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HS Code |
910375 |
| Product Name | Glycine Hexyl Ester |
| Chemical Formula | C8H17NO2 |
| Cas Number | 2947-00-2 |
| Molecular Weight | 159.23 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Density | Approx. 0.97 g/mL at 25°C |
| Solubility In Water | Slightly soluble |
| Refractive Index | Approx. 1.440 |
| Purity | Typically ≥98% |
| Odor | Characteristic |
| Storage Temperature | Store at 2-8°C |
| Synonyms | Hexyl glycinate |
As an accredited Glycine Hexyl Ester factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Glycine Hexyl Ester is packaged in a 100 g amber glass bottle, sealed with a PTFE-lined cap, and labeled with hazard information. |
| Shipping | Glycine Hexyl Ester should be shipped in tightly sealed containers, protected from moisture, heat, and direct sunlight. Packaging must comply with relevant regulations for chemical transport. Label containers clearly and handle with care to avoid leaks or exposure. Use appropriate cushioning to prevent breakage during transit. |
| Storage | Glycine Hexyl Ester should be stored in a cool, dry, and well-ventilated area, away from direct sunlight and sources of ignition. Keep the container tightly closed and protected from moisture. Store away from incompatible substances, such as strong oxidizing agents and acids. Use designated chemical storage cabinets, and label containers clearly. Prevent contamination by using clean, dry tools and equipment. |
Applications of Glycine Hexyl Ester in Industrial ManufacturingGlycine Hexyl Ester serves as a specialty intermediate and additive across selected chemical manufacturing sectors, valued for its organoleptic profile, amide formation reactivity, and compatibility with regulatory frameworks. Below are distinct downstream application areas, each reflecting genuine industry usage, compliance requirements, typical formulations, process stages, and end products. 1. Flavor and Fragrance Ingredient ManufacturingWith its mild, characteristic odor and excellent stability under processing conditions, Glycine Hexyl Ester functions as a precursor in the synthesis of specialty esters for fine fragrance and flavor compositions. Downstream formulators integrate this ingredient during esterification or amidation steps to enhance fruity, nutty, or creamy notes typical in high-end aroma applications. Compliance with regional and international food additive regulatory frameworks remains essential, with strict purity and residual solvent control in batch release. The raw material’s high solubility in organic media allows precision dosing in compact reactor setups. Industry compliance standards
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2. API Intermediate for Peptide SynthesisPharmaceutical producers utilize Glycine Hexyl Ester as an amino acid ester for constructing peptide units via liquid-phase and solid-phase peptide synthesis (LPPS, SPPS). Its side chain steric profile enables controlled activation, minimizing racemization risk and promoting coupling efficiency for block peptides. Industry customers apply cGMP principles throughout material handling, with batch traceability ensured from the starting material stage. The ester integrates in peptide step additions, requiring defined stoichiometry and solvent selection based on downstream peptide purity targets. Industry compliance standards
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3. Cosmetic Emollient and Transdermal Delivery EnhancerPersonal care manufacturers select Glycine Hexyl Ester for its skin conditioning, spreading properties, and compatibility with oily and aqueous bases. It operates as a penetrant and vehicle in creams, lotions, and specialized dermal delivery systems, supporting uniform active ingredient distribution. Cosmetic formulators comply with INCI labeling and skin safety test protocols, while using the material in cold or warm blending steps dependent on emulsion type. Purity and residual solvent specifications align with global non-pharmaceutical cosmetic regulations, with attention to sensory and stability outcomes. Industry compliance standards
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4. Specialty Polymer Modifier for Advanced CoatingsFormulators in industrial coatings and paints use Glycine Hexyl Ester as a reactive diluent and flexibility enhancer in polyamide-curing systems. Its unique ester-amino dual reactivity allows targeted chain extension and crosslinking with selected resin backbones, improving flexibility and solvent resistance. Compliance involves adherence to both REACH chemical safety and specific national regulations concerning VOC content and migration. Processing engineers dose the ester during prepolymer batch preparation, controlling its level to balance curing speed with film toughness. Quality control closely tracks residual monomer and complete integration metrics. Industry compliance standards
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5. Fine Chemical Synthesis Intermediate in Agrochemical ResearchAgrochemical R&D divisions employ Glycine Hexyl Ester to construct structurally diverse building blocks for crop protection actives. The ester’s functional group reactivity and purity accommodate multi-step reactions, particularly amidation and hydrolysis for N-hexyl-glycine derivatives. Compliant with industrial safe handling codes and multi-national precursor regulations, this intermediate enables low-impurity synthesis routes in pilot and scale-up runs. Analytical teams track conversion and by-product formation via chromatography to match agrochemical premarketing quality demands. Industry compliance standards
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6. Niche Nutraceutical Synthesis and EncapsulationCertain dietary supplement producers use Glycine Hexyl Ester as a functionalized glycine source to prepare amino acid complex derivatives for direct supplementation or microencapsulation. Regulatory and safety teams follow food additive and novel food criteria, especially related to ester-originating glycine modifications. The ingredient incorporates during solution or suspension pre-blending, with strict homogeneity control to guard against formulation drift. Final encapsulation leverages spray drying or beadlet technology to enhance ingredient delivery and stability. Industry compliance standards
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Glycine Hexyl Ester stands as one of our more focused synthetic endeavors. Over the years, our team has spent countless hours in the lab, repeatedly refining esterification techniques to yield a cleaner product with high reproducibility. Many applications call for amino acid esters with specific side chain structures, and the hexyl group gives Glycine Hexyl Ester properties not available in simple methyl or ethyl analogs. Customers in pharmaceutical research, fine chemical synthesis, and specialty formulation come to us for this very molecule—in large part due to our attention to subtle differences in purity, odor, and stability between batches.
The story behind Glycine Hexyl Ester started with increasing requests for specialty esters that could bridge the gap between short and long-chain functionalities. For labs developing prodrug intermediates or testing peptide analogs, the hexyl moiety offers a unique hydrophobicity profile. Traditional glycine esters—methyl, ethyl, isopropyl—have their place for ease of handling. But when a developer needs a longer alkyl group for masking or lipophilicity, none of those quite fit the bill. This molecular tweak also brings improved physical characteristics. Compared to the low molecular weight esters, hexyl esters tend to show better stability under ambient conditions. Our experience demonstrates that they withstand typical shipping and storage scenarios, an outcome directly impacting usable shelf life for our clients.
Our main offering is the highly refined model—Glycine Hexyl Ester hydrochloride. Handling the hydrochloride salt eliminates the volatility issues seen with the free ester, also reducing the risk of hydrolysis during storage. The crystalline form avoids the oily or sticky residues we often encountered in early esterification runs. We keep free amine and alcohol impurities to an absolute minimum—long before it becomes a visible issue in downstream reactions, our in-house GC and NMR checks will have flagged it. For color, customers expect clear white crystals, and we stay far below accepted colorimetric thresholds.
Batch consistency remains a high priority. Our analytic staff pulls samples at multiple steps, using thin-layer chromatography and HPLC to ensure that small fluctuations in feedstock purity don’t propagate into the finished product. Overshooting the target range for water content can create compounding headaches for end users, so we routinely dry material under high vacuum and directly verify Karl Fischer titration results. Each time a client reports a new analytical challenge, we feed that back into our next batch protocol. This manufacturer-driven loop means real-world feedback influences our process, rather than a static specification handed down from a marketing team.
A typical mass-market glycine ester gets pumped out as a technical grade chemical—minimal purification, modest QC, and generic documentation. The result: buyers receive product with off-odors, contaminants, or variable melting points. We’ve been called in more than once to troubleshoot sticky lab equipment or inconsistent assay results, only to find that the glycine ester at the core was sub-standard or improperly stored.
Every gram that leaves our facility is produced at a scale where synthesis and purification can be tightly managed. We never take shortcuts, even for custom projects where time is short. Over time, we’ve moved to more robust condensation agents and milder acid scavengers. Residual heavy metals, halides, and solvent remnants are controlled at levels that meet or beat most global reference standards. Our analytical department cross-validates each lot against retention time, spectral fingerprint, and final product solubility in protic and aprotic solvents. Rarely do we see the cloudiness or crystallization that frustrate downstream synthesis in other labs.
Glycine Hexyl Ester plays a reliable role in fields such as medicinal chemistry, peptide synthesis, and the design of prodrug molecules for improved bioavailability. Researchers looking to mask the zwitterionic properties of the parent amino acid often turn to esters. They gain the ability to modulate hydrophobicity and membrane permeability in a predictable manner. Our close work with medicinal chemists has shown us where bulkier esters allow peptide sequences to pass through lipid barriers or cross cell membranes with greater efficiency.
In specialty polymer production, hexyl esters act as functional modifiers. Their longer alkyl tails add flexible, hydrophobic segments into otherwise rigid or polar backbones. We’ve watched customers iterate through dozens of ester options—settling on hexyl only after less expensive esters failed to deliver mechanical or compatibility targets. In taste-masking, cosmetic formulation, and engineered surfactants, Glycine Hexyl Ester gets deployed as a structural component where both the amino acid and alkyl chain contribute essential functional benefits.
Pharmaceutical partners use it to build masked amino acid intermediates for peptide-based therapies. Many of these partners recognize that poorly treated starting materials jeopardize reproducibility and regulatory compliance down the line, which is why they value the producer’s role in both disclosure and quality control.
We rely on small batch trial runs to evaluate new synthetic routes, then transfer that learning directly to semi-continuous reactors designed for mid-scale output. Our chemists tinker with parameters that often go overlooked—choice of solvent, grade of acid catalyst, rate of esterification, and vacuum-level during workup all affect final purity and yield. If an upstream supplier changes their lot or packaging, our production team spots discrepancies before they impact the customer.
One adjustment to the workup stage, for instance, reduced moisture uptake by more than 30%. These small tweaks make large real-world differences for formulators concerned with storage stability. The feedback doesn’t end with batch release. Our sales and tech support report back on complaints in downstream performance, color shifts, or changes in solubility. Each instance leads to internal discussions and, if needed, process changes—long before it becomes a pattern of customer dissatisfaction.
Not every process is smooth sailing. The longer chains in this ester cause more sensitivity to water content and temperature during esterification. Early on, we faced crystallization problems that led to patchy yields and inconsistent recovery. Working step by step, lab techs adjusted seeding protocols and solvent ratios to get consistent, manageable crystals.
Another hurdle is the balance between purity and cost—extra purification yields cleaner product but increases energy use and production time. We engage directly with end-users to pin down where ultra-high purity matters, and where a slightly broader specification brings acceptable performance without runaway costs. This ongoing dialogue helps contain both price and quality expectations.
The supply chain for hexyl alcohol sometimes surprises us. Quality swings, especially in global market shifts, push us to qualify fallback suppliers and keep additional stock on hand. If necessary, we alter production scheduling to accommodate a tight raw material outlook. These are manufacturer headaches that don’t go away with scale—even with robust supplier agreements, surprises come with the territory in specialty ester chemistry.
More than once, our technical team has fielded calls from researchers unsure how to solubilize Glycine Hexyl Ester or work it into multi-step syntheses. We respond by sharing optimized protocols, tips on handling, and observations from our own labs, not just theoretical advice or copied textbook entries. For end-users who need full traceability on raw materials or specialized batch documentation, we open our process logs and analytical data sections that validate the production run. In this industry, “what’s on the label” doesn’t tell the whole story—years of fielding questions about color drift, variance in melting point, or odd odors taught us to keep records well beyond typical regulatory requirements.
Our partnership with customers extends into their QC troubleshooting too. A client working on extended-release formulations reported unusual pH shifts after dissolving our ester in buffer. A joint call—chemist to chemist—walked through possible contaminants or storage issues. We supplied fresh control samples, ran parallel analytics, and helped pinpoint the issue. The problem ended up being a storage container leaching plasticizer into the sample, not a problem with the ester itself. Only by sharing insights and keeping communication channels wide open do we keep preventable problems from growing into crises.
Every year, new companies tout Glycine Hexyl Ester with copy-pasted bullet points: “high purity, white crystals, pharma grade, research use only.” Experience tells us that only a manufacturer with hands-on process control can back up such claims. We’ve seen the fallout when traders or resellers move product between brokers, storing it in less-than-ideal facilities, with no idea of transport conditions or shelf life. We keep all critical operations—synthesis, purification, drying, packaging—within controlled zones, so nothing falls through the cracks during handoff.
Direct manufacturing allows us to offer specialized pack sizes, tailor documentation, or hold product for accelerated aging studies before full scale-up. One large pharma client needed evidence on six months’ stability at 40°C; we set aside part of two batches to monitor color and assay drift, only releasing the rest after confirming stability through real data. Such efforts don’t originate from distributors passing along boxes—they happen because the production and quality teams stand behind each shipment.
The most notable difference between Glycine Hexyl Ester and shorter-chain glycine esters lies in their hydrophobicity. The hexyl chain tips the balance toward greater non-polar character. For applications requiring membrane transport or interaction with non-polar substances, this ester outperforms ethyl or methyl counterparts.
During purification, hexyl esters resist hydrolysis under mild conditions, which increases shelf life for end-users and reduces degradation risk during storage and transport. Simple esters often degrade more quickly, sending up off-flavors or odors. Our production runs for methyl esters, for example, always required tighter environmental controls to manage volatility loss. The hexyl version proved far more forgiving in our pilot storage tests.
In physical handling, hexyl esters deliver more manageable melting points and less stickiness compared to propyl or butyl forms. Downstream users see operational gains: easier weighing, less waste during transfer, fewer issues with environmental humidity. The stability under humidity swings, combined with a lack of low-molecular-weight volatiles, means customers rarely call with complaints over shipment condition, even in hot climates. This performance edge stems from a literal hands-on familiarity between our chemists and the product at every stage.
We never treat Glycine Hexyl Ester as a static product. Continuous customer feedback shapes how each batch is produced, packed, and shipped. If a bio-analytical lab signals trouble detecting our product amid co-eluting impurities, we review and adjust our purification workflow. If a polymer chemist finds clumping during compounding, we investigate particle size and anti-cake measures. Constant circulation of real user data drives improvements, not armchair theorizing.
Our customer engagement shapes documentation, too. We’ve created variants of COA reports providing expanded data—specific moisture content, trace solvent levels, in-depth NMR spectra—for projects under regulatory scrutiny. This only comes from a direct relationship with both the product and the user.
As new application areas emerge, the expectations on starting materials rise. Better purity, traceability, and application-specific customization become standard, not optional. Our approach places the responsibility squarely with us, the manufacturer. Each bottle shipped carries our reputation, supported not just by certificates but by decades of chemical know-how and the willingness to adapt.
Markets change. Regulatory demands tighten. End-user challenges evolve. Through all of it, our driver remains the same: understanding our chemistries inside and out, learning from every run, and treating each product as a relationship, not just a commodity.
Glycine Hexyl Ester is not just another line on our catalogue. From model and materials to end application and support, it reflects the lessons of years spent in the lab and patience at the bench. The production of this molecule draws a clear line between real manufacturers and those who simply move paper. For our team, every batch tells a story of chemistry done right—from raw material screening through to the bottle in the customer’s hand.