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2-Amino-5-Chlorobenzamide

    • Product Name 2-Amino-5-Chlorobenzamide
    • Alias 5-Chloroanthranilamide
    • Einecs 253-044-4
    • 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

    778152

    Productname 2-Amino-5-Chlorobenzamide
    Casnumber 23291-45-0
    Molecularformula C7H7ClN2O
    Molecularweight 170.6 g/mol
    Appearance Off-white to light yellow solid
    Meltingpoint 196-199 °C
    Solubility Slightly soluble in water, soluble in organic solvents
    Purity Typically ≥98%
    Boilingpoint Decomposes before boiling
    Storageconditions Store in a cool, dry place, tightly closed container
    Smiles NC1=CC(=CC=C1C(=O)N)Cl
    Inchi InChI=1S/C7H7ClN2O/c8-5-2-1-4(7(11)10)3-6(5)9/h1-3H,9H2,(H2,10,11)
    Synonyms 5-Chloroanthranilamide

    As an accredited 2-Amino-5-Chlorobenzamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 100g of 2-Amino-5-Chlorobenzamide is securely sealed in an amber glass bottle with a screw cap and proper hazard labeling.
    Shipping 2-Amino-5-Chlorobenzamide is shipped in tightly sealed containers to prevent moisture and contamination. It is labeled according to chemical safety regulations and transported as a non-hazardous, solid chemical. The package includes a safety data sheet (SDS), and handling instructions per local and international shipping standards for laboratory chemicals.
    Storage 2-Amino-5-Chlorobenzamide should be stored in a tightly sealed container in a cool, dry, well-ventilated area, away from sources of ignition and incompatible substances such as strong oxidizers. Protect from moisture and direct sunlight. Ensure proper labeling and keep away from food and drink. Use secondary containment to prevent leaks and spills. Always follow standard laboratory safety protocols.
    Application of 2-Amino-5-Chlorobenzamide

    Applications of 2-Amino-5-Chlorobenzamide in Industrial Manufacturing

    We supply 2-Amino-5-Chlorobenzamide directly from our production facility for specialized downstream needs across the chemical, pharmaceutical, and polymer additive industries. Our material consistently meets stringent industrial requirements, making it an established choice for manufacturers with demanding formulation and regulatory parameters. Below, we outline real-world application scenarios, covering industry standards, recommended dosage, integration stage, and final product forms across advanced production environments.

    1. Pharmaceutical Intermediate for Synthesis of Benzamide-Based APIs

    Manufacturers use this compound as a key intermediate in the synthesis of pharmacologically active benzamide derivatives, particularly within the development of selective serotonin receptor antagonists and related active pharmaceutical ingredients (APIs). The strict regulatory framework in the API segment demands batch-level traceability and validated impurity profiles throughout downstream synthesis and purification workflows.

    Industry compliance standards

    • ICH Q7 Good Manufacturing Practice for Active Pharmaceutical Ingredients
    • Current Good Manufacturing Practice (cGMP, US FDA 21 CFR Parts 210/211)
    • European Pharmacopoeia (Ph. Eur.) monographs for benzamide derivatives
    • Chinese Pharmacopoeia where relevant for export APIs

    Typical usage ratio

    • 0.10 – 0.35 molar equivalents per reaction batch, adjusted by targeted yield and substitution reaction efficiency with downstream amination or acylation steps.

    Downstream process integration

    • Introduced during the early or intermediate condensation or coupling step, depending on the multi-step synthetic pathway. Incorporated through controlled-addition reactors with in-line monitoring to ensure minimal residuals into the final API.

    Final product types

    • Bulk and formulated APIs for CNS therapeutics, gastrointestinal modulators, and investigational benzamide drug candidates.

    2. Agrochemical Intermediate for Phenylurea Herbicides Manufacturing

    Producers in the crop protection sector utilize this compound as a building block for the synthesis of chlorinated phenylurea herbicides, commonly formulated to control broadleaf and grassy weeds in cereal and plantation crops. Its molecular structure supports efficient chlorination and subsequent derivatization for active ingredient creation under tight process safety and environmental safeguards.

    Industry compliance standards

    • FAO/WHO Specifications for Plant Protection Products
    • ISO 9001:2015 Quality Management in Crop Protection Manufacturing
    • EU REACH registration for synthesis intermediates
    • National agrochemical regulation (EPA registration for North America, GB/T standards for China)

    Typical usage ratio

    • 5–12% by weight in the reaction mass, tuned by target herbicide concentration and reacted batch size; higher end applied for custom high-load technical concentrates.

    Downstream process integration

    • Dosed at the chlorination or carbamoylation reactor stage, with precise feeding to optimize molecular conversion. Commonly follows a controlled heating protocol for full conversion before neutralization and formulation blending.

    Final product types

    • Technical-grade phenylurea herbicide actives, flowable suspension concentrates (SCs), and granulated ready-for-use herbicide blends.

    3. Dye and Pigment Intermediate for Azo and Anthraquinone Dyes

    Pigment and dye manufacturers incorporate our material as a precursor in azo and anthraquinone dye syntheses, supporting vibrant, heat-stable coloration for industrial textile and specialty coating sectors. Strict controls on precursor purity, trace metals, and reaction pH underpin the color consistency and toxicity profile of final colorants delivered to end users.

    Industry compliance standards

    • OEKO-TEX Standard 100 for textiles
    • ZDHC MRSL (Manufacturing Restricted Substances List) for dye intermediates
    • ISO 9001:2015 for Quality Management in Pigment & Dye Manufacturing
    • REACH Annex XVII (restrictions on aromatic amine content)

    Typical usage ratio

    • 3–7% by mass of the coupling component in dye synthesis, depending on chromophore intensity and targeted solubility; modulated for masterbatch or pigment paste applications by color concentration required.

    Downstream process integration

    • Employed at the diazotization or coupling stage as a nucleus for chromogenic formation. Carefully monitored with pH and temperature controls to maximize dye yield and minimize by-product formation prior to downstream purification and finishing.

    Final product types

    • Powdered and liquid azo dyes, anthraquinone pigments for synthetic fiber dyeing, paper coloring, and high-solid pigment dispersions for plastics and coatings.

    4. Polymer Additive Intermediate for Specialty Polybenzoxazoles (PBO)

    Specialty polymer producers apply this raw material as a core intermediate in producing high-performance polybenzoxazole (PBO) resins, favored in advanced fiber applications such as flame-retardant fabrics and high-strength composite reinforcements. Processing demands controlled input quality and reliable reactivity under high-temperature polymerization, affecting both mechanical and thermal properties of the downstream materials.

    Industry compliance standards

    • ISO 9001:2015 for Quality Assurance in Specialty Polymers
    • RoHS Directive 2011/65/EU for restricted substances in electronics & textiles
    • ASTM D7017 Standard for Polybenzoxazole Fiber
    • REACH registration for intermediate use in polymer synthesis

    Typical usage ratio

    • 0.8–1.2 molar equivalents relative to diacid monomers in the polymerization batch; fine-tuned based on target molecular weight, chain length, and mechanical reinforcement required by end-use.

    Downstream process integration

    • Added after dehydrochlorination and prior to polycondensation in a controlled batch or continuous reactor. Input material quality directly impacts polymer chain uniformity and thermal resistance of the extruded fibers or films.

    Final product types

    • Flame-resistant technical fibers, high-strength PBO filaments, specialty films for electronics, membranes for battery separators, and engineered composite panels.

    5. Fine Chemical Intermediate for Benzamide-Derived Photoinitiators

    Chemical companies specializing in additive technologies incorporate this material as a precursor for synthesizing benzamide-structured photoinitiators. These photoinitiators play a vital role in high-value applications such as UV-cure inks, adhesives, and coatings, where efficient absorption and radical generation under controlled UV exposure critically affect processing speed and cured product performance.

    Industry compliance standards

    • ISO 14001:2015 Environmental Management in Fine Chemical Production
    • SGS testing for PAH, VOCs, and benzamide photoinitiator traceability
    • REACH pre-registration for photoinitiator intermediates
    • ETAD Code of Practice for specialty chemical safety

    Typical usage ratio

    • 0.2–0.9 mole per equivalent of acrylate or polyester backbone in the photoinitiator precursor batch; varies according to UV-cure depth and performance grade(s) stipulated by the ink, adhesive, or coating formulation.

    Downstream process integration

    • Integrated at the condensation or amidation reaction stage, with careful ratio control for photoinitiator performance and minimization of residual amine contaminants. QC release assays track reactivity and storage stability of synthesized intermediates before blending into finished photoinitiators.

    Final product types

    • Liquid and crystalline photoinitiators for UV-cure inks, 3D printing resins, pressure-sensitive adhesives, and industrial protective coatings.
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    Certification & Compliance
    More Introduction

    2-Amino-5-Chlorobenzamide: Manufacturer’s Perspective on Quality and Utility

    Understanding 2-Amino-5-Chlorobenzamide from the Factory Floor

    Every manufacturer has certain products that stand out not just on paper, but in daily operations—2-Amino-5-Chlorobenzamide is one of those for us. Chemists know it by its CAS number 29069-62-9, but those numbers only scratch the surface. This compound delivers reliable performance in a range of chemical syntheses and formulations, something we see firsthand in our plant every week.

    Model and Specifications: Designed for Consistency

    Most of our output for 2-Amino-5-Chlorobenzamide centers around the pharmaceutical and agrochemical sectors. We emphasize production integrity at the molecular level, using a process that keeps impurities below 0.5% on high-volume orders. The white to off-white crystalline powder we ship out is the result of several in-house purification steps—no shortcuts, no subcontracts to unknown vendors. This effort shines most in batch-to-batch analysis reports, where purity does not fluctuate and end users avoid setbacks from unwanted byproducts.

    Particle size distribution may not seem like a headline detail, but a project manager struggling with insolubility or caking in blending operations quickly understands why it matters. By taking responsibility at the reactor rather than pushing this burden downstream, we keep these values consistent and clients get exactly what they expect. Products leaving the site meet strict internal standards maintained through hands-on sampling, NMR, HPLC, and loss-on-drying measurements.

    How 2-Amino-5-Chlorobenzamide Supports Product Development

    Chemistry is full of building blocks, so the real question is: what does this one actually solve? In our experience, 2-Amino-5-Chlorobenzamide offers clean mono-functional reactivity thanks to its amide and amine groups on the benzene ring. This makes it favored by researchers focused on heterocyclic synthesis and high-value coupling reactions—especially when selectivity counts.

    Over the years, we’ve supported teams creating pyrimidine and quinazoline scaffolds, as well as varied substituted benzimidazoles. The demand here flows from the speed and confidence our product gives to these steps. Chemists can skip extra purification or troubleshooting caused by isomeric blends or odd elemental impurities, which typically slow progress at late stages of synthesis. Each kilogram comes with traceability and performance records, reflecting our accountability as the original producer.

    Many clients are after intermediates for antitumor or antifungal actives. In these contexts, unwanted side-products are more than a hassle; they risk project timelines and regulatory headaches. With our controlled process, scientists move from benchtop trials to scale-up without surprises—the same sample that passes a 2-gram test holds its character at 20 kilos. We’ve even helped custom projects refine their isolation steps through process advice, avoiding expensive reformulation on the client’s end.

    What Sets 2-Amino-5-Chlorobenzamide Apart from Nearby Analogs?

    Markets overflow with options—similar amide or halo-substituted benzene derivatives claim to offer easy drop-in replacement, but we’re regularly asked about the real differences. Some products come from generic sources or batch splits, while ours continues as an original synthesis direct from raw materials to final QC.

    For example, lower purity lots can introduce unwanted nitro or multi-chloro analogs. These contaminants play havoc with downstream steps, leading to crude isolations, color impurities, or reduction in biological assay performance. From our side, we ensure only material that meets full release criteria ever leaves the production site.

    Several common suppliers rely on mixed-source intermediates, sometimes offering “Aminochlorobenzamide” in generic grades that lack structure-specific traceability. We’ve encountered complaints about yellowing, unpleasant byproducts, or variable melting points—all issues rooted in compromised quality management. We answer these problems with direct process data, not vague assurances.

    Pricing reflects this difference. Our facility prioritizes reproducibility and safety over rapid cost cuts. That means investing in containment, skilled operators, and reliable supply chains for each step. Most distributors or brokers can’t offer the longitudinal data-packed with every shipment, nor can they provide root-cause analysis if issues arise. We have longstanding protocols and direct access to the production history, not just a product description.

    Supporting Evolving Industry Requirements

    The pharmaceutical and crop-protection fields have both faced increased scrutiny over impurity profiles and traceability. As regulatory burdens climb, the value of transparent and controlled synthesis only grows clearer.

    We regularly field requests from quality assurance auditors—not just external questions, but concrete document trails. Our technicians can show not only final batch records and analytical data, but also in-process controls with timestamps. No batch moves forward without dual verification, and records stay accessible for several years after release.

    Manufacturing at this level means predicting and solving problems before they leave the plant. For instance, water content is tightly managed to avoid unwanted hydrolysis in downstream chemistry. We keep this measurement below 0.5% and record the value for each batch, which reflects our zero-compromise mindset. Without this, shelf-life becomes a gamble, especially in hot or humid conditions.

    Handling and Logistics: Experience Beyond the Bag

    We’ve loaded hundreds of drums over the years, so practical matters like packaging, transit stability, and regulatory labeling matter deeply. Our drums come with polyethylene liners and tamper-evident seals, which cut down on particulate ingress and humidity pickup during shipping. Each container is labeled with a unique lot number that connects directly to our in-house records.

    Even with excellent compound stability, we recommend cool, dry storage to keep the physical properties unchanged over time. Many of our clients run stability studies on arrival using our documentation; we keep reference samples for every batch, so queries can be resolved by retesting the original material under matched conditions.

    Troubleshooting: What Our Chemists Have Learned

    Unexpected reactivity or solubility shifts in the lab can damage a whole research project. We stay ahead of these issues by doing accelerated stability studies and solvent compatibility screening in-house. For certain syntheses where the product serves as a coupling partner, even trace impurities or polymorphic changes can affect reaction rates. By keeping production in-house and under direct control, we avoid last-minute surprises that show up only at the user’s site.

    Batch failures almost always trace back to incomplete drying, overlooked trace metal contamination, or cross-batch contamination at fill points. Our site uses dedicated tanks and cleaning protocols between runs, which keeps this risk minimal. Years spent working alongside synthetic chemists have shown that tiny deviations show up as big headaches at the application stage, so quality means ongoing collaboration—not just at the order stage, but with technical follow-up.

    Supporting Customer Innovation and R&D

    More than ever, clients want their questions answered by those who actually make the product. For early-stage drug discovery or scale-up, the details count: what byproducts might complicate isolation? Can custom grades be made with a particular particle size, moisture content, or packaging format? We’re not just reading specification sheets; we’re testing and adapting the process based on real data and client feedback.

    Our team fields requests for new applications or unusual synthetic transformations, often providing samples for lab testing or process simulation. In many cases, we collaborate directly with R&D teams to troubleshoot reactivity, compatibility, or unexpected crystallization. Several partnerships have evolved out of this technical engagement—proof that real progress happens where the product is made, not just where it’s shipped.

    A recent project stands out: a partner working on a targeted antifungal therapy ran up against persistent color impurities in pre-final intermediates. By tracing back the source and manufacturing a modified grade with adjusted purity cuts, we helped eliminate these issues at the source. This sort of open collaboration only happens with manufacturers who understand the full process.

    Sustainability and Responsible Chemical Production

    Pressure grows each year to not only reduce waste but also ensure the ethical sourcing and lifecycle management of chemical products. Our production plant uses an on-site effluent treatment system, converting process water into environmentally acceptable discharge. This flows from a genuine belief in sustainable operations—not just meeting the minimum withdrawal or emissions regulations, but aiming to improve every year.

    Waste streams are tracked and reduced where possible, and solvents are recovered and reused unless purity demands fresh material. On a practical level, this lowers disposal volumes and material costs, but more importantly, it addresses concerns from regulators and partners who care about stewardship. Feedback loops from our own team and from clients guide improvements, whether optimizing reaction yields or increasing recycling efficiency.

    Documentation and Data Integrity

    Audits get more demanding each year. Each shipment comes with a full analytical dossier, signed and reviewed by our QA management. This includes spectral files, chromatograms, and certificates of analysis tied to the individual lot number—not just a cut-and-paste document.

    On request, we support clients with additional detail, such as heavy metal content, endotoxin screening, or extended impurity profiling. Data is securely archived for future reference and protected by internal controls. By dealing directly with the manufacturing team, clients bypass layers of uncertainty and get direct, clear answers about every aspect of the compound.

    We’re frequently called by clients who encounter regulatory questions during later development, often years after the initial purchase. Our archives and sampling program allow us to back up every key claim with hard data—something we see as essential to standing behind our work.

    Comparison with Other Products: Clarity and Honesty in a Crowded Market

    Some neighboring compounds, like unsubstituted 2-Aminobenzamide or multi-chloro versions, claim similar performance—our lab and client feedback highlight why this is not the case for high-stakes synthesis. Differences in steric and electronic properties translate directly to reactivity in key coupling steps.

    Using a non-chloro analog may save cost in the short term, but we’ve seen teams struggle with unexpected regioisomer formation or side-product accumulation, especially on scale-up. The 5-chloro substituent in our product provides the reactivity and selectivity profile demanded by modern medicinal chemistry or advanced materials science.

    Clients relying on mixed or technical-grade sources report greater batch-to-batch variance, which then creates extra work developing new purification steps or troubleshooting synthesis outcomes. The cost of initial material can triple once hidden rework or increased analytical costs get factored in. We point this out not to scare buyers, but to illustrate the long-term value of direct-from-manufacture product, consistent documentation, and technical accountability.

    Alternative sources sometimes suggest “drop-in replacement” status, but our experience shows these claims fall short in rigorous R&D settings. Meeting spec is just the first step; supporting downstream innovation requires traceability, repeatability, and peer validation of every process detail. Working closely with our clients, we see firsthand how these differences translate into better outcomes, budget predictability, and speedier transition from lab to application.

    Staying Ahead: Continuous Improvement and Customer Partnership

    Chemical manufacturing never stays static. Over the last decade, production technology, analytical tools, and customer requirements have steadily advanced. We constantly review our synthesis routes, raw material sourcing, and purification systems for improvement opportunities. Regular interaction with end users informs where we focus change, and open communication drives progress.

    Periodic investments in new technology pay off. For example, high-resolution LC-MS instruments have strengthened our batch release reliability, picking up trace byproducts invisible to older methods. By feeding these insights back to the process chemists, we solve possible issues at the earliest step.

    Clients notice this practical commitment. Repeat buyers often come to us with new targets, requests for documentation, or questions about process changes—because they know we operate with transparency. Our team takes pride in seeing their expertise reflected in customer success. For us, improvement is not just about what the competition is doing, but about pushing ourselves to serve the next generation of innovators.

    The Human Element: Experience Matters

    Some aspects of chemical manufacturing come down to human judgment. Years of hands-on work have shaped how we approach daily decisions—from maintenance scheduling to sampling strategies. The skills built up by our operators and process chemists make the real difference when challenges arise.

    Plenty of variables combine on the factory floor, and small gaps in protocol or training can ripple out to affect product quality. We foster a culture where questions are welcomed, problems are shared, and experience is passed from one generation of chemists to the next. This spirit defines our product every bit as much as the chemistry itself.

    As regulations and market needs evolve, so do our training, safety, and documentation programs. We run regular reviews and learning sessions, ensuring that everyone—from new trainees to senior plant managers—understands not just what we do, but why we do it. This foundation supports every batch of 2-Amino-5-Chlorobenzamide that leaves our site.

    Conclusion: Real Value and Accountability from the Manufacturer

    Direct experience with 2-Amino-5-Chlorobenzamide production brings more than technical knowledge—it brings a direct line of responsibility to every customer who uses our compound in their own work. Each order reflects our factory’s pride, discipline, and willingness to answer questions honestly.

    In a world crowded with resellers and shifting sources, we keep sight of what end users need: not just a product, but a guarantee of quality, responsiveness, and true partnership. Chemical manufacturing is an ongoing commitment, and 2-Amino-5-Chlorobenzamide stays a central part of that story for innovators across industries.