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HS Code |
777426 |
| Chemical Name | Hexadecyl 3,4,5-Trihydroxybenzoate |
| Molecular Formula | C23H38O5 |
| Molecular Weight | 394.54 g/mol |
| Cas Number | 2081-12-1 |
| Appearance | White to off-white powder |
| Melting Point | 74-76°C |
| Solubility | Insoluble in water, soluble in organic solvents |
| Storage Temperature | Room temperature, dry, dark place |
| Purity | Typically ≥98% |
| Iupac Name | hexadecyl 3,4,5-trihydroxybenzoate |
| Synonyms | Hexadecyl gallate |
| Structural Formula | C6H2(OH)3COOC16H33 |
| Applications | Antioxidant, cosmetic ingredient |
As an accredited Hexadecyl 3,4,5-Trihydroxybenzoate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Hexadecyl 3,4,5-Trihydroxybenzoate, 5 grams, supplied in a sealed amber glass bottle with tamper-evident cap and detailed label. |
| Shipping | Hexadecyl 3,4,5-Trihydroxybenzoate is shipped in tightly sealed containers, protected from light and moisture. It is transported as a non-hazardous chemical under ambient conditions. Standard protocols for chemical shipments are followed to ensure product integrity and compliance with safety regulations during transit. Packaging is appropriately labeled and padded to prevent damage. |
| Storage | Hexadecyl 3,4,5-Trihydroxybenzoate should be stored in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of heat, ignition, and direct sunlight. Protect from moisture and incompatible substances such as strong oxidizing agents. Store at room temperature, and avoid prolonged exposure to air to prevent degradation. Ensure proper labeling and follow all safety regulations. |
Applications of Hexadecyl 3,4,5-Trihydroxybenzoate in Industrial ManufacturingHexadecyl 3,4,5-Trihydroxybenzoate supports several high-value industrial segments with proven functionality. We manufacture this compound specifically for advanced downstream formulations, providing excellent stability and efficient performance across its primary industrial uses. 1. High-End Cosmetic Emulsion StabilizersCosmetic manufacturers select this material for premium emulsion stabilization in skin creams and lotions, owing to its amphiphilic structure and strong antioxidant properties. Technicians dissolve it in the oil phase, optimizing rheology and product shelf life, especially in anti-aging and whitening products. Incorporation complies with international cosmetic safety and purity benchmarks, and our technical team precisely matches customer requirements for purity, melting point, and microbiological control during production batches. Industry compliance standards
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2. Pharmaceutical Topical FormulationsPharmaceutical manufacturers use this compound in certain topical ointments and gels for its high purity, biocompatibility, and antioxidant support within pharmaceutical-grade matrices. Formulators incorporate it to modulate lipid phase rheology and maintain active stability over shelf life requirements. The compound also demonstrates good compatibility with hydrophobic actives in prescription skin barrier repair creams, adhering to stringent pharmacopoeia-grade specifications and validated by documented batch traceability. Industry compliance standards
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3. Polymeric Film Coating Additives in Food PackagingAdvanced polymer film manufacturers integrate the ingredient as a functional additive in food packaging films, leveraging its antioxidant properties to protect packaged contents against lipid oxidation. Consistent supply of high-purity material allows processors to meet strict food contact material standards. Its incorporation enhances resistance of edible oils and dairy-products to oxidative spoilage during storage and transit, and facilitates compliance headroom for regulatory migration testing. Industry compliance standards
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4. Industrial Lubricant Formulation StabilizersMain lubricant producers utilize this compound to boost oxidative stability of synthetic and semi-synthetic base fluids, especially in high-temperature grease and industrial gear oils. Our QC system ensures batch-to-batch purity and low water content, preventing unwanted interactions in finished lube formulations. Lubricant chemists blend it into base stocks using controlled shear mixing, achieving consistent additive performance for long-service and food-grade applications where antioxidant support is mandated. Industry compliance standards
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In the daily routine of our production plant, few products draw as much discussion among our chemists as hexadecyl 3,4,5-trihydroxybenzoate. Years of hands-on manufacturing experience taught us this compound brings significant value for formulators demanding consistent ester-based solutions. Our model lineup reflects a focus on straightforward purity, practical usability, and clear batch traceability—traits our regular partners insist on. Everyone in the laboratory, from R&D to quality control, knows how even small variations in ester composition or purity impact a final product. For applications in specialty coatings or personal care products, trace contaminants or stability problems create headaches downstream, so we make reliability the top priority from the first day of any campaign.
Chemists working in functional coatings, antioxidant formulations, or personal care always look for esters that handle with predictability. Hexadecyl 3,4,5-trihydroxybenzoate regularly surfaces in our conversations as a compound that offers more than just raw technical values. Our plant's large-scale esterification reactors, controlled transport lines, and real-world production process keep material consistency at a level many R&D labs just don’t see in small pilot batches. We know people formulate for stability, ease of dispersion, and targeted reactivity, so we batch test with these features in mind. Years ago, we saw wide swings in product performance when sourcing from small-scale labs lacking robust controls, so one of our long-standing goals involves eliminating those headaches. Confidence in every drum shipped comes from daily verification, hands-on inspection, and continuous monitoring of key properties like hydroxyl number or residual acid.
For anyone tasked with scaling up from lab stage to commercial production, knowledge of real batch-to-batch behavior earns trust. Formulators want results that mirror their bench data when transitioning to bulk supply. Some materials only shine at small quantities. Our handling of hexadecyl 3,4,5-trihydroxybenzoate comes informed by years of monitoring production on both small and full-scale lines. With each run, we tweak parameters based on firsthand feedback—this keeps us closely connected to the end use conditions researchers experience. Neighborhood plants producing for both regional and multinational requirements understand this pressure. Short-term cost savings mean nothing if the raw material batch ends up introducing instability or impacting appearance in personal care bases, antioxidants, or advanced coatings. Our crystal-clear focus stays on producing batches that behave identically across hundreds of metric tons.
Producing hexadecyl 3,4,5-trihydroxybenzoate at industrial scale presents challenges. Throughout our experience, several strict technical indicators draw real attention: color grade, moisture level at the ppm range, precise melting point, and a demanding standard for heavy metal residue. These statistics do not just look good in a data file; our customers notice any departure in physical appearance under routine quality checks. Physical form, flowability, and ease of handling show up constantly in feedback sessions with our partners, pushing us to refine our post-synthesis washing, drying, and packaging steps. Moisture pick-up and handling losses create invisible problems in sensitive manufacturing pipelines, so we invest in closed transfer systems and low-humidity storage.
Repeated pilot trials led us to settle on technical grade and high purity specifications targeting those building functional formulations or developing new bio-based alternatives. For cosmetic and food-contact applications, we only release material after more exhaustive testing for by-products and unknown impurities—less about just meeting minimum thresholds, more about eliminating doubts before the product gets further processed or packaged. We regularly run spectrographic examinations and cross-lab verifications, since trust among colleagues doing scale-up only grows with open sharing of analytical data.
Hexadecyl 3,4,5-trihydroxybenzoate drew increasing interest in recent years as global brands move toward higher functionality and green chemistry. Now, as sustainability targets drive users to look for renewable ingredients and biodegradable alternatives, the ester’s specific structure—with a long alkyl chain and phenolic ring—lets product developers adjust performance properties not always possible with legacy benzoate esters. In functional coatings, the addition often contributes to tailored hydrophobicity. In antioxidant systems, the ortho and para hydroxyl groups provide a chemical backbone supporting radical scavenging and shelf-life extension.
Typical substitutes—short-chain alkyl esters or non-modified benzoates—fall short in thermal stability and long-term compatibility with advanced polymer matrices. Formulators working with newer bioplastics or multi-phase creams report better batch appearance, smoother blending, and less risk of phase separation when using this molecule in the right dosage. Our commercial feedback cycle means we take these action points and feedback directly into production planning. Rapid shifts in raw material sourcing introduce volatility in the supply of high-purity aromatic feedstocks, so we stay focused on traceable supply chains and risk-managed warehouse stock.
End users regularly compare hexadecyl 3,4,5-trihydroxybenzoate to more common esters like methyl or ethyl gallates or even other alkyl gallate derivatives. Our own technical teams run batch comparisons under actual use conditions: different temperatures, various solvents, and product matrices common in both industrial and consumer formulations. The long C16 alkyl chain in this molecule impacts solubility, spreading, and interaction with hydrophobic and amphiphilic carriers. In real production runs, product developers find fewer issues with unpleasant ‘bloom’ or separation. The waxy character makes it less dusty than short-chain esters—an important factor when feeding into automated lipid lines or powder blend systems, where airborne loss can slow down processing and create contamination hazards.
Pushback from some about higher cost or more complex sourcing usually melts away after a few months of process improvement. Feedback from our partners shows downstream waste and reprocessing falls when moving to longer alkyl chain esters due to fewer issues with unforeseen crystallization or settling out in storage tanks. C16-based esters typically offer better performance for time-release and slow-melting profiles in thermal-stress applications, and we support these claims with direct case reports. Those in antioxidant research often see a broader effective concentration window than when using shorter esters, which helps reduce trial-and-error in the development stage.
The aromatic core, rich in hydroxyl groups, gives this ester a double advantage: it holds up under heat for baked or processed products, while still offering good skin-friendly properties tested through in-house simulated patch studies. Cosmetic testers flagged reduced stinging or irritation compared to some other antioxidants or preservatives in leave-on formulations, an observation we checked through third-party tests and in-house safety teams. We keep these real-world observations in mind every time we adjust our quality targets or consider raw material changes—actual user experience matters more than just technical charts.
Our path to a reliable supply of hexadecyl 3,4,5-trihydroxybenzoate followed a pattern every chemist in manufacturing will recognize: tightening purity controls, tracking raw material lots, and pushing every operator to verify process parameters by hand as well as by instrument. In early batches, trace discoloration or slight odor issues cropped up whenever esterification conditions slipped. Fine-tuning temperature profiles, reactor agitation, and post-synthesis clean-up brought batch yields up and let us pull color and odor to levels matching even the tightest cosmetic requirements. Several batches sit in our in-house storage, aging under controlled humidity and light, so we can run stability studies and spot potential storage issues before our customers ever open a drum.
Quality assurance doesn’t just run on certified instruments, but through close connections with every operator and shift leader. Regular round-table meetings cover production anomalies and feedback from downstream formulators. Our quality lab controls moisture, heavy metals, and residual acid numbers to a tighter spec than regulatory limits demand. Every sample sent to product developers comes from sealed, traceable lots, so any issue triggers a review from ingredients used to packaging timeframes. If a customer’s own application turns up a problem—unexpected interactions, trouble at the mill, off-odor—our engineers run in-parallel testing and adjust our process to match reality on the ground.
Plants running on tight delivery schedules expect more than a piece of paper listing technical parameters. Over the years, we found that predictable packaging, smart stocking, and full lot traceability make life easier for everyone, especially for clients running back-to-back production with limited warehousing. Drums of hexadecyl 3,4,5-trihydroxybenzoate move from storage to delivery points under documented chain-of-custody, so tracking any unusual batch to its origin remains straightforward. Clients needing custom pack sizes or high-speed unloading facilities get support from our logistics team with experience in handling powdery or waxy solids sensitive to dust or heat.
Even in years of tight market dynamics, we maintained shipment schedules by planning far ahead with raw material suppliers and setting aside buffer stocks when seasonal swings threatened to slow down fulfillment. Plant managers in cosmetics, food packaging, and technical coatings use standing orders and just-in-time delivery to keep their own operations lean; we align our output planning to match those rhythms. In our experience, last-minute sourcing creates more problems than it solves, so we encourage early demand forecasts and open sharing of upcoming scale-up projects. Joint planning means both sides keep ahead of regulatory changes, and no one is left short-handed on a key ingredient during a product launch or plant trial.
Many R&D advances come only with field testing and open technical exchange. Leading up to wider roll-out, our technical service group sent samples for application trials in water-based and solvent-based systems, personal care bases, and antioxidant blends for food packaging. Reports from formulation scientists pin down the specific advantages seen with C16 esters—especially in skin-feel, shelf stability, and blurring/soft-focus effects in cream matrices. For technical coatings, engineers pointed out improved weathering, lower surface tack, and more resistance to yellowing or UV breakdown versus short-chain benzoates or simpler antioxidants.
We run in-house performance trials like accelerated stability, pigment wet-out, and migration testing to replicate what our clients test in their own plants. Working side-by-side with external partners—sometimes under confidentiality when new product ideas are on the line—built up a two-way trust. If something unexpected turns up in field use—a new incompatibility, a raw material change, an unforeseen issue under regulatory inspection—we pivot both our manufacturing and quality review to solve it quickly. This responsiveness came from years of practicing open-door communication with the scientists and purchasing managers who depend on us.
New rules for chemical sourcing, safe ingredient disclosure, and global trade force all manufacturers to upgrade data management and compliance. Hexadecyl 3,4,5-trihydroxybenzoate, with its use in food contact or personal care, draws special scrutiny from both regulators and procurement teams trying to check every potential exposure risk. Our process documentation, from raw material supplier audit to batch reprocessing record, meets high standards set by both local and international authorities. Clients preparing for an on-site review or regulatory filing ask us for expanded data sheets, historical quality trends, supply chain declarations, and impurity breakdowns.
Fielding those requests, our compliance team focuses on providing full transparency about every input and every step. Where regulators update threshold values or reporting requirements, we pre-test batches for new parameters, so when new standards appear, our products already comply. Coffees among compliance officers, plant managers, and quality engineers often turn into mini-training sessions so everyone upstream and downstream shares their knowledge. We built a culture of cooperation with inspectors, external auditors, and internal process leads, knowing that surprises in compliance always slow down business and damage long-term partnerships.
Experience shows that productivity and end product performance often rises or falls depending on the predictability and functional value of a single key ingredient. Formulators in cosmetics and coatings credit their ability to push new textures, lasting wear, and subtle effects to the inclusion of specialty esters like hexadecyl 3,4,5-trihydroxybenzoate. In antioxidant systems, food preservation, or packaging, longer shelf life and cleaner ingredient labels now drive new product lines. This compound’s unique balance between lipophilicity from its long alkyl side and reactivity from its aromatic hydroxyls set it apart from more basic esters.
From the manufacturer's bench, we see the full arc of challenges: from optimizing throughput, to helping customers reduce fines and dust in mixing, to supporting a cleaner, more consistent product that survives transportation through tough climate zones. Our focus on continuous improvement, even for small operational tasks like improved drum sealing or smarter pallet stacking, ripples through the supply chain. Product longevity—whether measured in physical storage life or sustained end-use performance—always comes back to well-made, fully traceable material.
We built our business around the belief that specialty chemical ingredients work best when developed in close partnership with people actually putting them to use. Hexadecyl 3,4,5-trihydroxybenzoate stands as an example of what persistent process development, real-world testing, and open technical feedback can bring to the table. Results from past collaborations, be they in UV-stable exterior coatings, next-generation emulsion blends, or scalable preservative systems, sharpened our awareness of what matters beyond just technical sheets: clean supply, predictable process fit, and practical performance in the toughest applications. As manufacturers, our challenge and satisfaction both come from solving the problems that arise once an ingredient leaves our plant and starts supporting the next breakthrough in someone else’s formula.