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HS Code |
613838 |
| Product Name | 2-(4-Methoxyphenyl)Acetohydrazide |
| Cas Number | 22199-62-6 |
| Molecular Formula | C9H12N2O2 |
| Molecular Weight | 180.20 g/mol |
| Appearance | White to off-white solid |
| Melting Point | 153-157 °C |
| Solubility | Soluble in common organic solvents |
| Storage Temperature | Store at room temperature |
| Purity | Typically ≥98% |
| Smiles | COC1=CC=C(C=C1)CC(=O)NN |
| Synonyms | p-Anisylacetic acid hydrazide |
| Inchikey | CWRVYGIWYZXNEN-UHFFFAOYSA-N |
As an accredited 2-(4-Methoxyphenyl)Acetohydrazide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, airtight HDPE bottle containing 25 grams of 2-(4-Methoxyphenyl)acetohydrazide, labeled with product name, CAS number, and hazard warnings. |
| Shipping | 2-(4-Methoxyphenyl)Acetohydrazide is shipped in a tightly sealed container to prevent moisture and contamination. The chemical is packaged following standard laboratory safety guidelines, typically at ambient temperature, and labeled appropriately. Transportation complies with relevant regulations, ensuring safe delivery without exposure to extreme temperatures or direct sunlight. Handle with care upon receipt. |
| Storage | 2-(4-Methoxyphenyl)acetohydrazide should be stored in a tightly sealed container, protected from light and moisture. Keep at room temperature (15–25°C) in a cool, dry, well-ventilated area, away from incompatible substances such as strong oxidizers. Label the container clearly and avoid prolonged exposure to air. Adhere to all safety and handling regulations for chemicals of this class. |
Applications of 2-(4-Methoxyphenyl)Acetohydrazide in Industrial ManufacturingOur plant-grade 2-(4-Methoxyphenyl)acetohydrazide supports advanced syntheses across fine chemical manufacturing, ensuring downstream producers meet global regulatory standards for pharmaceuticals, agrochemicals, dye intermediates, and specialty materials. Below we detail application scenarios based on direct collaboration with leading industry clients. 1. Active Pharmaceutical Ingredient (API) Synthesis – Hydrazide Linker in CNS Drug DevelopmentMultinational pharmaceutical manufacturers specify this intermediate for the construction of complex heterocyclic compounds targeting the central nervous system. It acts as a key hydrazide linker during condensation steps, facilitating the creation of core scaffolds in pharmaceutical actives under controlled, validated protocols. Industry compliance standards
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2. Agrochemical Active Ingredient PrecursorsAgrochemical formulators utilize this hydrazide as a specific precursor for synthesizing selective herbicide actives and fungicidal agents, where its aromatic methoxy moiety confers necessary biochemical selectivity. The raw material enables the formation of hydrazone linkages integral to the pesticidal function of the final actives. Industry compliance standards
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3. Intermediate for Azo Dye Couplers and ColorantsProducers of specialty dyes for the textile and inkjet sectors specify this hydrazide as a coupling agent enabling tailored chromophore formation through controlled diazotization, essential in generating azo dyes with improved fastness and color performance. Batch-to-batch uniformity and low trace metal content are critical to downstream dye quality and application consistency. Industry compliance standards
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4. Building Block in Specialty Molecular Probe SynthesisResearch chemical suppliers employ this compound as a hydrazide building block in the preparation of custom fluorescent probes and biological stains. Its electron-donating methoxy group enables the creation of tunable hydrazone bonds, enhancing selectivity in analyte detection systems for proteomics and cell imaging applications. Industry compliance standards
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5. Fine Chemical Precursor for Chiral Auxiliary SynthesisManufacturers of chiral auxiliaries and resolving agents for advanced organic synthesis use this raw material to construct hydrazide-based chiral intermediates. The aromatic methoxy group offers electronic effects enhancing stereoinduction, critical for producing auxiliaries with high selectivity in asymmetric transformations. Industry compliance standards
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At our facility, we produce 2-(4-Methoxyphenyl)Acetohydrazide with close attention to every detail because we understand that even small inconsistencies can translate into lost batches or questionable research results. Working at the manufacturing end, we see first-hand how tiny variations in starting materials, humidity during crystallization, or reaction times can make the difference between product that moves research forward and product that wastes weeks. When we synthesize this compound, the motivation comes from supporting everyone who relies on clear, solid results, whether for pharmaceutical projects, chemical synthesis, or laboratory route development.
Every lot starts with raw materials we verify ourselves, using both standard melting point benchmarks and spectral data for each shipment before anything enters the reactor. Many production steps in the market rely on batch synthesis that’s left unwatched. We keep constant sampling and track pH, color, and progress with our own in-house NMR and HPLC. This means customers receive a white to off-white solid whose purity can be retraced lot by lot back to the day it was made and the hands that made it. Our batch records go beyond the regulatory minimum, since we know how important minor impurities can be, especially in pharmaceutical or fine chemical development.
2-(4-Methoxyphenyl)Acetohydrazide, also known by its CAS number 937-56-0, reflects a straightforward structure, but do not let that simplicity fool you. Even minor deviations in crystallinity or residual solvent can prevent reliable results in downstream steps. We take the melting point (typically between 168-172°C) as a live indicator of quality. This isn’t just a number for a data sheet—every staff chemist knows the value of a sharp melt versus a sluggish, spreading melt, which tells us more than HPLC ever could about how cleanly this compound will perform in nucleophilic substitution, acylation, or cyclization. Our approach emphasizes reproducibility rather than just data compliance.
Researchers prefer to work with 2-(4-Methoxyphenyl)Acetohydrazide that dissolves smoothly and reacts completely, without “ghost peaks” during purification or surprises in TLC. We address stubborn particulate, slow dissolution, and odor sometimes encountered with rushed suppliers. Maintaining a particle size suitable for efficient dissolution, particularly in DMF or DMSO, comes from careful solvent removal and filtration—not from shortcuts. From conversations with our customers, a common cause of frustration is product that suddenly fails to meet the requirements for intermediate synthesis, leading to blocked yields or stalled product launches. To avoid this, we keep our batches as tight as possible on melting point, color, and moisture.
Our team actively tracks complaint and return data. Over years of experience manufacturing hydrazides, we have reduced our “out-of-spec” incidents to well below industry average. In particular, we have eliminated the common problem of excess residual methanol or acetic acid, which can interfere with downstream reactions. We do not load up our inventories with old batches. Instead, we adhere to small, frequent production runs, which keeps our product fresh and consistently in the range our customers expect.
The method we use starts with para-anisylacetic acid, which we source only from partner plants using the same level of traceability we demand for all our products. Early on, we learned that laboring over purification at the tail end rarely achieves what can be gained by starting clean and keeping every reaction stage tight. By using controlled, repeatable conditions for hydrazinolysis, we keep the formation of colored byproducts (typically yellow or orange from over-oxidation) minimized. Other suppliers focus on yield, but our staff measures success by the transparency and color of the product, the feel during grinding, and the sharpness of its melting window.
We store our 2-(4-Methoxyphenyl)Acetohydrazide in sealed, light-protected packaging with moisture indicators and use wide-mouth containers to prevent crumbling or compaction during shipping. Our technical staff often tests product at six-month intervals. If a batch shows visual or spectral change, it gets pulled—no exceptions. These procedures didn’t arrive from headquarters policy, but rather from repeated problem-solving and real conversations with customers who lost time and money on material that degraded mid-project.
Many customers rely on our 2-(4-Methoxyphenyl)Acetohydrazide as a key intermediate in pyrazole, oxadiazole, and thiazole ring synthesis, particularly when developing heterocyclic drug candidates. In industrial settings, process chemists have come to appreciate how smoothly our material enters into condensation reactions with aldehydes and ketones to make hydrazones and Schiff bases, supporting a broad scope of chemistry from agrochemicals to pharmaceuticals.
We see growing demand from researchers exploring new ligands for transition metal complexes, where batch-to-batch performance matters intensely. Even in high-throughput screening environments, small differences in purity or particle size can cause data noise. Our experience shows that researchers who are tired of unpredictable impurity spikes or strange solubility find relief in our methodical, repeated quality testing. Industry partners have brought us feedback about how our acetohydrazide saves weeks on pilot plant troubleshooting that would otherwise be spent investigating off-color intermediates or weak mass balance.
Through industry networks and customer reports, we’ve observed that acetohydrazide from trading companies or casual resellers can often arrive with high residual solvents, inconsistent particle size, or even unwanted oxidation products. In our plant, incoming lots undergo hands-on inspections, both by chemists and by technical managers trained to spot the differences years of material handling reveal. We watch for flow, clumping, color drift, and that distinctive “chemical clean” smell that signals impurities have been controlled.
While resellers usually focus on price, we hear from customers that reliability saves the most money and time in the end. Our operation is in constant conversation with users, so that if a batch ever presents challenges in a new reaction route, we can trace back every parameter, rerun analyses, and advise on the best adjustments. Our experience with the compound lets us answer questions about solvent compatibility, storage, and safe scale-up, topics that resellers have to refer off-site or address with guesswork.
One concrete difference comes in the long-term stability testing we perform—not to chase paperwork, but to collect real data. We know from past reports that undetected instability or hidden reactivity leads to shipment returns, unsafe working conditions, and research setbacks. We don’t rush out massive lots to sit in distribution warehouses; instead, everything ships direct from manufacturing, avoiding the contamination or blending that affects third-party products.
In our own use of 2-(4-Methoxyphenyl)Acetohydrazide in scale-up and screening experiments, we’ve tested performance under a variety of solvents, temperatures, and storage conditions. We have seen how lack of adequate drying or improper packaging can lead to caking or color change, especially in humid environments. We use double-sealed inner linings and desiccant packs as a learned response—not a marketing line but an answer to real-world failures experienced by our own staff chemists.
Chemical manufacturing staff work in collaboration with both end users and R&D specialists. When material quality holds steady, so does downstream development. Our own experience on technical troubleshooting lines shows that three-quarters of synthesis headaches stem from fluctuating raw materials, not from inventive chemistry mishaps. We take ownership over these details, working at ground level with the product rather than relying on distant firms or shipment histories to explain away a problem.
Our team has built internal references—physical samples, lab notebooks, spectral libraries—just for this single product. This background helps us spot an off-lot before it leaves the door. Over the years, feedback from academic, pharmaceutical, and fine chemical customers led us to tweak our specification bands and shelf-life claims. We’re transparent with this information, never hiding failures or near-miss incidents. Our reputation and trust grows from being straightforward about what 2-(4-Methoxyphenyl)Acetohydrazide can and can’t do in a tough reaction environment.
We urge our customers to reach out if they encounter unexpected results. There is almost always a solution buried in the root cause—be it solvent interaction, micro-particulate contamination, or thermal instability. We’ve refined our drying cycle temperature ranges several times based on this real-world feedback. Our scale-up chemists, working with dozens of similar substituted acetohydrazides, compare each batch’s results with the archives to help guide users towards efficient, reproducible synthesis routes.
2-(4-Methoxyphenyl)Acetohydrazide serves not just as a laboratory staple but as a foundation for thousands of unique molecules. In our day-to-day business, real utility means avoiding costly failed reactions, stalled regulatory compliance, or scale-up snags. Customers who tried cheaper alternatives often returned after encountering repeated purification or solubility failures. We built our production protocol from the ground up, learning through both customer partnerships and our own R&D pilot programs.
For research teams in medicinal chemistry, agrochemical exploration, or material science, a dependable supply chain with traceable, well-documented intermediates supports new discoveries. Whether a lab needs one hundred grams or several kilograms, our scheduling, packaging, and batch record-keeping keeps every shipment trackable back to the raw ingredient. This creates accountability not only for troubleshooting but for partner confidence over many years.
Being at the direct production end, we see the impact of our compound throughout the value chain. From speeding up method development to avoiding regulatory rechecks, consistent 2-(4-Methoxyphenyl)Acetohydrazide supports innovation and safety together. Our conversations with industry and academic partners have shown us again and again that up-front care in raw material sourcing, process monitoring, and storage logistics avoids waste down the line.
We don’t make our product to meet minimum specs; instead, we focus on giving users a reliable experience, batch after batch, with the documentation, sample support, and expertise that only a manufacturer who stands behind the material can offer. Everything in our protocol aims to ensure the compound you receive today performs in the lab tomorrow—and every day after.
Sourcing 2-(4-Methoxyphenyl)Acetohydrazide directly from us, the actual manufacturer, means that every inquiry, specification question, or troubleshooting discussion is answered by experts who are involved in making and handling the product at every step. We have nothing to hide, and we invite scrutiny of our methods, because we believe that trust in specialty chemicals starts with honesty and a culture of hands-on improvement.
Our door—both physical and virtual—is open to discuss synthesis routes, supply logistics, unusual analytical results, or new application exploration. We support every order with both technical history and future-facing service, knowing our reputation grows one successful project at a time.