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HS Code |
892641 |
| Productname | 2-Chlorophenoxyacetic Acid Hydrazide |
| Casnumber | 2212-65-1 |
| Molecularformula | C8H9ClN2O2 |
| Molecularweight | 200.63 g/mol |
| Appearance | White to off-white powder |
| Meltingpoint | 147-150°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Storageconditions | Store in a cool, dry place, away from light and moisture |
| Purity | Typically ≥98% |
| Synonyms | 2-Chloro-phenoxyacetic acid hydrazide; 2-CPA Hydrazide |
| Smiles | Clc1ccccc1OCC(=O)NN |
| Inchi | InChI=1S/C8H9ClN2O2/c9-6-2-1-3-7(5-6)13-4-8(12)11-10/h1-3,5H,4,10H2,(H,11,12) |
As an accredited 2-Chlorophenoxyacetic Acid Hydrazide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The 100g package of 2-Chlorophenoxyacetic Acid Hydrazide is sealed in an amber glass bottle with a tamper-evident cap. |
| Shipping | **Shipping Description for 2-Chlorophenoxyacetic Acid Hydrazide:** Ship in tightly sealed containers, protected from moisture and direct sunlight. Store at room temperature or as specified by the manufacturer. Handle with care, using gloves and eye protection. Ensure compliance with local, national, and international chemical transport regulations. Not classified as hazardous for transport under most shipping guidelines. |
| Storage | 2-Chlorophenoxyacetic Acid Hydrazide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from direct sunlight and sources of ignition. Keep separate from incompatible substances such as strong oxidizing agents and acids. Avoid exposure to moisture and store at room temperature or as recommended by the manufacturer. Always follow appropriate safety protocols when handling. |
Applications of 2-Chlorophenoxyacetic Acid Hydrazide in Industrial ManufacturingAs the direct manufacturer of 2-Chlorophenoxyacetic Acid Hydrazide, we support its targeted integration into advanced chemical processes required by regulated downstream industries. Our technical guidance reflects current industrial adoption, focusing on compliance, exact formulation inclusion, process compatibility, and proven end-use product types. 1. Herbicidal Intermediate Synthesis for Agrochemical Manufacturing2-Chlorophenoxyacetic Acid Hydrazide functions as a key hydrazide intermediate in the synthesis of select pyridazinone and triazole herbicide actives for post-emergence crop protection. The material contributes to the formation of distinct heterocyclic scaffolds through condensation or cyclization steps, which are core to high-specificity herbicide molecules. Downstream agrochemical producers use this route to achieve potent actives with targeted selectivity for broadleaf weed control, meeting stringent environmental and residue thresholds demanded by global agricultural markets. Industry compliance standards
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2. Active Pharmaceutical Ingredient (API) Intermediate in Analgesic SynthesisChemical manufacturers engaged in regulated pharmaceutical production utilize 2-Chlorophenoxyacetic Acid Hydrazide as an essential building block in multi-step syntheses for specific non-steroidal anti-inflammatory drug (NSAID) molecules. Its role as a hydrazide coupling partner supports precision functionalization, enabling efficient route development and the realization of key intermediate scaffolds. GMP-compliant facilities control the addition and subsequent purification for consistency and safety, addressing strict analytical and impurity thresholds within the pharmaceutical value chain. Industry compliance standards
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3. Dye Coupling Agent for Specialty Organic PigmentsProducers of technical dyes and printing inks leverage the hydrazide function to couple with diazonium salts in the synthesis of advanced azo and hydrazone dye structures. This application requires precise control over reactivity to ensure high chroma and solvent-fastness, impacting color yield and batch reproducibility in end-use formulations. The specialty pigment sector emphasizes batch traceability and safety, serving demanding textile and ink formulation markets with high regulatory oversight on colorants and auxiliaries. Industry compliance standards
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4. Laboratory Reagent for Analytical DerivatizationAccredited analytical laboratories and advanced research centers deploy 2-Chlorophenoxyacetic Acid Hydrazide as a derivatization reagent for pre-column or post-column sample preparation in high-performance liquid chromatography (HPLC) and related trace analysis workflows. This use enables improved detectability of carbonyl-containing analytes by conversion to hydrazones, facilitating higher sensitivity and specificity in quantitative assays across chemical and food analysis. Manufacturers ensure high-purity lots suitable for controlled laboratory environments, with full batch documentation and analytical support for mission-critical applications. Industry compliance standards
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Walk into any chemical plant, you’ll notice pretty quickly that trade names don’t make anything run smoother. Crews trust numbers. Chemists lean into structural detail, quality, and clear insight into what they’re working with—and so do we. We built our work around 2-Chlorophenoxyacetic Acid Hydrazide because of what it does, day after day, in the manufacturing process and beyond. Its CAS number 6579-42-0 pops up across research articles, patents, and development projects for a reason. Our entire operation puts reliability, reproducibility, and performance at the front.
Our approach doesn’t mimic the big box resellers who tell stories without ever entering the reactor room. Each batch of 2-Chlorophenoxyacetic Acid Hydrazide rolls off our line after rigorous monitoring. We select raw materials only after confirming their traceability and purity so that what ends up in your hands matches the strictest project requirements down to single-digit ppm of contaminants.
Chemists in our synthesis division make sure the hydrazide’s formation steps run to completion, minimizing residual acetic acid derivatives. We don’t cut corners on crystallization either, hunting for fractionally better solubility curves or consistent particle habits that guarantee a powder easy to weigh and dissolve. Year after year, the feedback from the field matches up: consistent reactivity, uniform color, confident handling.
Customers often ask about our quality thresholds. Average purity doesn’t cut it here. We pull out HPLC traces that show more than 98.5% main component, confirming any minor secondary peaks are isolated, evaluated, and, where necessary, tracked batch to batch. Routine checks make sure water content stays low by Karl Fischer, safeguarding against batch-to-batch variability and unwanted side reactions. Volatile matters and iron traces get reviewed at every stage, something that triggered full equipment changes in our plant when we discovered trace leaching years ago.
This hydrazide attracts bench chemists and process engineers who need more than theoretical yields. In organic synthesis, it fits right into schemes calling for nucleophilic substitution or in building nitrogen-nitrogen bonds, which often become bottlenecks in scale-up chemistry. We have watched it play roles as an intermediate for plant hormone analogs, especially when researchers build hybrids that need fine-tuned auxin properties. Companies working in agrochemicals have returned again and again for pilot or kilo quantities, aiming to synthesize novel herbicides and growth modifiers.
We provide not just a product but a stability record. Under dry, cool storage, our 2-Chlorophenoxyacetic Acid Hydrazide remains unchanged for at least two years—a point our clients in regulatory-heavy sectors depend on. Each new customer’s query about decomposition is answered not just with a certificate, but with real aging studies, showing no new impurity signals under recommended conditions.
On the formulation front, those working to optimize release profiles or compound uptake in soil matrices cite our lot-to-lot performance. The hydrazide’s particular structure—offering a chlorophenoxyacetic backbone—drives selectivity and reactivity in synthetic routes unavailable with more generic hydrazides. Its functional flexibility encourages medicinal chemists to test it as a linker, hydrazone precursor, or scaffold for designing bioactive agents targeting specific plant or microbial regulatory pathways.
Academic groups from Asia, Europe, and North America keep circling back—sometimes seeking subtle modifications in the substitution pattern, sometimes orders for the standard hydrazide as a reference. What comes back each time is the emphasis on sample integrity and knowing the full profile of what’s inside the drum.
Many in the field cut their teeth on simple hydrazine derivatives before realizing subtle changes in the aromatic ring make a real-world difference. Our 2-Chlorophenoxyacetic Acid Hydrazide stands apart from plain acetic acid hydrazide because of the 2-chloro-substitution on the phenoxy group.
That single chlorine atom matters more than the molecular weight or melting point numbers. In our lab, the reactivity profile shifts—aromatic substitution becomes more directed, while electron withdrawing effects stabilize intermediates. For those working up new actives in R&D, this specificity opens up routes not available with para- or unsubstituted analogs.
Physical handling improves too. Compared to unsubstituted analogs, our compound displays a more stable powder form at room temperature, proving easier to store and transport. Our packers noticed reduced clumping and improved flow, making it less prone to caking in storage silos, a frustration familiar to anyone who’s opened an aging drum of standard hydrazides.
Solubility matters in analytic and scale-up work. We took the time to test it against non-chlorinated hydrazides in common solvents: ethanol, methanol, DMF, and acetonitrile. Results consistently pointed to easier dissolution with less stirring, which in a production setting translates to saved time and fewer headaches about incomplete reactions or dosing errors.
Environmental behavior doesn’t slip by us either. The chlorine presence on the phenoxy group gives resistance to microbial breakdown compared to more basic hydrazide derivatives, providing longer shelf stability—something not all clients recognize until after they’ve seen product shelf life in action.
We’ve run hundreds of kilograms through reactors, not just lab flasks. Scale-up led us to optimize the temperature controls for the exothermic hydrazinolysis phase. We recall batches where small lapses in cooling schedules allowed trace byproducts to creep up, prompting us to overhaul our chiller capacity and adjust hydrogen chloride quenching routines.
Quality control comes from a lived experience with on-spec and off-spec product. Over the years, we found that sticking to a narrow pH window during workup made a dramatic difference to the final appearance and recoverable yield. Dull powder signals minor hydrolysis—the glossy, consistent batch gives green lights for release.
Failure in the synthesis process isn’t something we sweep under the rug. Lessons became written SOPs, with each operator and supervisor understanding the why behind the instructions—not just the steps themselves. This shifts output from a variable commodity to a reliable building block, something R&D teams can plot experiments around, confident that yesterday’s purity and color match what arrives in the next shipment.
Anyone who has spent time on the production or formulation floor knows safe handling doesn’t come from stickers or labels—it comes from knowing the product. While 2-Chlorophenoxyacetic Acid Hydrazide isn’t classified as acutely toxic, we don’t cut corners on closed system handling or dust minimization. Overexposure to hydrazides has a history of causing skin or eye irritation in rare cases, pushing us to install local exhaust and reinforce PPE requirements well before they turned into standard regulatory demands.
Worry about trace impurities—whether solvent residues, metals, or potential nitrosamine precursors—drove us to upgrade analytical support. Each release comes with a fresh stack of data: NMR, FT-IR, and in some cases, mass spec confirmation depending on the end-use requirements. If a customer pipeline involves regulatory registration anywhere from GLP field trials to active ingredient submission, they won’t get left short by surprise impurity flags.
All waste generated during manufacture or handling—liquid, solid, or vapor—runs through a closed loop, captured and neutralized. Several years ago, stricter licensing pushed us to automate reporting to environmental authorities, introducing digital barcodes for waste and emissions tracking. These weren’t box-ticking exercises—they plugged costly leaks, prevented off-spec rework, and gave us a detailed map of process optimization opportunities.
Schools and startups with smaller R&D budgets often share stories about scaling reactions that worked in the literature but failed with other suppliers. One researcher told us about a threefold yield boost after swapping out low purity hydrazide for ours—a direct link to less need for laborious post-reaction purification.
In recent years, a major university group used our 2-Chlorophenoxyacetic Acid Hydrazide to generate a new class of nitrogen-based derivatives with standout herbicidal potential. The clean reaction profiles shaved weeks off their analysis—most impurities present in competing samples simply didn’t show up. They traced this difference to tighter control in our manufacturing, confirmed by running side-by-side TLC and HPLC on both products.
In the agrochemical pipeline, field practitioners saw that formulations created with our hydrazide showed better active stability on shelf. This led directly to improved shelf life claims in official submissions, not theory or guesswork. The fewer headaches downstream made a case for staying with a product they trust, not chasing the lowest price per kilo.
What surprises new users isn’t the standard numbers—those are expected—but the lack of hidden batch-to-batch drift. The same handling characteristics appear month after month, crucial for long R&D projects, fast turnarounds in scale-up, or when regulatory documentation spans years.
The feedback loop never closes. Product teams, plant managers, and researchers meet regularly to debate changes in process conditions, impurity control, or blending steps. This means every year, the product profile tightens, process emissions drop, and we notice right away if any new supplier is trying to cut corners upstream.
Plant operators work alongside chemists to trial small tweaks—such as adjusting the order of addition to the condensation reaction or modifying solvent washes—to fine-tune not just yield, but also the ease of downstream filtration. Staff spend more time than competitors directly observing crystal form and particle size because we see these differences impact end-user success more than any specification sheet can describe.
Upgrade cycles for equipment are timed around actual feedback, not just depreciation. After a period of customer complaints around trace iron content, we swapped out several vessel linings and revised routine passivation schedules, seeing a measurable drop in off-color batches. The changes paid off in higher NMR clarity and longer shelf stability.
Building all these lessons into a well-defined 2-Chlorophenoxyacetic Acid Hydrazide product means the supply chain doesn’t get jolted by unpredictability. R&D teams and production chemists rely on what ships to them being what the method calls for—no last-minute surprises, and no scrambling for remedial purification or reformulation.
Rules about chemical use keep evolving—especially for compounds aimed at agriculture or specialty fine chemicals. Every year, paper trails from ingredients to finished goods lengthen. We take compliance documentation seriously because we have seen the roadblocks that missing analytical data or poorly tracked raw materials create. Whether it’s a national registration or custom certification, users draw confidence from receiving data packages that trace material all the way back to the earliest batch.
Pressure to cut environmental footprint increases costs, but it pushes us to design each batch run with less waste and lower emissions. Investment in online monitoring and process controls caught process excursions in time to prevent scale-up disasters. Making these investments keeps the plant safe and lets clients avoid time-consuming secondary testing, which often burns through more budget than buying higher grade material in the first place.
We monitor new restrictions and guidelines globally—not after fines or shutdowns, but before rules shift. This means if a region tightens purity requirements or adds impurity testing for hydrazides, we can support registration without scrambling, as history shows adaptation works better than last-minute crisis management.
Many manufacturers promise high purity and lot consistency. Our differentiators are grounded in actual manufacturing experience. Real operators know not every batch will be a textbook run. We keep extensive logs and trend analyses on yield, color, melting point, and impurity drift—catching those shifts before they reach the warehouse door.
Investments in technology matter most when things go wrong. Inline reaction monitoring, faster cooling systems, improved solvent recovery—they all tie back to lessons learned from unscheduled downtime and near-miss events.
Market shifts have led others to sell lower-cost or blended hydrazide grades. The challenge for buyers is sorting out who controls their upstream and who outsources at every step. Our advantage comes from tight control—each kilogram comes from our reactor, with our data, and no games with paper-swapped intermediates or ingredient relabels.
The 2-Chlorophenoxyacetic Acid Hydrazide that leaves our site offers end-users confidence rooted in hands-on experience, not just claims. Over the years, client projects—whether in fine chemicals, agro research, or pharma intermediates—trace their successful runs back to reliable input. After all the investment in people, quality routines, and partner feedback, the trust clients gain is built with every truckload, every drum, and every testing sample that passes the most rigorous checks we can devise.