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2-Iodophenylacetic Acid

    • Product Name 2-Iodophenylacetic Acid
    • Alias o-Iodophenylacetic acid
    • Einecs 'EINECS 214-185-2'
    • 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

    282458

    Product Name 2-Iodophenylacetic Acid
    Cas Number 5438-38-8
    Molecular Formula C8H7IO2
    Molecular Weight 262.05 g/mol
    Appearance White to off-white solid
    Melting Point 153-155 °C
    Boiling Point No data available (decomposes)
    Density No data available
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥98%
    Synonyms 2-Iodophenylacetic acid, o-Iodophenylacetic acid
    Inchi Key SZYMWHPNVZRWQU-UHFFFAOYSA-N
    Smiles C1=CC=C(C(=C1)CC(=O)O)I
    Storage Temperature Store at 2-8 °C

    As an accredited 2-Iodophenylacetic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 2-Iodophenylacetic Acid, 25g, is supplied in a sealed amber glass bottle with a screw cap and clear labeling.
    Shipping 2-Iodophenylacetic Acid is typically shipped in tightly sealed containers, protected from light and moisture, and cushioned to prevent breakage. It should be handled as a hazardous chemical, shipped according to local, national, and international regulations, often using specialized couriers due to its classification as a regulated substance.
    Storage 2-Iodophenylacetic acid should be stored in a tightly sealed container, protected from light, heat, and moisture. Keep it in a cool, dry, well-ventilated chemical storage area, away from incompatible substances such as strong oxidizers. Label the container clearly and avoid prolonged exposure to air to prevent degradation. Follow all regulatory and safety guidelines for storage and handling.
    Application of 2-Iodophenylacetic Acid

    Applications of 2-Iodophenylacetic Acid in Industrial Manufacturing

    2-Iodophenylacetic acid serves as an essential intermediate for specialty chemical synthesis in several industrial domains. As a direct manufacturer, we support consistent supply for high-purity needs in downstream sectors demanding strict compliance, reproducibility, and tailored integration schemes.

    1. Pharmaceutical Intermediate Synthesis

    Pharmaceutical companies incorporate this compound as a core building block in the preparation of certain active pharmaceutical ingredients (APIs) and advanced intermediates, notably for aromatic iodination and acetic chain installation. Its role is crucial for introducing the iodo-phenyl moiety in nonsteroidal anti-inflammatory drugs (NSAIDs) and anti-osteoarthritic agents under controlled reaction conditions. Our production ensures compliance traceability, supporting both R&D and multi-ton cGMP production environments.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) monographs for related intermediates
    • 21 CFR Part 211 (US FDA)
    • ISO 9001:2015 Quality Management System

    Typical usage ratio

    • 0.5–1.2 molar equivalents, based on target API scaffold and conversion efficiency—fine-tuned according to specific molecular design parameters and side-product control

    Downstream process integration

    • Batch addition during Stage 2 condensation or alkylation steps in API synthesis
    • Participates directly in aromatic substitution reactions under anhydrous conditions
    • Feeds continuous flow reactors for intermediate scale-up
    • Integrated into purification flows using preparative HPLC or crystallization

    Final product types

    • Anti-inflammatory APIs with iodo-aromatic structure
    • Advanced intermediates for CNS-active compounds
    • Generic and branded pharmaceutical finished dosages
    • Clinical trial materials for pipeline drug candidates

    2. Agrochemical Active Ingredient Production

    Manufacturers of crop protection chemicals employ this intermediate in the synthesis of certain iodinated heterocycles and related structures. Its controlled reactivity aids the creation of selective herbicide scaffolds and fungicide actives under strict process and environmental regulations.

    Industry compliance standards

    • OECD Principles of Good Laboratory Practice (GLP)
    • REACH Registration, Evaluation, Authorisation and Restriction of Chemicals regulations (EU)
    • ISO 14001 Environmental Management System
    • EPA TSCA (Toxic Substances Control Act)

    Typical usage ratio

    • 0.8–1.5 molar equivalents in stepwise build-up of aromatic iodinated derivatives, adjusted based on specific crop protection formulation

    Downstream process integration

    • Added during key functionalization stage of heterocyclic syntheses
    • Participates in halogen exchange or Suzuki coupling steps
    • Blended for pilot plant validations prior to granulation and formulation
    • Feeds quality control sampling after major reaction conversions

    Final product types

    • Iodinated fungicide actives for seed treatment
    • Selective herbicide intermediates
    • Precursor molecules for broad-spectrum insecticides
    • Agrochemical active ingredient technical concentrates

    3. Fine Chemical and Dye Intermediate Manufacturing

    Producers of specialty dyes and pigments rely on this material to introduce iodo-aromatic functionalities, which impart unique optical and chemical properties for advanced pigments, contrast reagents, and analytical stains. This application requires precise batch-to-batch reproducibility and absolute purity to prevent undesirable chromophore interference.

    Industry compliance standards

    • ISO 9001:2015 Certified Quality Management Systems
    • EN 71-3 Migration of certain elements (dye and pigment safety for toys)
    • OEKO-TEX Standard 100 (textile-related dyestuff)
    • REACH Safety Data Sheet (SDS) and labelling

    Typical usage ratio

    • 1.0–2.0 molar equivalents during functionalization, depending on chromophore target and substitution efficiency

    Downstream process integration

    • Used in the initial halogenation step of dye molecule assembly
    • Feeds batch reactors for coupling with azo or aromatic amines
    • Enters continuous synthesis platforms requiring rapid iodination
    • Sampled for trace impurity analysis before pigment isolation

    Final product types

    • Iodinated pigment dispersions for industrial inks
    • Special purpose dyes for medical diagnostic kits
    • High-performance textile coloring agents
    • Colorants for plastics and specialty coatings

    4. Organic Synthesis Building Block for Research & Material Science

    Academic and industrial research labs use this acid as a scaffold for designing new molecular materials, molecular probes, and radiolabeling substrates. High purity supported by full analytical documentation is mandatory to ensure validity and reproducibility in structure-activity studies, supramolecular chemistry and advanced polymer science development.

    Industry compliance standards

    • GLP for laboratory research workflows
    • ISO/IEC 17025 Laboratory Accreditation for analytical testing
    • Purity verification: NMR, HPLC, GC-MS methods
    • Material transfer agreements and chemical safety certification

    Typical usage ratio

    • Variable: from 0.2 to 2.5 molar equivalents, precisely adjusted per experimental design, molecular target, and reactivity scope

    Downstream process integration

    • Added at the initial building block assembly stage
    • Participates in cross-coupling, radiolabeling, or functionalization procedures
    • Integrated into reaction monitoring and purification protocols
    • Feeds solid-phase or solution-phase synthesis platforms

    Final product types

    • Molecular probes and imaging agents
    • Custom polymer monomers for high-performance materials
    • Novel supramolecular scaffolds
    • Isotope-labeled research standards
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    Competitive 2-Iodophenylacetic Acid prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Understanding 2-Iodophenylacetic Acid: A Manufacturer’s Insight

    Straight from the Production Floor: What Sets Our 2-Iodophenylacetic Acid Apart

    We’ve spent years perfecting the synthesis of 2-Iodophenylacetic Acid, known to many chemists as p-iodophenylacetic acid, but among our team, it’s just 2-IPA. In our plant, this compound’s journey starts with reliable raw materials and decades of know-how, the sort researchers and pharmaceutical innovators count on for quality and reliability. Our most popular product model handles a molecular formula of C8H7IO2, with CAS Number 1878-66-6. You’ll see the fine, off-white to light tan crystalline powder in jars ready for packaging, handled in our controlled environment for consistent moisture and purity. Nobody on our floor mistakes it for its close cousins—attention to detail during synthesis and purification sets the whole batch right.

    The Specs that Matter: Quality in Every Batch

    We pull samples from every lot and run them through high-performance liquid chromatography, checking purity levels most suppliers label “analytical”—not just technical—grade. We see purity routinely clocking at or above 98%. Melting point checks land between 122°C and 126°C. Moisture is kept so low you won’t see clumping during your work-up. We store product in HDPE containers to prevent trace iodine leaching, and there’s zero chance of cross-contamination because our cleaning and validation go beyond industry basics. Production teams keep logs on every reaction batch, from iodination step to final wash, so anyone can trace what came from where.

    Real Experience in Pharmaceutical and Fine Chemical Production

    Most customers drawing on our 2-Iodophenylacetic Acid use it to build more complex molecules—there’s heavy demand in medicinal chemistry groups and agrochemical research teams. Our compound lends itself well to Suzuki coupling, synthesis of phenylglycine derivatives, and preparation of other functionalized aromatics. One of our core clients brings it into late-stage pharmaceutical intermediates, especially for pipelines where selectivity and traceability matter. We’ve watched process chemists run direct arylations and alkylations using our material as a robust substrate; they need a steady halogen from batch to batch. Feedback always comes back to one thing: consistent structure, minimal unknowns, and straightforward work-ups. The iodine atom’s position—ortho to the acetic acid side-chain—opens up possibilities that regular phenylacetic acid or even 4-iodophenylacetic acid can’t handle.

    Comparisons to Other Halophenylacetic Acids: Why the “2-Iodo” Position Counts

    In experienced hands, the difference between 2- and 4-iodophenylacetic acid shapes the whole downstream reaction. The ortho orientation in 2-iodo connects electron density and steric hindrance more directly to the side-carbon. We’ve seen medicinal chemists exploit this unique ring position to control regioselectivity and reactivity, especially in cross-coupling reactions. Electrophilic iodination at the 2-position isn’t just tradition; it sets up the backbone for countless new heterocyclic compounds. Chemists swap out various halogenated phenylacetic acids, but our records show higher yields for customers aiming for ortho-functionalized scaffolds using our 2-IPA. Anyone running pilot scale, kilo labs, or gram-scale bench chemistry gets cleaner reactions, less byproduct formation, and fewer headaches with purification.

    Quality Control: Practices We Insist On

    Our technical staff worries about every point—from the starting phenylacetic acid stock to the final dry-down. We check not only purity and water content, but also residual iodine, heavy metals, and even trace organic impurities. Every batch gets a detailed COA (Certificate of Analysis), but the real difference comes from decades running the same process, learning which tweaks protect product integrity—the right filtration speed, solvent choices, and drying time. Experience tells us shortcuts lead to trouble. Unfiltered solvents, poorly controlled pH swings, or lazy crystallization quickly show up as impurities or color changes. Our checks catch these slip-ups early, so researchers won’t lose precious hours sorting problems downstream.

    On the Floor: Worker Safety and Environmental Controls

    Handling phenylacetic acid derivatives, especially iodinated compounds, asks for extra respect toward both worker safety and environment. We design our systems so production runs stay tight and controlled. Closed reactors, local exhaust, and training protocols go beyond simple compliance. We reclaim traces of elemental iodine from waste for proper disposal and recovery. Our team reviews exposure monitoring for every run, to make sure the staff never ends up exposed to vapor or dust. Every kilo we make reflects those safeguards—no residue traced to accidental releases, and everyone on the team returns home safe. We’re proud that across years, our environmental record stays clean and our compliance passes tough audit reviews.

    How Synthetic Routes Influence the End Product

    There’s more than one way to iodinate phenylacetic acid, but our production sticks with the method chosen for the tightest control of impurity profiles. Some competitors cut corners with cheaper reagents or run shorter reaction times, chasing lower costs at the expense of quality. Our synthesis avoids unnecessary byproducts, and we run extra washes to pull out side-reaction contaminants. Our chemists monitor every step, not just for regulatory checkboxes, but for the tiny differences that only show up downstream—in solid-state NMR or advanced LC-MS scans. Real quality shows up in the way your flask behaves, not just on paper. Pure crystals, minimal trailing in chromatography, and a reaction profile that matches literature values batch after batch.

    Working with Researchers: Why Our Partners Trust Our Chemistry

    We partner directly with scientists in pharmaceuticals, agrochemicals, and academic labs. Straight talk about what’s going into the bottle matters just as much as the numbers on a spec sheet. Our customers need someone who understands why a poorly characterized impurity profile can throw off a multi-step synthesis. Our technical service doesn’t come from a call center—it’s run by the people who actually scale up the batches. If you need a smaller or larger lot and your project asks for tweaks—maybe a dry, pre-weighed aliquot or a tighter specification—we’ve built those custom runs many times. We’ve rescued research timelines by offering faster batch turnaround during critical crunch times, always with documentation to back up every lot.

    The Role of Regulatory Compliance

    Our commitment to compliance isn’t a box to check. Our 2-Iodophenylacetic Acid keeps to all relevant REACH and GHS standards. We make sure our regulatory team stays up to date on every change that could affect how 2-IPA functions in your supply chain. Analytical validation and updated SDS documentation travel with every shipment. Regulatory agencies visit twice yearly—audits are tough but routine. We stay ready for it, updating our batch records, safety training logs, and shipment documentation. Our clients, especially in the pharmaceutical sector, value this level of transparency and diligence; it helps guarantee every molecule meets their approval boards.

    Handling, Packaging, and Stability: Practical Advice from Daily Operations

    Our long-running experience shows that 2-Iodophenylacetic Acid stays stable when kept dry, away from sunlight, and in containers that block moisture and light ingress. We ship every order vacuum-sealed in HDPE, and we don’t load containers on humid or rainy days. Once opened, powder keeps its integrity best when split into smaller vials or bottles right away—large jars invite repeated exposure and humidity. We track customer feedback on degradation and always refine our packaging to keep material fresh for each use. Storage at room temperature in a dry environment gives best results according to years of customer feedback. Laboratories that split product into small batches report less caking and easier dissolving.

    Scaling Up: What Process Chemistry Teaches Us

    Scale brings challenges you don’t see at the gram level. In kilo-lab or pilot plant settings, 2-Iodophenylacetic Acid’s true character reveals itself. Solubility, re-crystallization rate, filtration time, and unpacking stability all shift as the batch size grows. Kilo-scale prep needs bigger stirrers, slightly different solvent volumes, and more precise temperature ramps. We learned this not from manuals, but from listening to the gripes of process chemists and running our own scale-up tests. A solvent system that works fine in a test tube can gum up filter plates on a fifty-liter reactor unless you plan ahead. Each scale-up, our crew keeps tight notes—their input directly shapes future production runs.

    Supporting Downstream Chemistry: Why Trust Starts Here

    Many manufacturers pitch the same molecule, but performance in your synthetic route hinges on process experience and willingness to adapt. We schedule regular calls with downstream users, discussing how the compound enters their route. Sometimes a tweak to particle size, solvent system, or even just labeling protocol saves valuable time. We see it as a partnership, not just a supply chain. Pharmas developing APIs ask for molecular-level transparency. Researchers in academic labs need answers about possible by-products or minor contaminants after a tough reaction. We make a point of offering actual spectra and HPLC runs on request, without runaround or extra fees.

    Customer Feedback Drives Our Process Improvements

    Most of our product refinements trace to customer conversations. We share success stories and analyze failures together. Pharmaceutical researchers told us about an inconsistency in melting point drift—our production team found a subtle washing step error and fixed it the next week. A team working on new herbicides asked about greener packaging, and we upgraded to less wasteful shipping containers as a result. Our technical support logs every piece of feedback, so changes are never forgotten after the first call. Real-world chemistry throws up surprises—how a seemingly minor trace impurity can derail whole synthetic routes. We take these lessons to the reactor floor and review them at every team meeting, improving not just this product, but every iodinated intermediate we make.

    2-Iodophenylacetic Acid in the Market: Reliability Brought by Experience

    Demand for specialty building blocks like 2-Iodophenylacetic Acid rises every year. Trends in pharma, crop protection, and even high-performance materials have shifted toward more complex, regioselective halogenated scaffolds. We anticipate these changes by tracking market data, talking to customers, and participating in technical conferences. As innovation moves faster, supply reliability matters more. Unplanned downtime in our plant doesn’t just delay orders—it can cause a cascade for whole research programs. Years spent optimizing every valve, pump, and QC checkpoint pay off in delivery reliability. Our team knows every reactor, maintenance record, and supplier input well enough to spot a problem before it throws a wrench in production.

    Looking Forward: Sustainability and Future Applications

    Sustainability shapes every decision in today’s chemical manufacturing. We’ve started moving toward solvent recovery and energy savings, not just for regulation, but because it makes sense for long-term business and community health. Our plant now reclaims solvents used in the iodination reaction, reducing waste and keeping costs controlled without sacrificing product purity. We keep searching for ways to boost atom economy and minimize effluent, so 2-Iodophenylacetic Acid can play a bigger role in green chemistry. Upcoming projects include investigation into bio-based alternatives for select raw materials and pathway modifications that cut reaction steps.

    Ethics and Skilled Workforce: The Human Side of Production

    Our reputation hangs not just on our chemistry but how we treat people and communities. Every production step focuses on respect for our staff—their health, skill, and growth matter as much as the quality of the compound itself. We invest in continual training and career development, so our chemists spot problems early and suggest creative solutions. Every year, our technical staff join industry workshops and Share lessons in plant safety procedures. This human element runs deep in how our product enters the world.

    Trust Earned in Every Batch

    We know every kilogram of 2-Iodophenylacetic Acid we send out has the power to support discovery, deliver life-changing medicines, or launch safer agricultural chemicals. Every production batch starts and finishes with the eyes and hands of people who care about both your science and our shared future. Our commitment brings together experience, trust, safety, and transparency in every jar, making sure your next breakthrough begins with the right building block.