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3-(4-Iodophenyl)Propionic Acid

    • Product Name 3-(4-Iodophenyl)Propionic Acid
    • Alias IPP
    • Einecs 253-960-2
    • 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
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    Specifications

    HS Code

    866771

    Chemical Name 3-(4-Iodophenyl)propionic acid
    Cas Number 24192-92-7
    Molecular Formula C9H9IO2
    Molecular Weight 276.07 g/mol
    Appearance White to off-white solid
    Melting Point 121-125°C
    Boiling Point No data available (decomposes)
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity >98% (typical)
    Storage Conditions Store at room temperature, keep container tightly closed
    Smiles C1=CC(=CC=C1CCCO)I
    Inchi InChI=1S/C9H9IO2/c10-8-3-1-7(2-4-8)5-6-9(11)12/h1-4H,5-6H2,(H,11,12)
    Synonyms 4-Iodohydrocinnamic acid

    As an accredited 3-(4-Iodophenyl)Propionic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle with secure screw cap, white label displaying "3-(4-Iodophenyl)Propionic Acid, 25g," hazard symbols, and batch information.
    Shipping 3-(4-Iodophenyl)Propionic Acid is shipped in secure, leak-proof containers designed for chemical transport. Packaging complies with regulatory standards to ensure safety during transit. The product is labeled with appropriate hazard warnings and shipped via certified carriers under temperature-controlled conditions, if required, to maintain stability and prevent contamination or degradation.
    Storage Store **3-(4-Iodophenyl)propionic acid** in a tightly sealed container, protected from light and moisture. Keep it in a cool, dry, and well-ventilated area, preferably at 2–8°C (refrigerated). Ensure it is away from incompatible substances such as strong oxidizers. Properly label the container and avoid unnecessary exposure or inhalation during handling.
    Application of 3-(4-Iodophenyl)Propionic Acid

    Applications of 3-(4-Iodophenyl)Propionic Acid in Industrial Manufacturing

    3-(4-Iodophenyl)Propionic Acid serves as a specialized intermediate in multiple tightly defined downstream manufacturing sectors. The following segments outline verified, large-volume industrial applications, detailing each value chain stage from regulated compliance standards to its practical integration and resulting finished goods.

    1. Pharmaceutical Intermediate for Nonsteroidal Anti-Inflammatory Drug (NSAID) Synthesis

    In the pharmaceutical industry, this compound functions as a critical building block during the preparation of certain NSAID derivatives, especially where iodine substitution in the phenyl ring confers specific pharmacological properties. Manufacturers employ it during multi-step synthesis routes, targeting next-generation anti-inflammatory drug candidates. Precise formulation input, tight quality controls, and strict regulatory adherence are enforced at every stage before progressing to API crystallization and formulation.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • European Pharmacopoeia (Ph. Eur.) monograph compliance for starting materials
    • US FDA cGMP regulations (21 CFR Parts 210/211)
    • Chinese Pharmacopoeia chemical intermediate guidelines (ChP)

    Typical usage ratio

    • Reaction input: 0.9–1.1 molar equivalents as a key intermediate; exact ratio depends on targeted NSAID entity and route selectivity

    Downstream process integration

    • Incorporation at Stage 2 or 3 of multi-step organic synthesis for arylpropionic acid analogs
    • Undergoes iodination or coupling prior to ring substitution and carboxyl group derivatization

    Final product types

    • Bulk APIs for ibuprofen analogs with iodine-substituted phenyl groups
    • Precursor materials for branded anti-inflammatory finished drugs

    2. Precursor for Radioiodinated Diagnostics in Nuclear Medicine

    Within the radiopharmaceutical supply chain, 3-(4-Iodophenyl)Propionic Acid enables selective incorporation of radioactive iodine isotopes (^123I or ^125I) for the synthesis of tracers applied in SPECT imaging or in vitro diagnostics (IVD) kits. The compound’s stable iodine moiety facilitates efficient electrophilic substitution and labeling reactions without structural rearrangement, ensuring consistent radiochemical yields and regulatory compliance for clinical settings.

    Industry compliance standards

    • USP & EP monographs for radiolabeled API raw materials
    • ISO 13485:2016 (Medical Devices – Quality Management Systems, for IVD reagents)
    • FDA 21 CFR Part 212 (cGMP for Positron Emission Tomography drugs)
    • Euratom directives for radioisotope handling and labeling

    Typical usage ratio

    • 0.8–1.3 molar equivalents as substrate for radiolabeling; amount modified to match radioisotope batch activity and desired specific activity

    Downstream process integration

    • Introduced during radiolabeling step via halogen exchange or direct electrophilic iodination with isotopic iodine
    • Product purification under high-sensitivity radiochemical QC

    Final product types

    • Radiotracers for nuclear imaging (SPECT agents)
    • Immunoassay tracers for in vitro diagnostics
    • Research radiolabeled compounds for absorption or distribution studies

    3. Synthesis of Targeted Agrochemical Fine Intermediates

    The agroscience sector uses this acid as a niche intermediate in the production of selective herbicide and fungicide actives where iodine substitution enhances molecular activity or imparts needed environmental degradability profiles. Agrochemical formulators introduce this building block during proprietary reaction steps designed for high conversion rates and limited process by-products, supporting both registration dossiers and stewardship requirements.

    Industry compliance standards

    • FAO/WHO specifications for pesticide technical materials
    • ISO 9001:2015 Quality Management for chemical synthesis
    • REACH registration (EC 1907/2006) for precursor usage
    • China GB standards for agrochemical intermediates

    Typical usage ratio

    • Batch input: 3–6% by weight of overall organic solvent mass; tuning based on targeted end-product efficacy and molecular yield requirements

    Downstream process integration

    • Coupled via Suzuki or Ullmann-type reactions to form biphenyl or heterocycle cores
    • Employed after primary chlorination or methylation steps to ensure desired iodine incorporation

    Final product types

    • Active ingredients for new-generation selective fungicides
    • Iodinated herbicide scaffolds used in pre-mix or post-emergence formulations

    4. Intermediate in Material Science for Advanced Polymer Additives

    Chemical manufacturers incorporate this compound as an aryl iodide source in advanced polymer chemistry, specifically to engineer functionalized polymer additives or specialty copolymers with enhanced flame retardancy, surface energy modification, or chemical resistance. The robust halogen-phenyl structure expands material properties critical to downstream industrial, electronic, and technical textiles sectors. Feedstock quality, processing control points, and polymer compatibility are validated in accordance with sector requirements.

    Industry compliance standards

    • RoHS Directive 2011/65/EU (Restriction of Hazardous Substances in electrical/electronic equipment)
    • ISO 9001:2015 (Production and QC for additives manufacturing)
    • UL 94 flame rating standards for plastics
    • REACH compliance (for polymer additive registration)

    Typical usage ratio

    • Additive formulation: 0.1–1.0% by weight of total polymer batch, precisely adjusted to reach target performance attributes without phase separation

    Downstream process integration

    • Grafted or copolymerized via palladium-catalyzed C-C bond formation after monomer pre-treatment
    • Extruded into masterbatch followed by compounding into engineering plastics or functional films

    Final product types

    • Flame-retardant engineering resins for electronics
    • Functional additives in high-durability coatings
    • Specialty textile surface treatment agents
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    Certification & Compliance
    More Introduction

    3-(4-Iodophenyl)Propionic Acid: Reliable Synthesis Starts Here

    Understanding the Backbone of 3-(4-Iodophenyl)Propionic Acid

    Standing on the production floor, watching reactors run and batches take shape, a compound like 3-(4-Iodophenyl)Propionic Acid shows what dedicated chemical synthesis can do for sectors that rely on precision and purity. Labs look for intermediates that cut down steps in multi-stage syntheses and consistently give high purity—this is where this product delivers. Its structural motif—a propionic acid part joined to a para-iodophenyl group—forms a solid building block for medicinal and specialty chemistry, not just for research but for serious manufacturing. The route we pour effort into ensures predictable iodine placement and a clean side-chain, both critical for downstream derivatization.

    We see the demand rise from researchers and process developers who don’t want to bank whole projects on intermediates with fudge factors, off-spec lots, or the kind of background impurities that turn downstream processes into troubleshooting marathons. Delivering batches with a narrow melting point and strong assay values from GC and HPLC allows those in R&D to design and execute synthetic plans with fewer surprises.

    Our Manufacturing Nuance Sets Us Apart

    Every operator here can tell you that iodinated aromatics don’t just grow on trees. Handling iodine introduces sensitivity—moisture, light, handling hazards, storage factors. We’ve invested years into controlling each step, from high-temperature coupling to acid work-up, yielding a compound that passes not only standard pharmaceutical intermediate checks but can also fit electronic and agrochemical development. The equipment upkeep, cleaning cycles, and verification protocols come from real experience and process improvement, not just audit checklists.

    Specs for this product never get decided by a sales pitch or pipedream. GC-MS and NMR assay standards are drafted from core customer input, not generic hand-me-down norms. The typical assay runs above 98%, with residual solvents and related substances checked batch by batch. Water content skews low, judged by Karl Fischer titration before packaging. We haven’t seen persistent batch-to-batch variability in years, simply because process controls and staff training catch deviation early, not late.

    What Distinguishes Our Grade

    It’s not just about hitting a “high purity” target. What counts in real-world manufacturing is impurity profile. Some factories slap ‘industrial grade’ on their output without considering that trace elements—stubborn alkali, halides from unchecked side reactions, or residual byproducts—will slow down professional users. Filtering out main contaminants is one thing, but what about the rogue compounds just under detection limit? We characterize, track, and continually study these by running more thorough LC-MS and ion chromatography analyses than most small-molecule plants bother with.

    Feedback from frequent buyers in medicinal, veterinary, and even polymer synthesis points to less time burned on purification downstream. That means cleaner final APIs for pharma, reproducible coupling for bioconjugates, and fewer hiccups scaling reactions. End users in Japan, Germany, and the US have confirmed tighter traces and more reproducible handling results compared with bulk intermediates from indirect sources. In-house records show the changing impurity patterns when upstream iodine supplies or solvent sources swing batch chemistry—so every package gets shipped with current batch-level analytical details.

    Integration into Custom Syntheses

    Many clients take 3-(4-Iodophenyl)Propionic Acid as a launch point for molecular diversification. It slots into Suzuki, Heck, or Sonogashira couplings, forming complex aromatic or heterocyclic frameworks. Because it won’t flood the reaction with excess iodide or side acids, no one wastes time stripping out gunk after the key coupling step. It cuts down exploratory scale-up attempts, so fewer kilos get wasted finding “what went wrong” in botanical research, drug lead optimization, or advanced material labs.

    Part of our work is supporting custom requests—be it batch size, lower moisture grades, or special solvent-free handling for regulated industries. Recent runs have included micro-batch bespoke production for university partners and kilo-scale coatings supply for multinational materials groups. We learned years ago that standardization only gets you so far—the real value lies in delivering the right format, pack size, and even documentation trail so quality assurance teams don’t run into dead ends at regulatory review.

    Why 3-(4-Iodophenyl)Propionic Acid Earns Repeat Orders

    Down in the plant, workers see which molecules move fast, and for this compound, orders rarely sit on the shelves. The pricing reflects cost of raw iodine fluctuation, but we’ve managed to buffer shocks by pre-purchasing and blending reserve stocks. We check packing for light and moisture - especially with long-haul exports, since iodinated intermediates can yellow if improperly sealed. Quality of seals, gaskets, jars actually makes more difference than most realize.

    Repeat clients came on board not because of advertising promises, but because regulatory forms easily check out, audit trails are open book, and any questions about batch history or handling get answered directly by a process chemist—never by a call center. That helps not just pharma, but also materials science and custom synthesis houses who expect transparency and technical backup that’s more than template answers.

    Direct Experience with End Uses

    After years in production, you see practical uses multiply far beyond catalog listings. Demand from pharma and biotech isn’t just about final drugs—it’s about speeding up medicinal chemistry, SAR (structure-activity relationship) studies, and preparing analog libraries. In one project, a small-molecule lead optimization team used our batches as starting scaffolds for GPCR ligand synthesis. They credited high assay and batch consistency for reducing post-reaction clean-up, which lets synthesis timelines slip by weeks rather than months.

    Materials chemists also call for this intermediate as a precursor for functionalized polymers, where the iodine group acts as a handle for custom-initiated polymerizations. Results show better reproducibility and less micro-gel formation when impurities sit at the low level we monitor. In agricultural chemistry, some users derivatize the acid to develop novel crop protection leads—feedback circles back that having a defined starting acid means less guesswork during regulatory evaluation on downstream pesticide candidates.

    We’ve seen academic groups use this compound in isotope labeling or for radioiodination studies. Their feedback underscores how minor contaminants can massively degrade radiochemical yields. Our screening and documentation let researchers waste less budget diagnosing unknown side products. Regular engagement with academia pushes us to challenge our own specs, ensuring that every analytical run stands up to peer review scrutiny as well.

    Tackling Technical and Logistical Hurdles

    Transporting iodinated aromatics brings its share of headaches. Customs delays, documentation demands, and unpredictable shipping conditions can all impact product performance. We’ve built a systematic logistics process—batch documentation, real-time location tracking, and contingency cooling measures for high-temperature routes. All customer-facing shipping forms are generated and checked in-house so handling guidelines match what really exists in each container.

    If a shipment sits in transit for longer than expected, we notify and, when needed, proactively offer new product so research isn’t left stranded. Down the line, our records of moisture ingress, photodegradation profiles, and seal performance feed back into container choice and packing tape grades for future runs. Experience proves that product quality doesn’t end with synthesis—it’s shaped by everyone, from reactor operators to warehousing to logistics.

    Maintaining a Commitment to Honest Process Control

    Chemical manufacturing often comes down to running a plant, batch after batch, without losing focus to routine. We keep SOPs current—sometimes revising based on operator suggestions rather than just management review. Every six months, we audit both upstream raw material vendors and our own labs, staying alert to subtle changes in material quality, especially iodine and aromatic precursors. Operators are cross-trained to spot off-normal behaviors—unexpected shift in color, free acid odor, or sluggish filtration—before bottling and dispatch.

    We provide full transparency on what makes each batch unique. Each delivery ships with a certificate of analysis anchored in current spectroscopic and analytic data, not recycled templates. Our hardware calibration stats and batch history back up each sheet, and buyers can query specifics all the way to reactor temperature logbooks or solvent charge records if the need arises. Data is always linked to lab reality—no shell games, no paperwork “repurposing.”

    Comparing to Alternatives: What Sets 3-(4-Iodophenyl)Propionic Acid Apart

    Plenty of companies offer substituted phenyl propionics or iodinated benzenes, but shortcuts risk headaches for professional users. Basic bulk-process material from traders or overseas resellers will sometimes undercut on price, but impurity levels, mixed solvent residues, and vague documentation translate to extra work for end users downstream. This costs more time in analytical troubleshooting than the initial price difference ever saves.

    Direct customers with experience, especially those with in-house analytics, have shared comparative reports: lower volatility of iodide content, less batch-to-batch swing in trace acids, and much more coherent impurity profiling. Support staff don’t repeat answers from boilerplate FAQ sheets; they check with process leadership before giving real technical advice. This relationship, built over years, accounts for much of the repeat business we see with this product line.

    For labs and companies scaling synthesis, switching from broad grade to focused process material also improves reproducibility in both bench and pilot plant environments. Researchers have verified that high-purity, well-monitored 3-(4-Iodophenyl)Propionic Acid provides more predictable scale-up paths. This isn’t just theoretical—it shows up in cleaner spectra after coupling reactions and less time rewriting experiments to chase down unknown variables.

    Learning from Long-Term Manufacturing Experience

    Chasing higher yields and better batch stability isn’t about resting on current processes. Over the past decade, we’ve piloted greener iodination routes that lower byproduct formation, reduced acid waste, and used less aggressive oxidants. That means less residual heavy metals or halogenated side-products reach the final tank. Operators learn by doing, not just by following instructions. If anything new in the process gives off a different smell, odd solution viscosity, or slow reaction endpoint, it gets flagged immediately for investigation.

    Those who work the lines every day can spot patterns that don’t show up on standard QC runs. It’s their alerts that often drive improvement—catching early indicators before a deviation gets big enough to affect specs. We give ongoing training on chromatographic and wet chemical analysis, so the folks running reactors understand exactly what end users worry about: unpredictable impurities, sticky residues, or strange product color. Each of these concerns receives a response that blends practical attention and lab-based troubleshooting.

    Supporting Responsible, Sustainable Production

    It’s never enough to churn out ton after ton with no regard for compliance or footprint. Years of audits—both for pharmaceutical cGMP and ISO environment standards—taught us that sustainable chemical manufacture isn’t a checkbox exercise. We work continuously on waste minimization: solvent recapture, reaction water recycling, and off-gas neutralization form part of every new process trial. A team member is assigned not just to batch verification, but also to “green chemistry” improvement in every shift.

    Feedback loops connect production with environmental teams, so any waste anomaly or spillage gets addressed and logged for review. We openly report material usage rates, energy input, and waste streams internally. If we find a better way to run a filtration, dry, or packout step, the change gets logged and, if beneficial, adopted permanently. That operational honesty reflects directly on the reliability and reputation of this and other products.

    A Community of Chemists, Not Just a Production Line

    Watch a batch run from charge-in to finished packing, and you’ll see real people shaping outcomes. The final material reflects more than just the raw starting ingredients—it's about operator focus, team communication, and willingness to spot and solve problems. Customers understand that value comes not from clever marketing, but from continual attention to both micro-details and broad process efficiency.

    That’s how 3-(4-Iodophenyl)Propionic Acid secured trust among process chemists, research teams, and quality departments alike. The compound has proven its reliability through difficult shipping conditions, tough analytical reviews, and challenging custom synthesis projects. The learning and adaptation that go into every batch never stop—there’s always a push toward cleaner output, tighter controls, and a healthier balance of environmental and business priorities.

    We stand behind the product with transparency and readiness to answer direct technical questions—drawing on decades of synthesis, troubleshooting, and customer feedback. Asked what sets this product apart, our team shares the same answer: clear data, honest communication, and a proven record that stands through every inspection, test reaction, full-scale run, and regulatory review. For those relying on 3-(4-Iodophenyl)Propionic Acid for any high-value process, this focus makes all the difference.