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HS Code |
452241 |
| Product Name | N-(2,6-Dimethylphenyl)-2-Picolinamide |
| Cas Number | 886363-34-8 |
| Molecular Formula | C14H14N2O |
| Molecular Weight | 226.28 |
| Appearance | White to off-white solid |
| Melting Point | 122-125°C |
| Purity | ≥98% |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Storage Temperature | Store at 2-8°C |
| Synonyms | 2-Pyridinecarboxamide, N-(2,6-dimethylphenyl)- |
| Smiles | Cc1cccc(C)c1NC(=O)c2ccccn2 |
| Inchikey | UZDQHPFSWJEFEU-UHFFFAOYSA-N |
As an accredited N-(2,6-Dimethylphenyl)-2-Picolinamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle containing 25 grams of N-(2,6-Dimethylphenyl)-2-Picolinamide, sealed with a screw cap, labeled with hazard information. |
| Shipping | **Shipping Description**: N-(2,6-Dimethylphenyl)-2-Picolinamide should be shipped in a tightly sealed container, protected from moisture and light. Transport at ambient temperature unless otherwise specified. Ensure compliance with local regulations; not classified as hazardous for transport under most standards. Include appropriate labeling and documentation for chemical identification and safe handling instructions. |
| Storage | Store N-(2,6-Dimethylphenyl)-2-picolinamide in a cool, dry, well-ventilated area, away from direct sunlight, heat, and incompatible substances such as strong oxidizing agents. Keep the container tightly closed when not in use. Store in a chemical-resistant, labeled container. Avoid moisture and sources of ignition. Handle under appropriate safety protocols to prevent exposure and contamination. |
Applications of N-(2,6-Dimethylphenyl)-2-Picolinamide in Industrial ManufacturingAs an established manufacturer, we supply N-(2,6-Dimethylphenyl)-2-Picolinamide to a targeted range of chemical industries. Below we detail its application in specialty segments, covering compliance, formulation, processing, and final products for each sector. 1. Agrochemical Intermediates for Herbicide SynthesisN-(2,6-Dimethylphenyl)-2-Picolinamide functions as a key intermediate in the synthesis of specific pyridine-based herbicides. It participates in acylation and condensation reactions, supporting active ingredient development for selective post-emergence weed control solutions. Large-scale agrochemical manufacturers use this material predominantly in the production of active compounds targeting resistant broadleaf and grass weeds. Its molecular structure is crucial in building amide-linked herbicidal frameworks that comply with modern safety and residue criteria. Industry compliance standards
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2. Pharmaceutical Intermediate for Piperidine DerivativesThis compound serves pharmaceutical manufacturers as a controlled intermediate in synthesizing piperidine class APIs, especially those aimed at central nervous system disorder management. Its selective reactivity supports regioselective amide coupling, offering efficiency during scale-up under GMP conditions. The process integration leverages its chemical stability and ability to reduce side product formation during catalytic hydrogenation or cyclization stages, providing manufacturers with robust starting materials under strict validation regimes. Industry compliance standards
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3. Fine Chemical Intermediate for Specialty PolymersChemical producers utilize this amide as a specialty monomer precursor in synthesizing functionalized polymers. It enables the production of polyamide and polyimide materials for use in electronics and filter membranes. The material enters the polymerization reaction via solution or melt processes, contributing to improved mechanical properties and thermal stability. Downstream partners demand traceable production records and consistent impurity profiles to ensure batch-to-batch reproducibility for regulatory compliance in high-value end-uses. Industry compliance standards
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4. Chemical Building Block for Advanced Organic PigmentsPigment manufacturers apply this amide as a functional building block to develop custom azo and quinacridone pigment structures. Its presence in coupling reactions helps impart increased hiding power and specific shade nuances in high-end coatings, inks, and plastics. The starting material undergoes diazo coupling, followed by post-oxidative treatments for color stability. Industrial applications demand rigorous quality documentation and batch analytics to meet client optical performance and migration standards. Industry compliance standards
Typical usage ratio
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Chemistry offers plenty of molecules with complicated names and even more complicated behaviors. Over decades in the mill, we've seen how N-(2,6-Dimethylphenyl)-2-Picolinamide stands out on the production line. Manufacturers recognize its solid, predictable nature in lab reactions—not just as another bystander, but as a reagent that steps up stability where it counts.
From start to finish, this compound shows a level of consistency that shapes chemical processes positively. Its white or off-white crystalline powder signals purity straight out of the drying ovens. Technicians in our labs run batch after batch with the compound, paying attention to the subtleties: a melting point stubbornly in its expected range, a solubility profile that behaves in line with expectations batch after batch. That’s not just laboratory luck but skillful management of reaction parameters and careful raw material sourcing.
The typical appearance tells a lot: a free-flowing powder, clean through the sieves, easily handled in standard vessels without clumping or excess dusting. Analytical profiles confirm what the eye suspects. HPLC and NMR always ring true for us: a compound with high chemical purity and low residual solvent—less cleaning downtime and fewer reworks for production.
Years in the chemical plant teach that even a fractional variance in melting points or color can delay entire production schedules. N-(2,6-Dimethylphenyl)-2-Picolinamide doesn’t contribute those headaches. The batch card logs nearly always match, whether for pilot-scale or full manufacturing runs. Down the supply line, formulators come back remarking on its lack of unpredictability. They tell us that when blending with solvents, it dissolves without lingering particles, holding true under varying temperature ramps.
Most of the material heads into pharmaceutical research and development centers, with a fair share going to specialty material labs. Our own team tests each lot against standard pharmaceutical intermediates, measuring not just purity and stability, but chemical reactivity. Synthetic chemists trust it as an amide functional group donor, often using it as a building block in elaborated heterocycle synthesis. The kinetic data and reaction yields from those runs—shared back to us from customer labs—help us fine-tune our own process parameters. Having little feedback about process interruptions stands unseen from behind the paperwork, but it means people aren’t running into avoidable issues.
Across the bench, our staff takes pride in small touches: uniform grain size for easier weighing, smooth pouring, and a scent that signals freshness (or lack thereof if something isn’t right). Unlike some analogs, N-(2,6-Dimethylphenyl)-2-Picolinamide doesn’t degrade quickly under air exposure. We’ve put it through stress tests—ambient light, heat, ambient air—measuring decomposition over weeks. The data tells a clear story: this is a rugged molecule for the right storage conditions, built for extended shelf life without breaking down prematurely.
Exposing the material repeatedly, even in humid environments, rarely introduces clumping or caking. This means labs spend less time sieving or breaking up chunks—the entire workflow from storage to synthesis runs more predictably. For large-batch users, less time lost in reprocessing translates to real savings.
Over the years, customers have come asking how N-(2,6-Dimethylphenyl)-2-Picolinamide holds up alongside other N-aryl picolinamide derivatives. Manufacturing both types under one roof teaches you the differences. Some compounds with larger ring systems or electron-withdrawing groups get fussy when subjected to heat. Perform a thermal stability test, and by the third cycle, many such analogs show visible color changes; others may emit byproducts that clog up analytical detectors. Ours keeps its head: thermal analysis graphs confirm broad stability, and internal batch testing rarely picks up any unfamiliar peaks.
There's another critical element—the handling properties. Materials with different alkyl substitutions on the phenyl ring can surprise operators, changing solubility or creating extra foaming in reactors. We monitor how our product responds under different agitation regimes. Operators in the plant see firsthand that N-(2,6-Dimethylphenyl)-2-Picolinamide remains controlled, producing no unexpected pressure spikes when switching mixing rates. There’s comfort in knowing that scale-up from kilo to ton proceeds with full transparency—no out-of-spec pressure releases, no bursts of toxicity.
For those with sustainability concerns, it’s useful to mention how this molecule fares in terms of process waste. Historically, some N-aryl amide syntheses require excess reagents or leave behind hard-to-treat byproducts in mother liquors. Our production chemists tracked this issue over many campaigns, optimizing the route so that side reactions stay minimal, washing steps proceed cleanly, and the waste stream remains as manageable as possible. Less time in waste handling means more uptime for reactors and fewer headaches for everyone.
Most of our senior staff have stories about runaway reactions or airborne dust from powders fluffed through the plant by unguarded air currents. N-(2,6-Dimethylphenyl)-2-Picolinamide ranks among the easier materials to handle—a fine powder, but not so light as to coat surfaces with clinging residue. Internally, we train new staff to use standard personal protective equipment, focus on good ventilation, and pay attention to bench hygiene. Our process design means the material rarely needs aggressive solvents or pungent conditions—most work happens at mild temperatures and neutral pH.
Spills and accidental exposure events have remained rare. Our safety logs show almost no reports of irritancy or fume release. The panel of environmental scientists we’ve worked with echo the experience that this class of molecules brings fewer surprises when spilled, and scrubbing or rinsing down work surfaces requires no extreme measures. When sent for third-party toxicology testing, the outcomes lined up with our own: normal precautions suffice, and downstream disposal creates minimal regulatory headaches.
Most new powders spark a round of training sessions and new hazard signage, but N-(2,6-Dimethylphenyl)-2-Picolinamide fits easily into the existing framework. Chemical plant managers appreciate not having to rewrite procedures or buy new safety gear for every order. Fewer special-case workarounds keep the day’s processes flowing and reduce the safety culture drift that sometimes plagues more complex molecules.
Raw material selection sets the stage for everything that follows. We spent years, trial after trial, sourcing the best 2,6-dimethylaniline and 2-picolinic acid. Trace impurities in the starting materials turn up down the road, fouling up product purity or gumming up the post-synthesis purification. At scale, these little details snowball into real production issues. Our team runs extra analytics on each drum received—mass spectrometry, gas chromatography—so contaminants get caught long before synthesis starts.
Reaction runs seldom throw curveballs now, but it wasn’t always smooth. In our early days, temperature control wasn’t tight, leading to variable yields and streaky batches. We changed jacketed reactors for more uniform heating, phased in more robust agitation, and found that consistent batch profiles followed. In-process control drums make or break productivity. Every operator knows what purity targets look like, and we have the data from hundreds of successful runs to back it up.
Beyond initial synthesis, purification deserves equal respect. Crystallization, drying, and packaging operations make a clear difference in finished product quality. Large-area tray dryers and calibrated vacuum ovens allow for controlled removal of solvents—and up close, you can literally see the difference in powder flow if the drying is uneven. On a walk around the plant, you’d notice racks of closely monitored temperature gauges and humidity meters, each tweak justified by lessons from past batches.
Even packaging gets engineering attention on our floor. Bags and drums are lined with moisture barriers and sealed under inert atmosphere. This isn’t just belt-and-suspenders thinking: field returns show that, during long cargo transits, poorly packaged amides can show yellowing or partial decomposition, especially in monsoon seasons or poorly ventilated warehouses. Our design keeps that at bay, and customer feedback confirms stable product even after months in transit.
Maintaining reliable delivery doesn’t begin at the loading dock. It starts the minute production planning kicks off and continues through lot release. For a manufacturer, delivery failures sting because they usually trace back to overlooked bottlenecks. We handle orders with full traceability, so each drum carries a history: source of starting materials, operator signatures, QC release results. Surge orders and abrupt changes in market demand have challenged us before, so over time, we've built average overstock into our planning, storing extra at certified warehouses close to major customers.
Rush orders have become less disruptive through gradual process improvements. With every unexpected order filled, our scheduling software learns from the timing. The practical truth: successful delivery depends on manufacturing transparency and good relationships with logistics providers. Our drivers update real-time tracking so procurement teams know exactly where orders stand. Any deviation—port delays, customs hold-ups—shows up in our system, and someone here gets right on the phone to the customer. Direct manufacturer relationships cut through layers of middlemen and shave days off delivery compared to routed shipments via distributors.
Logistics also depend on regulatory readiness, especially when shipping to new markets. Certificates of analysis, lot traceability, and other data go out with every load. Experience says it’s worth investing in documents that never get read by customers but matter at customs. Delays that sink shipments rarely come from the inside; more often, they start with missing paperwork or unfamiliar codes on overseas routes. So we keep the details updated, and new customers receive guidance directly from our regulatory staff so they avoid getting hung up on unfamiliar rules.
Compliance standards keep shifting, and every new audit highlights something to fix. For us, improving processes is part of the work. Past years brought in stricter solvent recovery rates, so we now reclaim and recycle at every opportunity. Our solvent loss per batch has steadily dropped. Such operational savings end up shared with customers—lowering the environmental load and tightening the cost structure for everyone using our intermediates.
Since the onset of global supply disruptions, we've learned to map out multi-region storage strategies and identify alternate shipping modes. Sea, air, multimodal, even hybrid road-rail systems all play a role depending on where the demand peaks. Every quarter brings new wrinkles: customs backlogs, new packaging protocol tweaks, global compliance updates. The chemical world doesn’t pause for slow adapters, and we have to innovate or get left behind. Our manufacturing schedule leaves flexibility for swing capacity, so we can scale up for rush orders or scale down when market prices dip.
Raw material shortages used to trigger cascading delays. To temper this risk, our procurement team engages in regular contract reviews with upstream suppliers. If one supplier hits a setback, the qualified secondary source steps in immediately, keeping our own production output stable. Manufacturing wants predictable inputs, and that only comes through strong supplier relationships.
Processing specialty amides like this one serves as a lesson in balancing quality, safety, and cost. Chemists, operators, and managers all want clean batches, minimum downtime, and reliable deliveries. As new players crowd into the sector—from start-up labs with limited scale to established giants expanding product lines—the challenge is refining core strengths and making incremental gains.
We notice projects fail elsewhere for reasons that don’t show up on a balance sheet: variable raw material quality, poorly trained staff, or lapses in process safety. Commitment to hands-on training and re-training cycles sets the foundation here. New hires shadow experienced plant staff and pick up on troubleshooting skills that boost output and cut waste. Old lessons don’t go stale: we document every significant deviation or customer complaint, then sift through the data to find patterns and root causes.
In a regulated world, documentation becomes a tool rather than just another hoop. We track all process deviations, raw material lot changes, and maintenance shutdowns with digital logs. This precision is what keeps auditors moving quickly through our facility—and keeps batches flowing without compliance setbacks.
Every year, our R&D group revisits the process map for N-(2,6-Dimethylphenyl)-2-Picolinamide, examining new catalysts, greener solvents, and faster purification methods. Not every innovation pans out, but each attempt brings lessons about what works at large scale versus what simply looks good on paper. Customers aiming for innovative synthetic strategies challenge us to raise product uniformity standards even further.
As end-use industries shift toward higher regulatory standards and leaner supply chains, flexibility will set market leaders apart. We don’t take for granted the experience built generation by generation—troubleshooting on the fly, remembering mistakes from years past, and refining big and small steps along the way. The product reflects this journey: rugged in application, steady on the line, reliable for all who integrate it into their chemical solutions.
Counting on N-(2,6-Dimethylphenyl)-2-Picolinamide means more than running through a list of technical properties. Years of feedback from fellow manufacturers, bench chemists, and R&D leads shape our understanding of the product’s role in the real world. It cuts downtime, prevents surprises that slow projects, and lives up to its lab-tested promises. Careful synthesis, skilled team members, and a culture of responsiveness put our supply on a stronger foundation compared to imported resins or off-brand equivalents.
For those curious about the value beyond the bottle, it’s all about confidence in process and outcome. From the first time you handle it at the bench to the last step in a multi-stage synthesis, this compound removes friction. Experienced chemists appreciate that; new team members learn it quickly. It’s not a miracle molecule, but it’s built from a process fine-tuned for reliability, flexibility, and consistent output year after year.
Every delivery, every drum, and every batch that leaves our plant carries the experience, mistakes, and improvements learned by people who spend their days inside the mill and nights reviewing process charts. That’s what sets this product apart—its story comes from real practice, not just textbook chemistry.