aluminium each below 10 μg/kg as measured by ICP-MS after 50:1 preconcentration; particle counts are specified below 100 particles/mL at 0.5 μm on a liquid particle counter. The solvent is dispensed in a coater/developer cluster at 800–3000 rpm; edge bead removal nozzles deliver 0.5–2.0 mL per wafer at a backside rinse pressure of 0.05–0.15 MPa. PGME thins novolac resists without inducing the same degree of polymer precipitation as acetone; dilution to 15–25% by volume lowers resist viscosity by 30–50%, but each resist grade follows a separate dilution curve. Post-softbake inspection at 90–110°C uses bright-field microscopy to compare edge residue after development; defect density shifts are assessed against a locked baseline on 300 mm wafers. The closed-cup flash point of 32°C measured by ASTM D56 places PGME in Class IC flammable liquid service under NFPA 30, and dispensing systems must comply with NFPA 30 and SEMI S2 for electrical bonding and exhaust. Because PGME is fully miscible with water, DI water rinses remove ionic residues after edge bead removal; however, the waste stream contains photoacid generators and photoresist polymer and must be segregated from solvent recovery systems. Published data for advanced-node defect density shifts is limited; split-lot qualification under actual track exhaust conditions is recommended before full substitution.
| Impurity | Specification limit | Analytical method |
|---|---|---|
| Sodium | 10 μg/kg | ICP-MS after 50:1 preconcentration |
| Potassium | 10 μg/kg | ICP-MS after 50:1 preconcentration |
| Iron | 10 μg/kg | ICP-MS after 50:1 preconcentration |
| Copper | 5 μg/kg | ICP-MS after 50:1 preconcentration |
| Zinc | 5 μg/kg | ICP-MS after 50:1 preconcentration |
| Particles ≥ 0.5 μm | 100/mL | Liquid particle counter |
For solvent-based flexographic and gravure printing inks on polyethylene film and metalized polyester substrates, PGME functions as a mid-boiling co-solvent that retards drying at transfer speeds above 250 m/min and improves resin resolubility in the anilox cells. The relative evaporation rate measured by ASTM D3539 positions PGME between ethyl acetate and propylene glycol monomethyl ether acetate; its boiling point of 120°C provides a solvent-release profile that reduces pinholing and ghosting in high-speed flexo units. Nitrocellulose-based inks commonly use PGME at 5–20% of the solvent fraction; polyamide resin systems accept similar loadings when ethanol or n-propyl acetate is the primary solvent. Press-side viscosity is checked with ISO 2431 flow cups of 4 mm or 5 mm orifice; the final viscosity target is typically 20–26 s for gravure and 25–35 s for flexographic units, but these ranges shift with anilox line screen, plate durometer, doctor blade angle, and press speed. Ink transfer is evaluated on a laboratory flexographic print proofer with 400-line/cm anilox and 0.50–0.55 g/m² coat weight; optical density change after 2000 m of continuous printing is recorded against a locked baseline. Food-contact packaging ink compliance is not automatically conferred by the choice of solvent; the converter must verify migration under the applicable EU Plastics Regulation (EU) No 10/2011 or national print ink ordinances such as Swiss SR 817.023.21, with VOC determination by ISO 11890-2:2020 and retained solvent analysis by headspace gas chromatography after print. PGME is not suitable as a sole letdown solvent for overdiluted inks because its water miscibility can draw condensed moisture into the press; at relative humidity above 85%, a co-solvent such as isopropyl acetate is used to avoid conductivity and solubility drift. End products include high-speed film packaging inks, surface print labels, and metalized snack wrappers.
High-ionic-strength industrial degreasers formulated with sodium metasilicate, tetrasodium EDTA, and nonylphenol-free alcohol ethoxylates can phase-separate when the nonionic surfactant cloud point is exceeded. PGME is used at 5–15 wt% in the concentrate as a hydrotrope and coupling glycol ether; it is blended before the addition of silicate because the heat of neutralization of acid phosphate cleaners can raise the mass temperature above 50°C and cause premature solvation of the alcohol ethoxylate. The constructed formula is diluted 1:10 to 1:50 with tap water having hardness up to 300 mg/L as CaCO₃; bath stability at 25°C and 50°C is checked for 24 h in 250 mL cylinders, and any oil separation is read in mL per 100 mL. Cleaning performance is measured by ASTM G122 on steel panels soiled with a 1:1 mineral oil/carbon black mixture; a pressure spray wash unit at 0.7 MPa and 55°C removes at least 95% of the soil within 30 s in optimized formulas, but the result collapses if the surfactant cloud point falls below bath temperature. PGME has a closed-cup flash point of 32°C measured by ASTM D56 and a vapour pressure of 10.9 hPa at 20°C, so concentrates above 15% PGME in 200 L HDPE drums require ventilation and electrostatic bonding during transfer. The solvent is alkali-stable up to pH 12 but is not recommended in chlorine-based hypochlorite disinfectants because the secondary alcohol site undergoes slow oxidation and can form methoxyacetone and short-chain acids. End-use products include phosphate-free aluminium-safe degreasers, commercial kitchen floor cleaners, and ultrasonic cleaning baths operating at 40 kHz.
In emulsifiable concentrate and suspoemulsion crop-protection formulations, PGME is added as a polar co-solvent to prevent crystallization of the active ingredient when the emulsifiable concentrate is diluted into hard water. The solvent is incorporated at 2–15% w/w before the addition of non-ionic emulsifiers such as ethoxylated castor oil or calcium dodecylbenzenesulfonate; addition order is fixed after a 40°C heated blend of the active ingredient and aromatic or paraffinic solvent because PGME reduces viscosity and aids hydration of the emulsifier shell. Emulsion stability is assessed by CIPAC MT 36.1.1 at 5% v/v dilution in CIPAC standard waters A and D; optimum formulations remain a stable blue-white emulsion for 24 h at 30°C without oil separation. The flash point of the solvent concentrate is measured by ASTM D56; PGME at 10% w/w lowers the flash point of a heavy aromatic solvent mixture by approximately 8–12 K relative to the neat solvent, but published data for this specific configuration is limited. In high-shear processing, a rotor-stator mixer at 3000–5000 rpm for 10–15 minutes produces a homogeneous dispersion with particle size below 5 μm; particle size is measured by laser diffraction after accelerated storage at 54°C for 14 days per CIPAC MT 46.3. PGME is not suitable for water-dispersible granules because it is a liquid; in microemulsion systems it must be paired with water to avoid destabilizing the isotropic phase. End products include emulsifiable concentrates for cereals, horticultural crops, and turf.
Propylene glycol monomethyl ether acetate is produced by acid-catalyzed esterification of PGME with acetic acid or by reactive distillation with methyl acetate. The batch route uses a glass-lined reactor with overhead total condenser and decanter; water is removed as a water-PGME azeotrope or by excess acetic acid to drive conversion. Reaction temperatures are held at 100–130°C; addition of a sulfonic acid catalyst such as methanesulfonic acid at 0.1–0.3 wt% yields esterification conversions above 95% after 6–10 h. The crude ester is washed with dilute sodium carbonate to remove residual acid catalyst and then fractionally distilled at atmospheric or reduced pressure; the distillation range is measured by ASTM D1078. Final PMA specification typically requires ≥99.5% purity by GC-FID, water below 0.05% by Karl Fischer titration (ASTM E203), and color below 10 APHA by ASTM D1209. The process is not suitable for continuous plug-flow photochemical or membrane systems without stripping water; PGME at temperatures above 140°C can form trace propylene glycol and ether cleavage products. End-product PMA is sold into coating, ink, and electronic chemical markets where its lower water solubility relative to PGME is preferred.
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Propylene Glycol Monomethyl Ether (PM; 1-methoxy-2-propanol; CAS 107-98-2; molecular weight 90.12 g/mol) is a clear, medium-evaporating glycol ether produced by catalytic addition of methanol to propylene oxide. The industrial material is predominantly 1-methoxy-2-propanol, with 2-methoxy-1-propanol controlled as a minor isomer. Commercial grades include technical, coalescing, and low-water/low-ion electronic variants; representative trade designations include Dowanol PM and Arcosolv PM, although exact specifications differ by manufacturer. Incoming QC limits for technical grade commonly cite assay ≥99.5 wt%, water ≤0.10 wt% by ASTM E203, acidity as acetic acid ≤0.01 wt% by ASTM D1613, color ≤10 Pt-Co by ASTM D1209, and distillation range 118–122 °C at 101.3 kPa by ASTM D1078. Density at 20 °C is 0.916–0.921 g/cm³ by ASTM D4052; closed-cup flash point is approximately 31 °C by ASTM D3278; vapor pressure at 20 °C is approximately 11.5 hPa. The material is miscible with water and most polar organic solvents.
| Parameter | Limit | Test method |
|---|---|---|
| Assay | ≥ 99.5 wt% | GC internal standard |
| Water | ≤ 0.10 wt% | ASTM E203 |
| Acidity as acetic acid | ≤ 0.01 wt% | ASTM D1613 |
| Color | ≤ 10 Pt-Co | ASTM D1209 |
| Distillation range | 118–122 °C | ASTM D1078 |
| Density at 20 °C | 0.916–0.921 g/cm³ | ASTM D4052 |
| Refractive index at 20 °C | 1.403–1.405 | ASTM D1218 |
Replacement of ethylene glycol monomethyl ether with propylene glycol monomethyl ether in coating and cleaner formulations is driven primarily by the absence of harmonized reproductive toxicity classification for PM under Regulation (EC) No 1272/2008. Ethylene glycol monomethyl ether carries H360D and an ACGIH TLV of 0.1 ppm, whereas PM typically carries an ACGIH TLV of 100 ppm TWA with a STEL of 150 ppm. This distinction permits PM in formulated products where residual worker exposure cannot be controlled below the low limits applied to ethylene glycol ethers. Boiling points are similar: 120 °C for PM and 124 °C for EGME. However, PM has higher dynamic viscosity (1.7 mPa·s at 25 °C) and lower surface tension (27.1 mN/m at 25 °C) than EGME, which influences flow and substrate wetting. Regulatory compliance still requires flammability management because PM is classified as flammable liquid category 3 under CLP, with a closed-cup flash point near 31 °C.
| Property | PM | PMA | DPM | EGME |
|---|---|---|---|---|
| CAS registry | 107-98-2 | 108-65-6 | 34590-94-8 | 109-86-4 |
| Molecular weight (g/mol) | 90.12 | 132.16 | 148.20 | 76.09 |
| Boiling point (°C) | 120 | 146 | 188 | 124 |
| Flash point closed cup (°C) | 31 | 43 | 74 | 39 |
| Evaporation rate (n-butyl acetate = 1) | 0.62 | 0.33 | 0.02 | 0.53 |
| Water solubility at 20 °C | Miscible | Partial (~18 wt%) | Miscible | Miscible |
| Harmonized reprotox classification | Not classified | Not classified | Not classified | H360D |
Addition of 3–8 wt% PM to a waterborne styrene-acrylic latex in the letdown stage reduces minimum film formation temperature and lowers surface tension gradients during high-speed knife-over-roll application. Homogenization is generally achieved with a high-shear disperser operated at impeller tip speeds of 10–18 m/s, followed by vacuum deaeration at -0.08 MPa or below to remove entrained air. pH adjustment of the latex to 8.5–9.5 prior to solvent addition prevents shock flocculation when acid-functional associative thickeners are present. Because PM is hygroscopic, production batches exposed to ambient air above 60% relative humidity can exhibit viscosity drift and reduced gloss retention; bulk storage under dry nitrogen or in sealed vessels is required. Compared with propylene glycol monomethyl ether acetate, PM is faster evaporating and fully water miscible, making it more suitable for aqueous systems but less effective as a tail solvent in humid conditions.
In two-component high-solids polyurethane systems, propylene glycol monomethyl ether is used as a viscosity reducer and pot-life modifier, but its hydroxyl and water content must be controlled. A water content of 0.10 wt% corresponds to 0.9 kg water per 1000 kg solvent and consumes isocyanate at a stoichiometric ratio of 18 g water per equivalent of NCO. Additions above 5 wt% tend to extend open time and improve wetting on steel substrates with surface tension below 35 mN/m, though published data on exact tack-free time in high-solids clearcoats is formulation-dependent. The evaporation rate of 0.62 relative to n-butyl acetate provides a comparatively narrow open window; systems above 65% nonvolatile content may require 0.5–1.5 wt% PMA as a slower tail solvent to prevent sag on vertical surfaces. Production-scale pneumatic agitators at 0.5 kW/m³ are adequate for solvent incorporation into the polyol component, but nitrogen blanketing is recommended because water pickup in the polyol side alters NCO/OH stoichiometry.
Cleaning formulations based on nonionic surfactants and alkali builders use PM as a coupling agent at 2–10 wt% of concentrate. The solvent depresses the cloud point of alcohol ethoxylate systems in a controlled manner, allowing clear single-phase concentrates at 10 °C and preventing separation in low-temperature storage. In immersion cleaning of machined steel parts, PM at 5 wt% in a 5% sodium metasilicate bath reduced oil re-deposition in a 40 kHz ultrasonic tank, but published data for the specific soil matrix is limited. The medium evaporation rate and water miscibility allow rinsing with deionized water at 50 °C without leaving hydrophobic residues. Because PM is hygroscopic, open tank stability in high-humidity plants may require weekly water content monitoring by Karl Fischer titration to maintain concentration control.
In semiconductor and display manufacturing, propylene glycol monomethyl ether is supplied as low-ion electronic grade. Procurement specifications for this configuration often require sodium, potassium, and iron concentrations below 10 µg/kg each by inductively coupled plasma mass spectrometry, chloride below 50 µg/kg, and particles larger than 0.5 µm below 10 counts/mL. The solvent is used as a carrier in photoresist stripper and edge-bead removal formulations; however, published data for specific wafer line defectivity tied to PM lot variation is limited. Because PM leaves minimal ash residue, it is selected over higher-boiling DPM in single-wafer cleaning tools where drying time must remain below 30 seconds at 60 °C. Cleanroom handling requires point-of-use filtration at 0.1 µm to remove particles introduced during distribution; stainless steel transfer lines should be electropolished to Ra 0.25 µm to reduce metal ion contamination.
Storage of technical-grade PM in carbon steel containers is generally acceptable when water content remains below 0.10 wt%, but prolonged contact with mild steel at temperatures above 35 °C can generate measurable iron discoloration. Closed-cup flash point of 31 °C places the material in flammable liquid category 3; storage tanks should be grounded and inerted with nitrogen to maintain vapor space oxygen below 8% where local codes require. The solvent should not be blended with strong oxidizing agents or anhydrous acids because exothermic reactions may occur. Polyethylene and polypropylene are acceptable for small containers, but phenolic epoxy linings are preferred for bulk storage. Published data on long-term storage stability of low-ion PM in fluoropolymer-lined stainless steel at 25 °C indicate negligible specification drift over 12 months when the vapor space is kept dry.