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(chemical structure of hpmc)
Hydroxypropyl methylcellulose (HPMC) consists of cellulose derivatives modified through controlled etherification. The molecular backbone contains β-(1→4)-D-glucopyranosyl units with methoxyl (-OCH3) and hydroxypropyloxyl (-OCH2CH(OH)CH3) substitutions. Typical DS (Degree of Substitution) values range from 1.2 to 2.0 for methoxyl groups and 0.1 to 0.3 MS (Molar Substitution) for hydroxypropyl groups, creating water-soluble polymers with viscosity ranges from 5 mPa·s to 200,000 mPa·s (5% aqueous solution at 20°C).
HPMC's unique structure enables:
Comparative analysis shows 40% better water retention than standard MC (Methylcellulose) in construction materials, reducing curing time by 18-22 hours in concrete applications.
Manufacturer | Substitution Degree | Viscosity Range | Purity (%) | Gel Temp (°C) |
---|---|---|---|---|
Ashland | 1.4-1.8 | 4,000-75,000 | 99.2 | 58-85 |
Dow | 1.3-2.0 | 15-200,000 | 98.8 | 55-90 |
Shin-Etsu | 1.5-1.9 | 400-100,000 | 99.5 | 60-88 |
Custom formulations address:
Case studies demonstrate:
ISO 9001-certified facilities maintain:
Recent developments focus on:
Ongoing research targets viscosity modulation within ±2% batch consistency, building upon the fundamental chemical structure of HPMC.
(chemical structure of hpmc)
A: HPMC (Hydroxypropyl Methylcellulose) consists of a cellulose backbone with methyl (-OCH3) and hydroxypropyl (-OCH2CHOHCH3) substituents attached to hydroxyl groups.
A: The structure is defined by the degree of substitution (DS) of methyl groups and molar substitution (MS) of hydroxypropyl groups on the cellulose chain, influencing its solubility and performance.
A: Key functional groups include ether-linked methyl (-OCH3) and hydroxypropyl (-OCH2CHOHCH3) groups, which modify cellulose's hydrophobicity and gelation properties.
A: Yes, variations in methyl and hydroxypropyl substitution ratios create different HPMC grades with distinct viscosity, thermal gelation, and solubility profiles.
A: The substitution pattern determines properties like water retention, film-forming ability, and stability, making it vital for pharmaceuticals, construction, and food applications.
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