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HS Code |
871998 |
| Chemical Name | 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride |
| Cas Number | 4075-81-4 |
| Molecular Formula | C9H18ClNO |
| Molecular Weight | 191.70 g/mol |
| Appearance | White to off-white crystalline powder |
| Melting Point | 145-148°C |
| Solubility | Soluble in water |
| Storage Conditions | Store at room temperature, in a tightly closed container |
| Synonyms | TMPD hydrochloride, TEMPO ketone hydrochloride |
| Purity | Typically ≥98% |
| Inchi Key | XQGXGLXGDNNRTX-UHFFFAOYSA-N |
| Ec Number | 223-799-8 |
As an accredited 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 25g amber glass bottle with a secure screw cap, labeled "2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride, 25g, for laboratory use." |
| Shipping | **Shipping Description:** 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride should be shipped in tightly sealed containers, clearly labeled, and protected from moisture and light. It must be packaged according to chemical safety regulations, using appropriate cushioning materials. Ensure compatibility with transport guidelines for hazardous substances and include relevant documentation and safety data sheets. |
| Storage | 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride should be stored in a tightly sealed container, away from moisture and incompatible materials such as strong oxidizing agents. Store in a cool, dry, well-ventilated area, protected from direct sunlight. Avoid exposure to extreme temperatures and humidity. Clearly label the container and keep it out of reach of unauthorized personnel or children. |
Applications of 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride in Industrial Manufacturing2,2,6,6-Tetramethyl-4-piperidone hydrochloride plays a precise role as an intermediate in several regulated chemical value chains. We supply this material to leading producers engaged in specialized syntheses across pharmaceutical APIs, advanced polymer additives, agrochemical actives, organic electronics, and photographic processing. Each application scenario requires tailored process controls and compliance alignment to meet end-market demands. 1. Pharmaceutical Intermediate for Cardiovascular Drug SynthesisOur material acts as a critical building block in the synthesis of certain antihypertensive and antiarrhythmic active pharmaceutical ingredients. The compound participates as a core intermediate during the construction of heterocyclic scaffolds typical in cardiovascular medications. Controlled reaction pathways require precise stoichiometry and documented traceability to comply with strict pharmaceutical manufacturing regulations. Each production lot receives batch-specific analytical validation before integration into GMP-regulated supply chains. Industry compliance standards
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2. Hindered Amine Light Stabilizer (HALS) Additive Precursor for PolymersOur production supports polymer additive formulators who synthesize high-performance HALS compounds. These stabilizers enhance the weather resistance and color retention of automotive coatings, packaging films, and fiber products. In HALS synthesis, the raw material is used for the quaternization and subsequent derivatization required to achieve defined steric protection. Quality assurance aligns with food contact and automotive regulation, especially for additive integration in end-use plastics. Industry compliance standards
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3. Agrochemical Intermediate for Pyridine-Based Fungicide ManufactureIn agrochemical production, downstream manufacturers use this compound as a tailored reagent for assembling substituted pyridine or piperidine rings found in specific fungicide and pesticide active formulations. Its role involves precise coupling and cyclization under controlled process conditions. Traceability and compliance with agrochemical residue regulations are required due to its proximity to regulated actives. Industry compliance standards
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4. Precursor for Electron Transport Layer Materials in Organic ElectronicsProducers of advanced materials for OLED, OPV, and display panels use our intermediate as a precursor for functionalized amine structures that enable charge transport and stability in multilayer devices. Controlled synthesis ensures high purity, as trace contaminants can impact device lifetime and emission properties. Downstream integration occurs in custom molecular builds for each electronics context. Industry compliance standards
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5. Component for Photographic Chemical FormulationsProducers of traditional and specialty photographic chemicals employ this compound in the synthesis of hindered amine-based stabilizers and anti-fogging agents. These chemicals serve to extend the shelf life of developer and fixer solutions, as well as to improve the stability of sensitive silver halide grains in both film and paper processing. Purity control and batch consistency are critical to ensure reliable photographic performance and compliance with environmental standards for effluents. Industry compliance standards
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Competitive 2,2,6,6-Tetramethyl-4-Piperidone Hydrochloride prices that fit your budget—flexible terms and customized quotes for every order.
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In our facility, 2,2,6,6-Tetramethyl-4-piperidone hydrochloride stands out as a mainstay in precision manufacturing. Over the years, the role of piperidone derivatives in science has grown. For chemists and technologists, this compound has become more than a raw material—it's a trusted building block. We work with this substance daily, not as a distant supplier but as the source, seeing and influencing each step of its journey.
During day-to-day operation, we notice that end users want results they can trust, not vague claims. Our batches of 2,2,6,6-tetramethyl-4-piperidone hydrochloride leave the drum in the same high-purity state we maintain on the production line. Scientists rely on the predictability this provides; research projects do not pause for inconsistencies. Time lost to sorting out off-spec material cannot be won back, which comes back on our shoulders as the original producer.
We understand what it’s like to design a molecule for a critical synthesis and face a bottleneck over impurity. Laboratory teams want assurance that the hydrochloride salt performs like the base form, but with the handling and storage advantages that come from salt chemistry. That makes the hydrochloride we manufacture an obvious option for those with moisture concerns or for those who need that extra measure of stability in their intermediate.
It’s tempting to rattle off technical points, but history proves that real knowledge comes from working with material day in and day out. The 2,2,6,6-tetramethyl-4-piperidone hydrochloride produced in our reactors exhibits crystallinity that eases filtration, and the color consistency reassures our quality assurance staff before a single kilo ships. We measure purity by chromatography with a focus on reproducibility, because customers circle back to us if their test results drift. Moisture content stays below what’s needed for downstream syntheses since we use controlled-environment production and closed packaging—hard-earned lessons after seeing the effects of trace water on sensitive reactions.
Users often compare the hydrochloride to the free ketone. After repeated lab-scale and plant-scale campaigns, the hydrochloride salt brings measurable benefits in handling and transport; the powder resists clumping and absorbs atmospheric moisture far less than comparable compounds. The piperidone hydrochloride keeps well in industry-standard packaging under typical storage conditions, surviving seasonal changes that would degrade other compounds left untouched in a storeroom.
Being the manufacturer gives us insight into how diverse the applications can be. It is not rare for a process engineer to call and ask for raw crystals one week, then for a research group to seek highly-polished analytical lots the next. 2,2,6,6-tetramethyl-4-piperidone hydrochloride sits at a fork between multiple synthetic pathways. Many clients push the compound into intermediate coupling steps in pharmaceutical exploration or in specialty pigment industries where minor shifts in composition would show up in the final product. Our quality control teams understand that a single percentage point variation might not matter for all downstream targets, but for active ingredient development, there’s no such thing as “close enough.”
Some larger corporate buyers use the hydrochloride in scale-up to larger lots for process validation. Others prefer it for pilot plant work because of the salt’s behavior in continuous flow reactors. As a maker, we have supported both short-run requirements and extended multi-tonne production—flexibility comes naturally when you control the source and have the equipment to switch, clean, and load material efficiently.
In familiar conversations with regular users, the need for rapid delivery grows each quarter. Since we operate the reactors and own the purification facilities, we can send out new batches with local freshness. This ensures the intended reactivity and shelf-life go uncompromised, whether destined for advanced research or ongoing commercial output.
Technicians value a material that moves through standard equipment without gumming, bridging, or excessive static. In our own testing, the piperidone hydrochloride’s behavior in typical hoppers and vacuum transfer lines compares favorably to other finely-divided chemicals. Storage rooms appreciate a compound stable in its powder form, keeping its character without off-odors or visible degradation well beyond the quarterly inventory rotation. We took pains to adjust particle sizing to meet needs—a result of hearing feedback from customers about blockages and flow rates in automated systems. That feedback loop between floor-level operations and laboratory planning keeps the compound user-focused, not just compliance-oriented.
Some purchasers push the specification into material science applications where minor batch variation could upset the integrity of a polymer network. The molecular integrity of the hydrochloride aligns closely with analytical standards, no mean feat for a mid-weight heterocyclic, and that gives research scientists the confidence to publish results and scale up without redesigning experimental plans.
Repeated cycles of shipment have affirmed that the hydrochloride holds up well during international transport. Even where differences in climate might cause other chemicals to clump, yellow, or cake, this salt form resists those age-old hazards. Speaking plainly, the cost in wasted time and product loss makes shortcuts in packaging or drying not worth the risk. Our own logistics staff verify that every drum or pouch arrives sealed tight—documentation matters, but physical checks really catch flaws.
We’ve worked firsthand with various piperidone analogues and their salts. The base form attracts moisture more aggressively, leading to unpredictable changes in mass and an uneven dissolution rate. The hydrochloride version counters this by forming stronger, stable ionic lattices, translating to better shelf-life and consistent reactivity.
From an operational perspective, our partners say the hydrochloride salt simplifies logistics. Paperwork frustrations lessen with substances classified more favorably under international transport guidelines—good for clients arranging air or sea freight. The tighter melting range and sharp spectroscopic signature in the hydrochloride gives analytical departments less ambiguity during raw material checks.
Years ago, we tested batches of both free ketone and hydrochloride forms in an automated feeder. Blockages, inconsistent dosing, and residue build-up plagued the base form. We now recommend the hydrochloride for teams who value minimal downtime. The salt’s robust structure helps during grueling purification runs and in multi-step synthetic workups, often shaving hours off cleaning schedules.
Standing at the heart of chemical manufacturing, certifying these details isn’t a box-ticking exercise for us. Each lot’s record traces right back to the individual reactor, operator, and analytical breakdown. Batch variation can erode trust. By keeping everything local—from feeding in raw tetramethylpiperidone precursors to vacuum-sealing the white crystalline hydrochloride—control, responsibility, and transparency feed into the final barrel.
We see all the details: if pH slips outside target, or a trace impurity creeps in, the entire process slows down for retesting until we meet the bar. There’s a difference between allowing spec drift and maintaining a quality margin that stands up to retesting across continents. Clients often tell us how much they appreciate knowing that the certificate in their hand ties back to accountability on our side, not paperwork passed between intermediaries.
Equipment upgrades came after a series of pilot runs highlighted where throughput bottlenecked. Finer filtration, constant temperature controls, and hands-on operator training improved yield and reduced the fingerprint of peroxide-like byproducts. These investments only make sense when the manufacturer wants to keep the customer relationship close, not transactional.
Pharmaceutical innovation doesn’t wait for backlogged raw materials. We’ve supported a number of research-driven companies who run strict timelines. Having an in-house approach—raw material processing, salt formation, packaging—cuts lead times and supports industrial users pushing through process validation. It makes a noticeable impact to source chemicals straight from the origin, with no re-packaging or third-party unknowns diluting responsibility.
In the broader chemical industry, where downstream targets often evolve from year to year, adaptability in production size, particle form, and documentation separates genuine manufacturers from middlemen. Regulatory requests sometimes catch teams off guard. We keep up with proof of trace metal content, residual solvent analysis, and stability data sets expected for upstream and downstream partners. This sort of transparency isn’t just for box-checkers, but because the end product’s performance depends directly on raw material pedigree.
Feedback from users points to one main lesson: confidence in batch uniformity shapes every documented process, from pilot run to validated synthesis. Many of our long-term clients have remarked how switching to our 2,2,6,6-tetramethyl-4-piperidone hydrochloride eliminated batch-failure headaches in scale-up, especially compared to lots supplied piecemeal from multiple relabelers. The direct relationship—from chemical bond to drum label—solidifies both the science and the business side of their projects.
Sustainability matters more than slogans. We set up recovery systems for wash solvents and implemented energy-saving agitators on our crystallizers, aiming to lower resource footprints. The choice of hydrochloride salt over other derivatives was influenced partly by the improved shelf-life and efficiency in downstream processing, which means less waste not just in our plant, but also in the hands of downstream customers. Fewer dissolved solids in wastewater, less reworking of off-spec batches, and better overall utility extraction preserve both margin and environmental resources.
It often surprises external auditors how a focus on stable, well-defined chemicals like 2,2,6,6-tetramethyl-4-piperidone hydrochloride helps meet regulatory and sustainability goals in parallel. Cleaner processing translates to less frequent reactor clean-outs, which saves not only time but also the large quantities of solvent and energy otherwise needed for cleanup operations. That ripple-effect of good practice starts at the molecular level; the moment a batch leaves our line, we know it can both meet customer targets and withstand scrutiny from regulators or environmental agencies.
The lines between trader, distributor, and real manufacturer often blur in the supply chain. We see the consequences when users find documentation that can’t support an investigation, or dig for a supplier’s original certificate and wind up with nothing but generic paperwork. Running the actual plant and making the hydrochloride from start to finish, we embed serial trace numbers, date codes, and operator IDs at each lot stage. That generates a complete cradle-to-container history, which gives researchers, procurement managers, and quality officers a full audit trail.
Researchers working on patented technology want more than a drum of powder; they demand security that every step, from precursor sourcing through final drying, meets not just the minimum, but verified standards. The direct-from-source link tightens response to both technical and regulatory changes. When a country updates its handling regulations or enacts a new certificate demand, our documentation team can adapt quickly, without relying on upstream guesswork.
The experience manufacturing 2,2,6,6-tetramethyl-4-piperidone hydrochloride in-house revealed a fundamental truth: technical performance in the end application is written into the chemical’s pedigree right at synthesis and purification. Users tell us their process validation becomes less painful, their technical reports cite fewer unexpected variances, and inventory managers sleep better knowing batches are both fresh and fully traceable.
Chemical users might find similar labels on a web listing or stockroom bin, but the difference in user experience grows clearer with regular purchases. We receive calls every quarter from buyers sent off-spec piperidone from repack windows or drop shipped goods; their operations suffer. Lot after lot of our hydrochloride brings the same physical appearance, exacting melting point, and tight impurity specification. Chemists and production staff feed this consistency downstream—efficiency goes up, scrap rates drop, troubleshooting needs less bandwidth.
Some procurement teams changed over to direct ordering after enough headaches with uncertain paperwork chains or lags in technical responses from third-parties. As formulators and bench chemists ourselves, these issues aren’t theoretical; we have stood in those shoes, rerunning a synthesis because a key starting material didn’t perform as expected. The value of a clean supply line becomes apparent not in year-one margin, but in year-five reliability and trust.
Our plant’s output of 2,2,6,6-tetramethyl-4-piperidone hydrochloride remains rooted in daily attention to detail. Here, every batch reflects both scientific rigor and the lessons learned from long production runs, user feedback, and in-plant experience. We have seen this hydrochloride become indispensable for those who treat chemical integrity, traceability, and consistent performance as non-negotiables. Feedback from partners, both research-based and industrial, continues to drive tweaks and improvements. Relying on direct-from-manufacturer supply does more than secure a shipping schedule; it extends the value of every experiment, process run, and customer trust into the next project cycle.