|
HS Code |
348514 |
| Product Name | 2'-Aminoacetophenone Hydrochloride |
| Cas Number | 931-59-3 |
| Molecular Formula | C8H10ClNO |
| Molecular Weight | 171.62 g/mol |
| Appearance | White to off-white solid |
| Melting Point | 197-202 °C (decomposes) |
| Solubility | Soluble in water |
| Purity | Typically ≥98% |
| Storage Conditions | Store at 2-8°C, tightly closed |
| Synonyms | 2-Aminoacetophenone hydrochloride |
| Smiles | CC(=O)C1=CC=CC=C1N.Cl |
| Inchikey | IUZQYHLQNMZKSU-UHFFFAOYSA-N |
As an accredited 2'-Aminoacetophenone Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 2'-Aminoacetophenone Hydrochloride, 25 grams, packaged in a sealed amber glass bottle with a tamper-evident cap and hazard labeling. |
| Shipping | 2'-Aminoacetophenone Hydrochloride ships in tightly sealed, chemical-resistant containers to prevent contamination and moisture absorption. The package is clearly labeled and handled as a potentially hazardous substance, following relevant transportation regulations. Shipment is typically via ground or air, with appropriate documentation and safety data sheets included to ensure regulatory compliance and safe handling. |
| Storage | 2'-Aminoacetophenone Hydrochloride should be stored in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, ideally at room temperature away from incompatible substances such as strong oxidizers. Properly label all containers, and ensure the chemical is handled using appropriate personal protective equipment to prevent exposure. |
Applications of 2'-Aminoacetophenone Hydrochloride in Industrial Manufacturing2'-Aminoacetophenone Hydrochloride serves as a key intermediate in highly regulated industrial pathways, supporting the synthesis of several high-value end products for pharmaceutical, agrochemical, and specialty chemical manufacturers. As an experienced producer, we focus on established application routes, adhering strictly to global compliance requirements and customer-specific quality needs. Below we outline the major implemented uses across downstream sectors. 1. Pharmaceutical Intermediate for Active Pharmaceutical Ingredient SynthesisMajor pharmaceutical manufacturers incorporate 2'-Aminoacetophenone Hydrochloride as a building block for several APIs, including antipsychotics and anti-inflammatory drugs. The compound reacts in early-stage synthesis to introduce amino functionality, crucial for subsequent molecular modifications. Formulators select addition rates according to the targeted synthetic yield and impurity profile, optimizing for downstream purification and batch consistency. Handling and processing occur under current Good Manufacturing Practices (cGMP), with full traceability and compliance documentation mandatory throughout. Industry compliance standards
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2. Key Intermediate for Agrochemical Active IngredientsMultinational agrochemical factories employ this compound in active ingredient synthesis for selective herbicides and fungicides. The amine functionality serves as a precursor in heterocyclic ring constructions essential for bioactivity. Processing settings are batch-controlled, with documented quality control to ensure compliance with international pesticide regulations and minimize process by-products. Operators calibrate dosage based on target compound yield and downstream isolation requirements, with batch records maintained for regulatory audits. Industry compliance standards
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3. Synthesis Intermediate for Fluorescent Dyes and Optical BrightenersProducers of specialty dyes utilize this material in the construction of complex aromatic systems used in high-stability fluorescent applications. The raw material enters initially into Schiff base condensation or cyclization, facilitating the precise functionalization of chromophore scaffolds. Additive levels vary, guided by molecular design and color strength requirements. All handling follows regional chemical safety laws, and waste management processes ensure minimal residual amine content in release streams. Industry compliance standards
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4. Intermediate for Flavors and Fragrances SynthesisSpecialty aroma chemical manufacturers rely on this compound for unique key notes in artificial flavor and fragrance building blocks, especially for high-performance aldehyde-derived aromas. Chemists implement it during the amination of ketone or acetophenone bases, optimizing loading rates per batch to balance yield and downstream olfactory profile. All raw material batching adheres to international food and fragrance additive standards, with analytical verification at each stage to avoid non-permissible residues. Industry compliance standards
Typical usage ratio
Downstream process integration
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In the world of fine chemical synthesis, genuine understanding starts at the reactor. 2'-Aminoacetophenone hydrochloride sits among the building block intermediates that crew and chemist alike truly get to know only by standing over the kettles and getting hands into the practical process. It’s a fine, off-white to slightly yellow solid with a subtle aromatic odor, easily distinguished by anyone who’s ever walked downwind of a drum of it. Handling it on an industrial scale, you notice its readiness to dissolve in water and moderate organic solvents, forming a clear solution that tells you right away you’re dealing with a salt form offering both solubility and manageable stability.
Direct technical experience teaches that base 2'-aminoacetophenone tends to volatilize and can lose integrity under prolonged storage or temperature rises. The hydrochloride salt brings a stability that pays off in longer shelf life and easier handling—real-world advantages for anyone formulating at the kilogram or ton scale. Raw powders are less prone to caking, avoid clumping in humid air, and flow easily into mixers and reactors. During production, we don’t only watch the molecule but also how it behaves under process conditions. Suppliers and formulators find it responds predictably without sudden pH swings, so batch-to-batch performance stays within the tight control limits we live by every day.
Controlling purity from start to end isn’t just an analytical exercise. We monitor each reaction: starting with ortho-nitroacetophenone as base raw material, we utilize selective catalytic hydrogenation and careful crystallization. We filter meticulously, keeping our water content and chloride content lower than the minimum standards. It’s more than numbers on a certificate. It’s what keeps the product free from hard-to-remove eutectic melts or sticky residues, which any plant engineer can tell you make downstream processing a mess. Our teams use finned condensers to limit atmospheric exposure, sparging under nitrogen and collecting byproducts in closed systems, which means fewer residual impurities and less time reprocessing or discarding out-of-spec lots.
2'-Aminoacetophenone hydrochloride appears most often as a core intermediate for the pharmaceutical crowd, especially for those tasked with synthesizing active compounds where ortho-amino acetophenone is needed. Take, for example, the innovative work on heterocycles and APIs for neuroactive agents—our own technical team sees requests for samples destined for experiments chasing enzyme inhibitors and new-generation analgesics. The salt form, due to its increased aqueous solubility, transfers more easily in fluid-phase processes than the free base, which means less solvent waste and cleaner recovery downstream. Organic dye manufacturers lean on this product when color tone consistency matters; we’ve seen our product move from kilo-quantities in R&D to multi-ton contracts in pigment manufacture, where reproducibility underlines everything.
Anyone who’s ordered from bulk resellers has discovered the quirks of supply: variable particle size, inconsistent melting points, and powder that clings or sticks in bag liners. We field complaints from chemists frustrated after using cutoff intermediates sourced from undisciplined suppliers, forced to run extra analysis, deal with failing runs, and lose days on sintered filters clogged with colored debris. The differences come down to control in each stage, starting from our choice of catalysts—which avoids trace metal carryover—through the washing routines that guarantee low sodium content and end with storage under matched humidity conditions. We ship in triple-sealed drums, monitored for temperature swings from the time they leave our climate-controlled warehouse to their arrival at your dock. Small touches, but ones that directly reduce the all-too-common headaches with off-type material.
New chemists get their first practical education processing a batch of 2’-Aminoacetophenone hydrochloride. They learn the signals: how the color shifts with time and how residual moisture tells more about filtration than most spectrophotometry can. Processing teams argue about the best drying times, with an old hand swearing by his two-stage vacuum method, giving the salt just enough time to granulate without excess friability. Each variable—from the rate of acid addition to the cooling curve in crystallization—means the difference between a product that stores stable on a pallet and one that slowly absorbs atmospheric moisture and cakes up within weeks.
End users may not see what happens upstream, but as manufacturers, we catch the slips before they cost someone a whole reactor run. Every lot we release bears traces of this vigilance: analytical records track back to the raw input, with HPLC and Karl Fischer data checked by hands that know what true consistency looks like. The importance grows every year, because as applications diversify into new chemical entities for biotech and advanced materials, stability parameters get tighter, not looser. As work moves from flasks in research labs into pilot and commercial scale, the confidence in reactivity, yield, and purity separates dependable partners from forgettable vendors.
On production floors, the physical properties of 2’-Aminoacetophenone hydrochloride matter as much as its certificate. Inspectors snap open bags and run tactile checks; the solid should pour, not slump. This matters during automated weigh-dosing, where ill-granulated powder fouls machinery and halts production. In manufacturing, control at the interface—where chemistry meets equipment—keeps the lines running. Drum packaging, inner liners, stack configurations: even a five-degree difference in warehouse temperature shifts a product’s free-flowing behavior. Packing teams apply lessons from past mishandling: never double-stack drums in hot climates; rotate inventory by moisture test, not just by date. Details shaped by years dodging material losses count for more than generic packing instructions ever will.
Manufacturing 2'-aminoacetophenone hydrochloride today means shouldering stewardship beyond basic compliance. As processes become greener and restrictions on effluent tighten, we switch to solvent systems with the lowest hazard profile. Teams work around active ventilation and closed-system crystallizers to capture fugitive vapors. Side-streams head straight into on-site treatment, not down the drain. More than a line in a code—the result of daily checks, not annual audits. Transitioning to lower-waste hydrogenation and consistently recycling all spent wash waters reduces burden for both our site and for customers handling residuals at their end. Clean chemistry in production isn’t just lip service. We see less solvent use, fewer complaints from neighbors, and happier process operators breathing fresher air.
Our experience with scaling synthesis—from grams to many tons—teaches that few products flex as smoothly as 2’-aminoacetophenone hydrochloride when produced with discipline. In R&D, minimal batches can be critical for developing new candidates; reliable small-lot supply lets researchers focus on the real science, not chasing missing intermediates. On their approval, scale-up doesn’t reveal nasty surprises, since the same core process feeds the pilot plant as the main facility. Parameters stay tight, crystallinity matches, and product characteristics translate without a hitch. Supporting contract manufacturing means maintaining a buffer stock, always made to order within recent weeks, never shipping aged inventory or leftovers blended from prior campaigns. Project managers report confidence when switching from research supply to kilo-scale runs, a testament to the time spent ironing out reproducibility way before order volumes pick up.
Working hand-in-glove with pharma R&D teams gives us insight into challenges that never show up on a technical data sheet. A formulator calls: their usual supplier sent a lot turning yellow too quickly. Engineers suspect cross-contamination with a different aromatic amine. Our in-house support analyzes suspect batches, tracing the fingerprint by NMR, and uncovers the signature of poor crystallization. We dig into batch records and share all intermediate results—transparency that helps our customers troubleshoot while protecting their own IP and process routes. In those moments, being the original manufacturer, with every run documented back to raw source, turns an operational headache into a process lesson for both our company and theirs. We keep archives, offering detailed Carr index or moisture absorption curves, letting users adjust handling protocols in real life rather than learning by repeated failure.
Success in our market never depends on price alone. Regular buyers tell us stories of missed shipments or recurring issues with aggressive particulates or errant color change, resulting from uncontrolled sources beyond factory gates. We prioritize traceability and factory-direct communications. As the developer and producer, we tune every step to real-world needs: adjusting crystal size for pharmaceutical granulation, balancing flow for automated dosing, and managing impurities to suit the sensitivity of each downstream use. We never rely on brokers or resellers to translate our technical commitments; our reputation follows each drum, and feedback from every batch review pushes us to cut yet another half percent residual, or tighten specification windows, without waiting for the next regulatory pressure.
A project manager from a specialty pharma group brings us a unique set of requirements—non-standard solvent solubility at elevated temperature, no cross-contamination with unrelated aminoketones, and absolute batch transparency. Rather than standard-issue powders, we collaborate to run trial lots through our pilot plant, adjusting process steps to fit narrow analytical targets. Our technical staff join their R&D reviews, answering questions that go beyond any product sheet. They want to know origins, and with full batch logs, we confirm which generation of catalyst was in use, which drum of hydrochloric acid supplied the final salt, and even warehouse humidity history. For new applications in nanomaterials and dye technology, researchers send feedback on crystal shape and size distribution, informing future campaigns to make more compatible lots. This two-way exchange, only possible when manufacturing is direct and collaborative, leads to better outcomes and deeper trust.
Every product batch emerges from a cycle of checks—microscopic observation, razor-blade batch splits, and constant tracking of color, SO4^2-, and Fe content. Having production on-site means we halt entire campaigns to address a rising impurity, not just filter out what’s visible. Inspectors push for better purification rounds if an early melt point result flags unusually high residue. Our commitment goes beyond paperwork: we intervene in process, not after the fact, to guarantee output that matches the same purity numbers time after time.
No intermediate is ever “finished” in chemical manufacturing. Every campaign highlights a variable worth optimizing—whether that’s improving filtration to speed up throughput without sacrificing purity, or re-engineering condenser systems to cut down oxidation products during transfer. On the plant floor, even simple operational tweaks—a redesigned agitator, a better drum liner, changes to antistatic measures—show up in product performance and cleaner handling. Each improvement trickles out to user sites, where customers run more straightforward reactions or see reduced cleaning between product changeovers. These small, constant tweaks are only possible when the factory is hands-on, never offloaded to a remote affiliate. Real progress gets measured by the people who open the next drum.
Processing and handling 2'-Aminoacetophenone hydrochloride safely means designing SOPs that keep the product and team in good shape from raw input to final use. Teams wear full suites of PPE, not just because of regulation, but because they know firsthand about transient dust or irritating vapors. Operators trained on the quirks of each batch spot risks on the fly, managing spills before they become headaches. We engineer production rooms for maximum containment, using local spill trays and controlled-access packaging areas. Trainers mentor every new worker, sharing why minor heat or moisture changes at the wrong phase escalate into real hazards. This commitment builds institutional knowledge that shows up as consistently safe, trouble-free deliveries at customer sites, and a workforce that sticks with the company years after most would quit.
Market changes ripple fast in chemical manufacturing. Regulatory thresholds shift in response to new safety and environmental studies. Each revision cycles back to us—forcing reformulation, process reselection or raw material requalification. Staying close to both the process and the end-use keeps us flexible, not scrambling. Advanced manufacturing systems, from in-line NIR monitors to real-time ERP lot tracking, integrate with hands-on oversight. As buyers look for tighter tolerances and better batch histories, we refine data logging and transparency, offering both certificate-backed specifications and the day-to-day observations that only direct manufacturers gather.
Working on both sides of the scale—from R&D support to full-scale industrial output—proves that value for our customers doesn’t just come from a drum of product, but from the pedigree of its manufacture. By anchoring every campaign in real-time observation, feedback, and a relentless push to improve, we deliver something that outpaces generic supply. Customers get not a mystery powder, but a product traceable right back to source, processed by teams invested in continuous progress, ready for the next challenge from research, process, or regulation.