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HS Code |
393752 |
| Product Name | 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide |
| Cas Number | 5739-41-1 |
| Molecular Formula | C9H10Cl2N2O2 |
| Molecular Weight | 249.10 |
| Appearance | White to off-white solid |
| Melting Point | 151-154°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Storage Conditions | Store in a cool, dry place; keep container tightly closed |
| Pubchem Cid | 2734839 |
As an accredited 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, sealed 25g plastic bottle with tamper-evident cap, chemical label detailing ‘2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide’, CAS and hazard symbols. |
| Shipping | 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide is shipped in tightly sealed containers, protected from light and moisture. The package is labeled with appropriate hazard warnings and handled as a chemical substance. Transport complies with all relevant safety regulations to ensure secure delivery, minimizing risks of exposure, leakage, or contamination during transit. |
| Storage | 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from sources of ignition and incompatible materials such as strong oxidizers. Protect from moisture and direct sunlight. Proper chemical labeling and secondary containment are recommended to prevent accidental release or contamination. Store at room temperature unless otherwise specified by the manufacturer. |
Applications of 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide in Industrial ManufacturingAs a specialized manufacturer of 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide, we supply this active intermediate to diverse chemical sectors that require consistent quality and proven performance in advanced synthesis. We target only established industrial pathways where this material has confirmed adoption, ensuring focused guidance for formulators, plant engineers, and technical buyers. 1. Agrochemical Intermediate Synthesis (Herbicide Manufacturing)This hydrazide serves as a key building block in the production of phenoxy acid herbicides, primarily for selective weed control in cereal crops. Downstream plants integrate the compound as a coupling agent during the synthesis of active ingredients such as Dichlorprop and related auxinic herbicides. The material influences side-chain configuration, achieving precise molecular structure demands set by regulatory frameworks, thus supporting large-scale batch processing and continuous synthesis lines in regulated agrochemical operations. Industry compliance standards
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2. Pharmaceutical Intermediate Synthesis (API Precursor)FDA-inspected and GMP-compliant pharmaceutical manufacturers employ this compound as an intermediate in the preparation of certain hydrazide- or phenoxy-derived active pharmaceutical ingredients. The material’s specificity ensures control over impurity profiles in line with pharmacopeial specifications while supporting multi-step synthesis protocols where identifiable inertness through certain stages is critical prior to API finalization. Industry compliance standards
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3. Fine Chemical Synthesis (Specialty Hydrazides and Additives)Chemical processors utilize this material for advanced synthesis streams involving hydrazide group transfer, targeting specialty chemicals such as polymer modifiers, chelating agents, or stabilizing entities for plastics. Here, sub-batch precision and traceability take priority for downstream blenders and compounders, with the material’s integration tailored for maintaining end-product functionalization critical for end-use certification. Industry compliance standards
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4. Laboratory and Analytical Reagent ProductionProducers of certified analytical reagents and laboratory compounds source this hydrazide for use in the development of reference standards and derivatization agents. Its consistent purity level and well-defined reaction profile allow labs and diagnostic manufacturers to maintain tight batch-to-batch reproducibility while meeting stringent documentation requirements common in ISO-accredited environments. Industry compliance standards
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5. Custom Synthesis for Crop Science R&DResearch organizations and contract synthesis labs engaged in the discovery of novel auxin analogues and herbicide candidates apply this material as a precursor in rational molecular design. Control over structural analog synthesis supports evaluation under regulatory trial conditions for the registration of new agrochemical active substances. Industry compliance standards
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Walking our manufacturing floor, the journey of creating 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide (2,4-DCPP hydrazide) spans both technical detail and real, tangible value. Over years spent among reaction vessels, crystallizers, and QC labs, our team has refined every stage of its production. The molecular formula C9H9Cl2N2O2 signals its identity to chemists, but it’s what we do to reach the highest consistency that tells the full story.
Every batch begins with high-purity dichlorophenoxypropionic acid, meticulously sourced to guarantee low impurity profiles. Yield and quality hang in the balance at hydrazinolysis, so our operators track reaction temperature and pH—sometimes hour by hour. No mix, no story. Purification, often overlooked, demands careful control. Small changes in crystal size, mother liquor washings, or filtration speed affect the downstream product more than datasheets can ever reveal. The lessons stack up slowly in the background: we keep records of equipment performance and solvent lots going back decades—not because anyone asks for it, but because it’s the only way to catch process drift before customers feel the impact.
Purity isn’t just a marketing term here; our hydrazide leaves the plant at 98.5% minimum, a number set not just by internal QC, but by recounting past incidents of precipitation issues or discoloration on the customer’s end. Water content and residual solvent levels come in lower than most standards, simply because persistent solvent traces provoked concerns among our agrochemical partners years ago. The melt point stays tight around 148-150°C, a direct result of slow, even cooling during crystallization—rushed production quickly taught us that shortcuts show up on analytical reports and end-use performance. These numbers only earn trust when they match real-life storage, blending, and downstream synthetic needs. So, each tweak in our drying or filtration lines is backed by shelf-life data and feedback from formulators using the product under field-relevant conditions, not just bench-top tests.
Particle size isn’t an afterthought. Early batches saw compaction problems; from then on, our grinder settings and screen checks aim at a reproducible, flowable powder, where even minor clumping gets caught before drums leave the plant floor. Each sack carries the results of a hands-on inspection—granular, not flour-like, but fine enough to wet and disperse as industrial needs dictate.
2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide carved its main application route in the synthesis of herbicidal active ingredients. Specifically, the hydrazide functional group allows it to serve in the production of substituted pyrazoles or triazoles, intermediates that form the heart of many custom agrochemical solutions. We noticed, early on, that small variations in hydrazide purity shift reaction yields in partner plants. This led to a zero-compromise approach—we adjusted feed rates and added inline monitoring because even a 1% impurity uptick in a 500 kg blend caused measurable headaches for our partners, from sticky reactors to color shifts in final product.
End users in the pesticide sector employ our hydrazide to build molecules targeting very selective weed spectrums. Other sectors, like pharmaceuticals and specialty materials, show growing curiosity driven by the nucleophilic power of the hydrazide group, enabling formation of hydrazones or azole ring systems. The reality is simple—process performance downstream starts with what leaves our drums, and we don’t get a second chance if our partners’ reactors clog, final products fail color standards, or yields drop below contract guarantees. That’s why we keep close communication channels with technical teams on customer sites, following up any reported anomaly by tracing back sample history, raw material batches, and process parameters from our records.
There’s pressure in manufacturing to cut corners for price points, but real value in specialty chemicals always tracks back to reliability. Over years of supplying leading multinationals and nimble niche formulators, we’ve seen that drum-to-drum consistency beats one-time spot purity. Standard grade hydrazide from resellers often varies more than buyers expect; we’ve run samples from multiple international producers and can point to deviations in bulk density, trace solvent levels, and off-white coloration—factors impacting automated feeding and blending systems on our buyers’ production lines.
A common shortcut involves mid-process hydrazide isolation with minimal washing to save water and energy. In the short run, these lots may hit purity specs but often trigger haze, sedimentation, or slow dissolution in solvents like DMF and THF. Our crystallization setup, by comparison, is designed with enough buffer capacity to accommodate double-wash cycles, extra vacuum drying, and screening for fines. It took years of lost hours and sometimes lost business to justify staying on this path. Some customers use the product “as received,” so we stopped blending different batch lots—each drum today comes from a single homogeneous run.
Another key difference: trace metal content. Our line uses corrosion-resistant alloys throughout, minimizing iron and other metal pickup. This matters for sensitive pharmaceutical syntheses, where metallic contaminants can poison catalysts or catalyze side reactions. Sometimes, we’ve been pushed out of price competitions by mass producers using unlined or older reactor systems; yet the feedback loop always brings a segment of the market back when critical lots face batch failures on their lines, leaving them in search of a supplier that can track every anomaly straight to its source.
Long before regulatory updates or customer audits, we committed to complete batch traceability. Each production lot receives a unique tracking code, with batch records logged from the first raw material addition to the final drum seal. Raw material certificates, in-process controls, finished product analyses, and even operator checklists all stay within our archives. If a downstream user calls, needing details about solvent usage or trace contaminants, we respond within hours, with the full audit trail—no thumb-twiddling while regulatory deadlines approach.
Environmental controls also sit central. Dichlorophenoxypropionic-based chemistry carries risks—chlorinated waste, hydrazine hazards, and dust control mark our plant layout. Waste minimization and containment take priority, and not just for regulatory reasons. Neglected vent line maintenance once caused visible plumes, sparking a costly intervention and sharper controls: every emission monitor, every wastewater tank, owes its existence to a lesson learned the hard way. By now, our product sheets mention not just purity and color, but also batch-specific trace waste signals, because modern customers increasingly need this before even trialing a kilo lot.
Our plant survived not by painting green slogans, but by thinking about the long-term business cost of a safety lapse. Staff training on emergency handling, closed handling for hydrazine reagents, and full PPE compliance—all of these trace back to keeping people safe and operations within customer comfort zones. Clients want low impurity, pure hydrazide, but they also want the assurance that it comes from a setup that will still be running, and supplying, a decade from now.
The real mark of service isn’t just in shipping a standard drum but solving problems that arise on customer lines. Early formulation efforts by a crop protection client showed trace color impurities bleeding into their premix granules—a problem not traced in specifications. By examining our drying cycles and ramping up oxygen control, we cut peroxide formation at the last stage, shrinking the issue at its source. Not every batch will throw surprises, but CTA meetings, technical reports, or detailed phone follow-ups often reveal hidden expectations, sample mishandling, or usage quirks.
One innovation we’ve implemented, based directly on user feedback, altered crystallization pH in the last stage to push color specs tighter and aid in dry-blend compatibility. Our plant floor discussions now include not just foremen and analysts, but also incoming queries from customers’ production managers—sometimes involving joint troubleshooting to determine what step in blending or milling triggers an unexpected caking behavior.
We believe suppliers who remain invisible behind email templates can never build long-term trust. Years ago, we set up an internal technical support loop that keeps logs of every out-of-spec or disputed shipment. Our field reps each walk through plants where our hydrazide sees actual use, reporting back on things like dusting, static, or even odor on mixing lines—nuances missed by remote audits or formula sheets. Deep relationships form when we honestly examine failures, offer samples, or co-develop best practices for handling and dissolution at the customer’s site.
The global marketplace for fine chemical intermediates gets tougher each year. Sources range from large multinational plants to backyard-scale operations with vastly different control standards. End users know the risk that comes from inconsistent suppliers: batch failures, requalification costs, and the unquantifiable stress when a late shipment upends multi-million-dollar production schedules.
Over time, supply chain disruptions turn price buyers into reliability seekers. We’ve kept our export history clean by maintaining real shipping stock, informed by direct tracking of logistic bottlenecks. Instead of maximizing one-off spot sales, our focus lands on building capacity buffers, surge manufacturing plans, and forecasting alongside regular buyers. We know which port routes slow in monsoon season, which documentation holds up customs clearance, and how airfreight plays into regional shortages—our planning reflects this on-the-ground information, not just spreadsheet modeling.
International regulatory stories often drive new customer questions. For our hydrazide, we proactively update material dossiers, strictly controlling residues, and maintaining openness with buyers about any batch recalls, process changes, or regulatory shifts that might affect formulation compatibility. Trust for us builds not with words, but with a pattern of meeting or exceeding expectations through transparent, fully documented shipments and direct technical collaboration. Our customer loss rate drops every time we demonstrate openness, even in admitting when a specification shift means a temporary gap in supply.
Hydrazine supply, raw dichlorophenoxypropionic acid stocks, and solvent pricing shape our own scheduling headaches. Experience taught us to double-source every non-proprietary raw material and keep close contacts with primary upstream manufacturers. We host regular audits, both outgoing and incoming, with our core suppliers to ensure that each shipment fits the standards our own production demands. When price or supply shocks hit, we adjust internal scheduling—not by sacrificing quality, but by managing batch runs, line maintenance, and staff allocation with day-by-day review. Our record of few backorders points to the value of direct visibility over substitutes or imports, while our repeat business base indicates that our buyers feel the same pain points we do, just further down the supply chain.
Our openness about pricing, transparency on lead-time changes, or notification about shifts in packaging standards keeps customers in the loop. Once, a spate of fiber drum failures in transit drove us to test and eventually mandate triple-strength inner liners—problem solved at our own expense because downstream users, sometimes thousands of kilometers away, can’t afford production stoppage waiting for a replacement bag. Lessons like these sound simple, but they drive our approach to product stewardship: meeting challenges head-on using decades of practical know-how, not pie-in-the-sky research or unconstrained marketing claims.
Standing inside our storeroom, surrounded by past labels and production records, it’s clear that a manufacturer’s reputation depends on more than a certificate or analysis report. Our 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide reflects long years spent listening to the chemical’s users, not just the purchasing managers. Whether a batch ends up filling drums at a pesticide plant, becomes part of an active pharmaceutical synthesis, or gets used in a research pilot line, success traces back to honest, hands-on execution and a willingness to stand behind every drum with real answers, not sales scripts.
Competitors may advertise hydrazide at a lower price, or mimic technical language, but consistency, traceability, and openness can’t be faked with flashy labels or third-party copy—and sooner or later, the most demanding segments of the industry realize the difference. We maintain steady production not by luck, but by respecting the hard, workmanlike lessons that each batch brings. Our team invests the same energy in quality control today as we did with our very first lot, responding to real-world feedback, continuous improvement, and an unyielding drive for reliability.
For anyone who depends on 2-(2,4-Dichlorophenoxy)Propionic Acid Hydrazide, those on the plant floor, in the QC lab, or managing a full-scale production run, the real assurance lies in diligent manufacturing, transparent communication, and a partner ready to answer the tough questions—every time.