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HS Code |
913149 |
| Product Name | N-(4-Chlorophenyl)-2-Chloroacetamide |
| Cas Number | 2104-96-3 |
| Molecular Formula | C8H7Cl2NO |
| Molecular Weight | 204.05 |
| Appearance | White to off-white solid |
| Melting Point | 142-145°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Purity | Typically ≥98% |
| Density | Approx. 1.40 g/cm³ |
| Smiles | ClCC(=O)Nc1ccc(Cl)cc1 |
| Synonyms | 2-Chloro-N-(4-chlorophenyl)acetamide |
| Storage Conditions | Store in a cool, dry place, tightly closed |
As an accredited N-(4-Chlorophenyl)-2-Chloroacetamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Opaque white plastic bottle, screw cap, labeled with product name, 100 grams, hazard symbols, manufacturer details, and handling instructions. |
| Shipping | N-(4-Chlorophenyl)-2-Chloroacetamide should be shipped in tightly sealed containers, protected from moisture and direct sunlight. Transport as a chemical substance subject to local, national, and international regulations. Use appropriate hazard labeling, and include a Safety Data Sheet (SDS). Ensure secondary containment and shipping via authorized carriers for chemical materials. |
| Storage | Store **N-(4-Chlorophenyl)-2-Chloroacetamide** in a tightly closed container, in a cool, dry, and well-ventilated area, away from sources of ignition, incompatible materials (such as strong oxidizers), and direct sunlight. Ensure appropriate labeling and keep away from moisture. Use secondary containment to prevent spills, and restrict access to trained personnel. Follow applicable safety and regulatory guidelines for chemical storage. |
Applications of N-(4-Chlorophenyl)-2-Chloroacetamide in Industrial ManufacturingN-(4-Chlorophenyl)-2-Chloroacetamide serves as a specialized intermediate in a select range of synthesis routes within the agrochemical and pharmaceutical sectors, as well as in certain advanced materials production lines. As a direct manufacturer, we ensure our raw material matches stringent industry requirements, supporting downstream partners with consistent quality control, traceability, and reliable compliance documentation for every application scenario described below. 1. Herbicide Intermediate in Agrochemical SynthesisDownstream agrochemical producers utilize N-(4-Chlorophenyl)-2-Chloroacetamide for synthesizing selective post-emergence herbicides, particularly acetanilide derivatives. This intermediate enters the plant protection production chain at the active ingredient manufacturing stage, influencing purity requirements, yield optimization, and environmental discharge control. Application formulations and final product registration hinge upon precise quality specifications and legal traceability back to upstream manufacturers. Industry compliance standards
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2. Synthesis Intermediate for Pharmaceutical Active IngredientsThe pharmaceutical manufacturing industry incorporates N-(4-Chlorophenyl)-2-Chloroacetamide as a starting material in the multi-step synthesis of APIs within the anti-inflammatory and analgesic segment. Its place in the pathway directly affects the impurity profile of the target molecule, subject to GMP batch records and continuous in-process quality checks. Industry compliance standards
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3. Custom Synthesis Platform for Specialty Fine ChemicalsAdvanced materials and fine chemical producers depend on N-(4-Chlorophenyl)-2-Chloroacetamide as a functionalized amide intermediate in the customization of specialty monomers, dyes, and advanced polymer additives. These production routes demand batch-specific documentation and trace impurity control, with the material entering high-value, customer-specific syntheses where reaction selectivity is critical. Industry compliance standards
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4. Raw Material for Agricultural Plant Growth Regulator SynthesisA select group of plant growth regulator manufacturers use N-(4-Chlorophenyl)-2-Chloroacetamide as a reactant in the production of certain chloroacetamide-derived compounds that influence plant morphogenesis and stress response. Its exact input and process control are tightly regulated to ensure bioactivity and field application safety of the finished formulations. Industry compliance standards
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After years in fine chemical production, you start to notice which compounds keep showing up in research orders, custom synthesis projects, and regular manufacturing runs. N-(4-Chlorophenyl)-2-Chloroacetamide, with its clean white crystalline appearance and chlorinated structure, has become one of those substances that never seems to fade from the order sheets. We produce this compound—often referred to by its identifying model 4-CPA-acetamide—in production lines geared specifically for high purity outputs. Each batch comes out with a purity above 99%, checked by systematic HPLC and GC analyses. Over time, the consistency in demand has everything to do with the chemistry and the real needs behind the orders, which come primarily from pharmaceutical and agrochemical sectors.
Some products get manufactured to fill a catalog. Others earn their place because no practical substitute matches their reactivity or the particular influence they have on downstream syntheses. N-(4-Chlorophenyl)-2-Chloroacetamide falls into the second group. The core draw lies in the way both functional groups—the acetamide and the electron-rich chlorinated phenyl ring—work in step. Chemists working on new herbicides and antimicrobials want to modify existing structures or build on a versatile intermediate. This compound gives room for those directed modifications. The reactive chloroacetamide moiety activates the molecule, making it possible for nucleophilic substitution or amide bond formation. The para-chlorophenyl core brings both steric effect and electron-withdrawing character, which has proven valuable in research stretches aiming for metabolic stability or better target selectivity.
Most clients come with clear requirements. They ask for tight control of impurities, reliable batch-to-batch consistency, and robust documentation. Our operation invests in multiple-stage purification and biomonitoring over production cycles. We’ve retained original spectral data archives for years, which allows cross-referencing against every subsequent lot. Many generic traders re-bottle product with substandard trace profiles; we manufacture with traceability running from raw material origin to downstream purity checks. The value reveals itself with the type of customer calls we get—often, questions revolve less around price and more around how the physical and chemical properties might enable a new synthetic approach or scale-up trial.
Production runs for N-(4-Chlorophenyl)-2-Chloroacetamide address two main branches. Some customers process it into advanced intermediates for active pharmaceutical ingredients (APIs), testing new lead compounds, or bench-scale validation. Others apply it in the crop protection arena, adjusting parent chemistries to improve action on target plant enzymes while limiting off-target effects. The compound's ability to undergo selective amide bond formation helps researchers design novel analogs. That reactivity isn’t just a theoretical benefit: in practice, time-to-product shortens because fewer side reactions arise compared to less stable chloroacetamide derivatives.
Several years back, we supplied this compound as part of a project exploring new pyrazole-based fungicides. The team needed a reliable method for introducing both aromatic and chloroacetamide moieties into a ring system under mild conditions. The basicity and electron-withdrawing capacity from the para chloride on the phenyl ring changed solubility and biological uptake for their entire test series. Following that run, they expanded orders as they chased down structure-activity relationships across different test plots. This pattern repeats: N-(4-Chlorophenyl)-2-Chloroacetamide finds use as a building block and as a stepping stone, supporting both routine process chemistry and early-stage discovery chemistry.
There are simpler chloroacetamide compounds, such as monochloroacetamide or substituted benzamides, found across supply chains. Technically, these materials offer similar starting points for basic amide chemistry, but applied needs often demand more than a functional group presence. The fourth-position chloride on the phenyl ring in our product brings electron distribution changes and steric factors that alter reactivity. Feedback from formulation labs points out that having a clean, high-purity version—one free of unreacted starting acids, residual chlorides, or colored by-products—makes downstream purification faster and prevents costly rework or scrapping of larger batches further down the line.
Down-to-earth, the main difference comes in the reproducibility and chemical profile. Standard industrial grades, such as basic chloroacetamide, can be sourced from multiple bulk chemical suppliers with less emphasis on residual solvents or controlled secondary products. For fine chemistry and pharmaceutical grade work, our N-(4-Chlorophenyl)-2-Chloroacetamide stands out due to strict impurity limits—and the full suite of COA and analytical backup. This includes detailed spectral records, full NMR, and mass spectrometry when required, so synthetic chemists know exactly what goes into their next reaction.
Interestingly, we have seen an increase in demand from companies pursuing green chemistry initiatives. Unlike some other aromatic acetamide derivatives, our compound can be manufactured without heavy metal catalysis or aggressive chlorination processes. The route we use minimizes hazardous waste and permits recovery of solvents, a relevant point for multinational clients whose environmental audits cover the entire upstream supply chain.
Over time, customer returns or complaints teach you a lot about real-world logistics. N-(4-Chlorophenyl)-2-Chloroacetamide stores well under ambient conditions, especially when sealed properly and kept dry. We provide the product in double-lined HDPE drums or amber glass, which guards against UV degradation and trace moisture pickup. Bulk clients—especially those scaling up synthesis—often require larger lots, so we've developed packaging lines that fill from nitrogen-purged tanks. This prevents any hydrolysis or decomposition before arrival.
We have tracked performance in long-term pilot studies—multiple clients have shared feedback on how the compound retains chemical stability for years when stored as recommended. Most degradation or loss in performance arises from exposure to atmospheric humidity, which is mitigated by low-permeability containers and clear labeling at every stage. Our packaging teams follow strict SOPs, with every drum or bottle batch-labeled and barcoded for electronic traceability, which reduces inventory confusion and ensures anyone receiving our shipment can immediately access full production records.
Decades of chemical manufacturing makes safety fundamental. Our workers regularly handle and package batches of N-(4-Chlorophenyl)-2-Chloroacetamide, so plant procedures lock in exposure control at all points. This compound, like most organochlorine amides, requires gloves, safety glasses, and engineering controls in place to keep dust below occupational limits. We've also set up clear hazard labeling per updated GHS and REACH standards, and we provide additional guidance documents for customers scaling up processes where exposures might climb above background levels. Clients value both the raw product quality and the support on proper handling—nothing derails a promising project faster than lost material or unplanned regulatory hiccups.
In addition, transparent chain-of-custody protocols protect against counterfeiting or dilution. Over the years, we've received inquiries about suspicious batches in the market. We know our own manufacturing codes and track distributed product closely, so authentic material always ties back to our in-house batch logs and reference samples. For regulatory filings or import clearance, supporting documentation and product traceability are ready for immediate verification.
We have tracked demand changes in every production quarter. Originally, N-(4-Chlorophenyl)-2-Chloroacetamide orders came mainly from small-scale research teams. Larger-scale uptake began once pharmaceutical pilot plants adopted more modular synthetic schemes, frequently choosing this compound for its chemical predictability and cost-effectiveness. Some multinationals have standardized their own in-house process routes largely because our chlorinated intermediate cut several steps from traditional protection-deprotection sequences.
Looking at the big picture, environmental considerations now influence not just client industries but the way we run our own plant. Previously, chlorination reagents and solvents posed real risks due to toxicity and waste disposal. To counteract that, we retooled parts of our production line for closed-loop solvent recovery, reducing emissions and improving recovery rates for all auxiliary chemicals. Our analytical team continually reviews impurity profiles, adapting protocols to minimize waste at the source. These practical improvements align with growing ESG requirements and corporate sustainability frameworks, impacting both the supply chain and end-user confidence in compliance audits. We now field regular requests for lifecycle documentation, not just COAs.
N-(4-Chlorophenyl)-2-Chloroacetamide doesn’t leave much room for shortcuts, because each application—especially in pharmaceutical synthesis—demands assurance at every step. Early on, research teams sketch out a synthetic scheme and anticipate a single pilot batch. Those batches frequently spiral into larger scale runs, sometimes resulting in several metric tons moving per year to the same site. We have kept batch logs and retained samples for over a decade for just this reason, allowing clients to revisit original analytical data or troubleshoot process changes well beyond the typical shelf-life period. Consistency matters for stakeholders right through the supply chain. Teams running routine QC tests want to see the same melting point, solubility, and spectral fingerprint without variation. By focusing on upstream purity, our operations cut down on unnecessary downstream filtering and reprocessing, which has real cost-saving implications for our customers.
Nothing beats direct plant experience when it comes to optimizing the production line. We’ve invested in continuous process improvements, including online monitoring and automated temperature control to minimize hot spots and ensure full chlorination. As plant chemists, our job never ends at the point of synthesis—we care just as much about how the final product behaves five months after shipping as on day one. In fact, we periodically revisit retention time data and overlay fresh IR spectra on archived figures, checking for even trace shifts that could signal unexpected by-products or slow degradation. Collaboration with end-users has always pointed us in the right direction. Complaints about caking or discoloration led to switching from basic drum storage to moisture-resistant, sealed packaging, and introducing small-lot packaging for research labs.
We favor a hands-on approach to technical service: if a batch goes off-color, precipitates unexpectedly, or the end-user picks up an anomalous signal in GCMS runs, our technical team will re-extract or retain samples for side-by-side testing. This direct link from factory to end-user—without sales intermediaries or trading middlemen—gives us the flexibility to resolve issues and refine our own internal SOPs. Over the years, these interactions have helped us catch latent problems long before they could multiply into broader process interruptions. Every improvement builds a foundation for longer-term trust, and the real-world data returned by users informs the next generation of manufacturing refinements.
Regulation now shapes both product shipment and the underlying manufacturing route. Our team keeps current on changes affecting restricted substance lists, transport requirements, and new declarations needed for global export. Subtle changes to regulatory frameworks can ripple down to demand for supporting analytical data or modified labeling on outgoing drums. Whether the end use lies in pharmaceutical, agrochemical, or advanced materials markets, regulatory buyers expect clean documentation and compliance built in from the point of origin. We see more orders paired with requests for detailed impurity mapping and risk assessment, especially where product traces might pass into environmental or food-related matrices.
The reality from factory floor up is that quality doesn’t happen by accident. Process monitoring, raw material vetting, and operator oversight combine in every batch. We even run lot-release protocols with redundant checks for melting point consistency and residual solvent testing. Every step reflects feedback from chemical engineers, line staff, QC analysts, and external auditors. The end result is a version of N-(4-Chlorophenyl)-2-Chloroacetamide that supports diverse projects, from controlled lab synthesis to production-scale order fulfillment.
Every manufacturing cycle with N-(4-Chlorophenyl)-2-Chloroacetamide lets us see the broader impact high-quality intermediates can have across industries. Innovations in downstream drugs, newer pesticide platforms, and experimental reagents all draw on the confidence that reliable supply and documented purity bring. We take pride in the repeat business that reflects not just product performance but the ongoing support from technical teams, regulatory compliance, and practical logistics solutions tailored for real-world demands. Experience in chemical manufacturing keeps us grounded—we move every lot with the knowledge that today’s batch supports tomorrow’s discovery, and that every decision on the production line resonates in finished pharmaceuticals, advanced research, and new field applications. Our commitment to quality, reliability, and open dialogue with end-users forms the foundation for every shipment and every order we fill.