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4-Isopropylphenylhydrazine Hydrochloride

    • Product Name 4-Isopropylphenylhydrazine Hydrochloride
    • Alias Pargyline Hydrochloride
    • Einecs 619-444-1
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    606342

    Productname 4-Isopropylphenylhydrazine Hydrochloride
    Casnumber 38053-10-0
    Molecularformula C9H14ClN2
    Molecularweight 186.68
    Appearance White to off-white crystalline powder
    Meltingpoint 150-154°C
    Solubility Soluble in water
    Purity Typically ≥98%
    Storagecondition Store at 2-8°C, protected from light
    Synonyms 4-(Propan-2-yl)phenylhydrazine hydrochloride
    Smiles CC(C)C1=CC=C(C=C1)NN.Cl

    As an accredited 4-Isopropylphenylhydrazine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Sealed amber glass bottle containing 10 grams of 4-Isopropylphenylhydrazine Hydrochloride, labeled with hazard symbols, chemical name, and CAS.
    Shipping 4-Isopropylphenylhydrazine Hydrochloride is shipped in tightly sealed containers, protected from moisture and light. It is transported as a hazardous chemical, requiring appropriate labeling and documentation. Packaging must ensure chemical stability and prevent leaks, in compliance with local and international regulations for handling and transportation of potentially hazardous substances.
    Storage 4-Isopropylphenylhydrazine Hydrochloride should be stored in a tightly sealed container, protected from light and moisture. Keep the chemical in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and incompatible materials such as strong oxidizing agents. Proper labeling and secure storage are essential to prevent accidental contact or contamination. Use personal protective equipment when handling.
    Application of 4-Isopropylphenylhydrazine Hydrochloride

    Applications of 4-Isopropylphenylhydrazine Hydrochloride in Industrial Manufacturing

    4-Isopropylphenylhydrazine Hydrochloride plays a critical role as an intermediate in several demanding industrial sectors. Our manufacturing teams supply this raw material directly to clients who require reliability, precise performance, and consistent integration into established processes across diversified specialty applications.

    1. Active Pharmaceutical Ingredient Synthesis

    Pharmaceutical manufacturers rely on this chemical as a key building block in the multi-step synthesis of novel heterocyclic compounds, particularly pyrazole, indazole, and hydrazone derivatives. Chemists introduce it during controlled batch reactions to create pharmacologically active molecules designed for antihypertensive, anticancer, or anti-inflammatory drugs. Accurate weighing and gradual addition under inert atmosphere prevent side reactions and support strict impurity control. Downstream, customers implement this input in GMP-validated syntheses that must pass both internal and external audits.

    Industry compliance standards

    • ICH Q7: Good Manufacturing Practice Guide for Active Pharmaceutical Ingredients
    • 21 CFR Part 211 (US FDA cGMP)
    • EDQM CEP – European Pharmacopoeia Reference Standards
    • ISO 9001:2015 Quality Management Systems

    Typical usage ratio

    • 0.8–1.3 molar equivalents relative to core substrate, adjusted depending on targeted substitution and specific pharmaceutical pathway

    Downstream process integration

    • Introduced during stepwise condensation and cyclization reactions for heterocycle assembly
    • Used in reductive amination processes after initial activation of aromatic aldehydes or ketones
    • Batch charging monitored via analytical HPLC for identity and residual hydrazine content

    Final product types

    • Pyrazole-based antihypertensives
    • Indazole anti-inflammatory drug candidates
    • Custom molecular fragments for contract API synthesis

    2. Agrochemical Intermediate in Herbicide Production

    Major agrochemical companies employ this raw material at the intermediate stage during the laboratory and commercial-scale manufacture of selective herbicides. Its unique electron-withdrawing structure facilitates coupling with chlorinated or nitroarene compounds, forming precursors for active ingredients such as phenylhydrazone derivatives. Precise pH and temperature control are essential, and chemists must carefully purge reaction vessels of oxygen to suppress byproduct formation. Each processing lot requires strict traceability for subsequent registration dossiers with agricultural authorities.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • REACH Registration (EC 1907/2006)
    • ISO 17025 Laboratory Accreditation
    • GLP (Good Laboratory Practice for pesticide registration)

    Typical usage ratio

    • 1.0–1.2 equivalents relative to the corresponding precursor compound in the condensation step

    Downstream process integration

    • Feeds directly to coupling reactions with chlorinated aromatic raw materials after pH pre-adjustment
    • Excess removed via aqueous washing; crude intermediate re-crystallized before final formulation
    • Quality control for unreacted hydrazine derivatives undertaken via GC-MS

    Final product types

    • Hydrazone-based pre-emergent herbicide actives
    • Nitroso aromatic intermediates for selective weed control
    • Bulk intermediates for formulation of finished herbicide granules

    3. Fine Chemical Synthesis of Dyes and Pigments

    Manufacturers of specialty dyes incorporate this compound during the synthesis of complex azo or hydrazone pigments. It serves as a nucleophilic agent, enabling site-specific coupling with diazonium salts and other aromatic intermediates. Formulation scientists set reaction ratios according to desired color strength and compliance with textile or ink application standards. Each output batch undergoes colorimetric and chromatographic evaluation to confirm batch consistency and absence of prohibited byproduct impurities.

    Industry compliance standards

    • OEKO-TEX Standard 100 (textile dyes)
    • EN 71-3: Safety of Toys (restrictions on aromatic amines in pigments)
    • ISO 9001:2015 for pigment production facilities
    • REACH Annex XVII (restrictions on certain hydrazine derivatives)

    Typical usage ratio

    • 0.5–1.1 molar equivalents per mole of diazonium compound, subject to structure–activity requirements for the targeted chromophore

    Downstream process integration

    • Added during controlled coupling steps under acidic conditions
    • Reaction temperature and order of addition influence spectrum and intensity of final dye product
    • Purification conducted via solvent extraction and solid-phase filtration pre-packing

    Final product types

    • Azo pigment dispersions for plastics and coatings
    • Hydrazone-based textile dyes
    • Inkjet printer ink concentrates

    4. Custom Synthesis for Advanced Material Research

    Research laboratories and pilot plants producing advanced organic electronic materials utilize this intermediate in the design of new hydrazone-based ligands, sensors, and small molecule semiconductors. Technicians integrate it into precise, low-volume syntheses, following custom routes documented under proprietary research protocols. Analytical labs test every lot against ultra-trace impurity profiles, often referencing high-purity standards required for sensitive applications such as optoelectronics or polymer modification.

    Industry compliance standards

    • ISO/IEC 17025:2017 for laboratory competence
    • Internal research-stage QA protocols for high-purity materials
    • Material Safety Data Sheet (MSDS) compliance according to GHS regulation (EC 1272/2008)
    • NIOSH/OSHA handling guidelines for specialty chemicals

    Typical usage ratio

    • As specified per research protocol; typical 0.05–1.0 mmol scale for discovery research, increased as synthesis scales up for pilot studies

    Downstream process integration

    • Synthesized under inert conditions via dropwise addition
    • Used for core modification or functionalization of aromatic scaffolds
    • Purified using advanced chromatographic methods and lyophilization for purity above 99.5%

    Final product types

    • Hydrazone ligand libraries for catalysis
    • Small molecule prototypes for organic solar cell matrices
    • Electroactive materials for sensor testing
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    Certification & Compliance
    More Introduction

    Introducing 4-Isopropylphenylhydrazine Hydrochloride: Support from the Source

    Direct Manufacturing Experience Behind Every Batch

    Daily work in chemical manufacturing brings us plenty of challenges, yet also a deep understanding of the strengths and quirks of specialty compounds like 4-Isopropylphenylhydrazine Hydrochloride. Over two decades on the production floor and in process labs, we’ve handled its synthesis, purification, and quality controls. Our approach centers on reliability—only hands-on familiarity delivers the kind of material researchers and industry demand.

    What does that mean in practical terms? We don’t just ship off barrels and hope for the best. Every drum that leaves our site is the result of careful oversight by operators who know when a reaction looks right and when it needs adjusting. Our batches reflect a consistent color, particle form, and purity profile. That’s how end users achieve repeatable results, and why synthesis projects run smoother with input from a producer who has mastered each step.

    Product Model and Specifications—Steel-toed Boots, Not White Gloves

    Chemists on our team have spent years dialing in syntheses to deliver 4-Isopropylphenylhydrazine Hydrochloride in forms that drop directly into lab or plant setups. We focus on fair specification sheets, not only for regulatory audits, but to ensure the material’s practical value: water content is kept in check, HPLC traces run clean, and particle sizes avoid erratic clumping.

    A typical batch features assay levels reaching 98% by HPLC. Out-of-specification color rings the internal alarm well before a shipment goes out the door. Moisture content stands well below 0.5% thanks to controlled drying conditions and tightly sealed storage. Even shipping—often tendered to specialty logistics due to the sensitivity of the product—is arranged with awareness of the unique quirks of this compound under high temperatures or humidity.

    How 4-Isopropylphenylhydrazine Hydrochloride Truly Gets Used

    Curiosity about an obscure chemical often leads to technical jargon, but the reality of 4-Isopropylphenylhydrazine Hydrochloride usage feels much more down-to-earth. Academic labs, custom synthesis startups, and pharmaceuticals R&D teams all turn to this intermediate when exploring novel heterocyclic cores or modifying aromatic scaffolds. Its particular structure—combining a hydrazine with a bulky isopropyl-phenyl group—lends itself to serving as a pivot in multi-step syntheses where more common hydrazines prove unreliable or prone to side reactions.

    We’ve seen its value firsthand as a building block for anti-tumor drug candidates, and in the creation of reference standards for complex analytics. Teams often bring us feedback: some prefer a finer crystalline powder for quick dissolving, while scale-up teams lean toward coarser grains that minimize dust. Listening to these requests, then tweaking our physical controls, has led to numerous process innovations over the years—never from a textbook, always from the push and pull between chemistry and actual hands-on needs.

    What Sets It Apart from Standard Hydrazine Compounds

    A robust chemical supply chain features no shortage of hydrazines, so it’s natural to ask what gives this compound its edge. Simple comparisons miss the point. Many hydrazines struggle with instability, uncontrolled reactions, or that ever-present harsh smell, turning every handling step into a small headache.

    Our teams have worked with bulk hydrazine and its derivatives for decades. Standard phenylhydrazine, for instance, degrades far faster and seldom achieves the same selectivity in sensitive coupling steps. Likewise, smaller alkyl groups can leave molecules prone to unwanted oxidation, especially when stored through humid months. By locking an isopropyl group onto the aromatic ring, chemists discovered not only improved stability, but real synthetic utility: easier purification of downstream products and much cleaner analytics.

    Those advantages show up at the bench level. Anyone carrying out reductive aminations or diazotization steps finds this material more manageable, with fewer “unexpected colorations” on TLC. That reduces troubleshooting after-hours and leads to solid yields batch after batch. In peptide modifications, 4-Isopropylphenylhydrazine Hydrochloride often stands out by reducing cross-reactivity and raising confidence in scale-up success.

    Consistency and Traceability from the Source

    Traceability earns its value when minor hiccups threaten a project. Problems rarely arise in a vacuum; small deviations in raw solvent purity, lot age, or reaction dwell-time can send final purity on a wild ride. Years ago, we realized that clients trust a company as much for its ability to resolve issues as for the product itself. By maintaining fine-grained batch records and stockroom traceability, we have tracked down and fixed subtle inconsistencies that haunted certain customer protocols—sometimes even visiting production sites for hands-on troubleshooting.

    To illustrate, one client found that a slightly altered crystal habit was interfering with his filtration step during an early API synthesis. Our team coordinated a deep-dive with theirs, comparing notes across different lots. Small tweaks to cooling rates and anti-solvent use during precipitation fixed the problem—restoring clean, fast filtration and keeping his pilot-plant schedule on track. These experiences strengthen our internal checks, spread lessons among staff, and ultimately improve what every customer receives.

    Safety—A Hard-Earned Lesson

    Nothing compares to the practical knowledge built through years of hands-on handling of energetic compounds. Safety guidelines come to life not on safety data sheets, but among teams loading reactors, checking vacuums, and sampling finished products under proper airflow. Hydrazine-derived substances carry well-known toxicity risks; we never cut corners with ventilation, containment, and personal protective equipment.

    In the past, operators have encountered eye-streaming vapors from poorly contained vessels or tried to manage a sticky spill on a hot, humid day. These incidents pressed home the value of investing in closed transfer systems, modular containment, and up-to-date training for everyone touching the material. These best practices make it to customers through straightforward advice, not bland warnings. After all, a phone chat about a new process hazard or safe storage plan matters more than any printed label.

    Stability and risk don’t always match the textbook. Many users find out in practice—sometimes by damaging valuable runs—how subtle shifts in storage environment or incompatible solvents can accelerate degradation. We support downstream users with both standard advice and tailor suggestions to the quirks seen at their site, informed by many hours loading, unloading, or transferring the compound ourselves.

    Production, Scale, and In-House Insights

    Scaling laboratory chemistry to commercial production often brings unexpected twists. Many hydrazine derivatives behave unpredictably above a certain volume or in large glass-lined vessels. Our scale-up chemists remember well the first time a seemingly minor exotherm threatened to overwhelm plant controls. Through targeted process improvements—gradual ramping rates, improved jacket cooling, and real-time endpoint monitoring—we’ve transformed difficult steps into predictable, manageable sequences.

    Supplying 4-Isopropylphenylhydrazine Hydrochloride means more than following recipes and logging raw data. Small process changes—solvent choice, stirring speed, feed rates—can make orders of magnitude difference in ease of downstream isolation. Drawing on real production data and post-run debriefs, we’ve optimized each part not for theoretical maximum yield alone, but for robustness under “real world” working conditions, where power blips, temperature swings, and vessel-to-vessel variability are part of the job.

    As a result, research customers routinely report higher completion rates when switching from large traders to direct-from-source producers like us. The extra attention to detail, honed in the trenches of actual manufacturing, doesn’t just limit out-of-spec product—it also helps manage transitions to pilot-scale, or support a sudden surge in demand, without sacrificing reliability.

    Regulatory Assurance—Not Just a Paper Trail

    Navigating the regulatory environment for high-value intermediates requires both diligence and flexibility. Every ordered batch includes a certificate of analysis supported by raw-data archives reaching back years. Our compliance staff develop and validate qualifications for each step, not as a hoop to jump through, but to ensure that R&D projects avoid future regulatory headaches.

    Commercial APIs and reference standards carry tight requirements, especially during audits or submissions. Having lived through numerous inspections and documentation reviews, we know the practical side of compliance: sometimes it’s about compiling detailed impurity profiles, other times about providing full traceability for every raw material and absorbed solvent. By running a tight ship internally, we prepare clients to move through their own regulatory checkpoints with fewer surprises or last-minute dashes for paperwork.

    Logistics—Avoiding the Usual Headaches

    Any material flagged for specialized handling arrives on time or not at all. Many users have been burned more than once by misplaced packages, poorly sealed drums, or customs hangups at critical project phases. Our workflow starts well before a carrier connects—friendly, skilled staff coordinate pickups, manage temperature logs for sensitive shipments, and preempt weather or border delays.

    We’ve gone as far as developing double-sealed barrels with secondary, desiccated liners for cross-continental freight. When overseas distributors report spillage or handling complaints, we routinely track the root cause back to substandard repackaging and push for site visits or improved training. Uninterrupted supply chains are built from these details: it’s the partnership between plant staff, logistics coordinators, regional consignees, and the people handling literally every barrel or drum.

    Continuous Improvement—Small Steps, Big Results

    Small gains multiply over time. Decades in the sector reinforce that continuous quality improvement never finishes. Operators know to record start and stop times with brutal honesty; technical teams swap fixes and odd observations at monthly update huddles. Lab teams share feedback with crew leaders on what small procedural tweak delivered better particle separation or cleaner filtrate. These gritty, day-to-day lessons filter into each production cycle, turning weird blips into standardized improvements.

    Take filtration, for example: The unique physical form of 4-Isopropylphenylhydrazine Hydrochloride demanded more than lab-scale Buchner setups. Plant-scale runs threw up unanticipated clumping, driving particle habit modifications until desired filtration rates and flow-through matched up. Years of adapting to practical realities—be it tweaks to crystallization or small formulation modifications—shape the dependable product that leaves our site.

    Collaboration—A Two-Way Street

    Every research and industrial partner brings insights. Teams at contract research organizations, pharma companies, and academic labs have flagged improvements or shared practical tips—sometimes leading directly to process upgrades. These partnerships matter; some of the most effective quality improvements and route refinements originated in thoughtful exchanges with the compound’s end users.

    On-site technical support, real-time troubleshooting, video walk-throughs of specific handling procedures—these aren’t just add-ons. They’re born from our own history of wrestling with stubborn filtration, ambiguous endpoints, or handling pungent material on sweltering summer days. We approach each challenge as a shared project; both sides benefit from resolving bottlenecks and moving new applications from proof-of-concept to reliable routine.

    Why Direct Producer Supply Changes Outcomes

    Big names, multi-tiered supply, and long chains of custody often invite more problems than they solve with sensitive aromatic hydrazines. Each extra hand-off runs the risk of contamination, lost chain of custody, or poorly matched specifications. We’ve dissected dozens of returns from products split, repackaged, or improperly stored by third-party distributors. Dust loads, degraded actives, or even swapped labeling can easily slip through.

    Direct-from-manufacturer relationships fix these problems. Our team not only receives and addresses customer questions, but implements root-cause assessments as soon as even small inconsistencies appear. If a batch arrives with an odd odor or off-color, we fast-track remediation and alert every team in the loop. There’s simply no substitute for speaking with a technical representative who stood by the reactor when the product was made.

    Looking Ahead: Building for Tomorrow’s Chemistry

    New chemistries and novel synthetic targets keep pushing requirements for specialty reagents. The classic skills—reactor optimization, purification, drying—never go out of style, but demand shifts as new applications emerge. 4-Isopropylphenylhydrazine Hydrochloride has journeyed from veterinary drug synthesis in the early 2000s to roles in advanced oncological research and materials science over the last decade. Each shift inspired our process teams to refresh their methods and rethink shipping or packaging.

    Customers rarely want “just another bulk chemical.” They need confidence in every lot, backed up by data and lived experience. Our job means keeping eyes open for new trends, maintaining the rigor that makes each shipment an asset, not a risk. In turn, the compound finds its way into new applications: selective drug development, ligand construction for coordination complexes, or tools for metabolic pathway exploration.

    Decision-Making Backed by Real-World Experience

    Each production cycle, every minor fix, and all ongoing support stem from real working conditions and two-way feedback. In the world of 4-Isopropylphenylhydrazine Hydrochloride, trust and expertise accumulate through direct action—batch by batch, improvement after improvement. Projects advance smoothly when clients have a transparent partner willing to share what works, what doesn’t, and why a given tweak makes all the difference.

    In our experience, users who prioritize strong supplier relationships—and demand open lines to those actually running the reactors—see more reliable results and fewer scheduling setbacks. Those advantages aren’t theoretical; they turn up in everyday details from ease of weighing, through first-hand answers about unusual impurities, all the way to on-time, reliable delivery.

    Summary: More than a Reagent, a Relationship

    The world of specialty hydrazines remains competitive. But real value comes through hands-on expertise, be it in technical customizations, robust shipping methods, or practical advice for scale-up and regulatory planning. Over years in the field, we’ve seen what separates reliable supply and consistent performance from costly, frustrating missteps. For users of 4-Isopropylphenylhydrazine Hydrochloride, those differences mean the line between project delays and smooth, repeatable progress.

    Articles and glossy brochures mean little compared to a steady flow of high-quality product, lived-in technical advice, and the honesty to own and address every issue that arises. That’s the approach we stand behind, and the reason teams keep returning to a manufacturer who’s seen every part of the process, from early syntheses to the challenges of supply chain integrity in today’s world. That is what crafts the backbone and reliability behind every kilogram of 4-Isopropylphenylhydrazine Hydrochloride leaving our gates.