|
HS Code |
320355 |
| Cas Number | 3517-52-4 |
| Molecular Formula | C8H9Cl2N |
| Molecular Weight | 190.07 |
| Iupac Name | 2-(3,4-dichlorophenyl)ethan-1-amine |
| Appearance | White to off-white solid |
| Melting Point | 54-57°C |
| Boiling Point | No data available |
| Solubility | Soluble in organic solvents, slightly soluble in water |
| Density | No data available |
| Pubchem Cid | 23121598 |
| Smiles | C1=CC(=C(C=C1CCN)Cl)Cl |
| Storage Temperature | Store at 2-8°C |
| Synonyms | 3,4-Dichlorophenylethylamine |
| Inchi | InChI=1S/C8H9Cl2N/c9-7-2-1-6(3-4-11)5-8(7)10/h1-2,5H,3-4,11H2 |
As an accredited 3,4-Dichlorophenethylamine factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle, 100 grams, sealed with screw cap, chemical label displaying "3,4-Dichlorophenethylamine", hazard information, and handling instructions. |
| Shipping | **Shipping for 3,4-Dichlorophenethylamine:** This chemical is shipped in tightly sealed, chemically-resistant containers under standard conditions. It is classified as a hazardous material, so transportation complies with relevant regulations, including proper labeling and documentation. Handling precautions are observed to prevent leaks and exposure during transit. Store away from heat, moisture, and incompatible substances. |
| Storage | 3,4-Dichlorophenethylamine should be stored in a tightly sealed container, away from light, moisture, and incompatible substances such as strong oxidizers. Keep it in a cool, dry, and well-ventilated area, ideally within a chemical storage cabinet. Ensure proper labelling and access control, and follow all relevant safety and handling guidelines to prevent accidental exposure or chemical reactions. |
Applications of 3,4-Dichlorophenethylamine in Industrial Manufacturing3,4-Dichlorophenethylamine serves as a specialized intermediate across several defined industrial sectors. As a direct manufacturer, we supply this chemical primarily for established downstream pathways, each with strict regulatory compliance requirements, precise incorporation ratios, specific process integration stages, and unique finished product lines. 1. Pharmaceutical API Intermediate SynthesisPharmaceutical manufacturers utilize 3,4-dichlorophenethylamine in the multi-step synthesis of select active pharmaceutical ingredients, particularly in the development of CNS-modulating compounds and related small-molecule APIs. The amine performs as a key building block within the formation of target molecular frameworks, where its chemical structure enables downstream functionalization tasks such as amidation and N-alkylation—essential in constructing the pharmacophore of the final compound. During GMP-compliant API production, its strategic addition helps maintain control over impurity profiles, facilitating robust batch traceability and regulatory submission support. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
2. Agrochemical Active Ingredient IntermediateWithin the crop protection sector, this compound functions as a critical precursor in the production of certain herbicide and insecticide actives. Its chlorinated aromatic structure provides enhanced reactivity and environmental stability as demanded by downstream process steps, particularly during the construction of phenethylamine-based pesticide scaffolds. Agrochemical formulators capitalize on its compatibility with chlorination, acylation, and heterocyclization operations under technical-grade manufacturing practices, ensuring the generation of target molecules that meet both regulatory review and field application requirements. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
3. Specialty Dye and Pigment SynthesisProducers of specialty dyes and pigments rely on 3,4-dichlorophenethylamine to introduce controlled halogenation characteristics into chromophore frameworks, facilitating the development of unique coloration profiles and lightfastness for plastics, coatings, and fiber applications. Typically, the compound enters the manufacturing process as a functionalizing amine during diazotization or direct coupling with aromatic cores, providing pigment manufacturers with tailored reactivity while maintaining compliance with heavy metal and aromatic amine regulations in synthetic textile and industrial pigment sectors. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
4. Fine Chemical Intermediate for Polymer ModifiersThe compound acts as an intermediate in the fine chemical industry for synthesizing polymer modifiers, particularly functionalized additive masterbatches and specialty elastomer crosslinkers. Its dual chloro and amine functionality enables downstream esterification or urethane formation, supporting product development demands in plastics compounding that require enhanced mechanical or barrier properties. These processes demand rigorous feedstock validation and integration within continuous or batch polymerization environments to ensure batch-to-batch consistency and regulatory-compliant additive profiles. Industry compliance standards
Typical usage ratio
Downstream process integration
Final product types
|
Competitive 3,4-Dichlorophenethylamine prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please call us at +8615371019725 or mail to admin@sinochem-nanjing.com.
We will respond to you as soon as possible.
Tel: +8615371019725
Email: admin@sinochem-nanjing.com
Flexible payment, competitive price, premium service - Inquire now!
Years in the chemical industry have taught us that every molecule presents its own unique challenges and rewards. 3,4-Dichlorophenethylamine, known among researchers for its straightforward structure and reliable function, has become a staple in many advanced manufacturing processes. Here on the factory floor, our technicians recognize the importance of consistent composition and dependable quality, as project timelines and product outcomes often ride on the reliability of every batch.
Our daily routines revolve around careful attention to detail. This approach has shaped the way we produce 3,4-Dichlorophenethylamine. The molecular formula C8H9Cl2N gives the compound a distinct identity, but what matters to technicians and customers alike is purity and consistency over thousands of kilograms. Our processes focus on securing high-assay material with typical purities at or above 98%. Visual inspection—a step we consider critical—reveals a colorless to pale yellow, oily liquid. Each batch undergoes full analytical testing to detect any irregularity, knowing that even a minor deviation can impact sensitive syntheses or downstream pharmaceutical steps.
Years of production have guided us to understand where 3,4-Dichlorophenethylamine stands out. Chemists value this chemical for its role as a key intermediate in the synthesis of tailor-made pharmaceuticals and specialty polymers. Our plant teams handle large volumes destined for active ingredient development and even high-performance materials. On pharmaceutical sites, R&D professionals often choose this molecule because its dichloro-substitution pattern can influence both bioactivity and chemical reactivity—a detail many overlook unless they are hands-on in the process labs.
Outside pharmaceuticals, manufacturers in agrichemicals and advanced materials use 3,4-Dichlorophenethylamine to create functional groups with specific electronic characteristics. During each shipment, our operations team tracks feedback on stability through transit, especially when clients use the product in reactions involving critical amide or imine formations. Years working closely with downstream users have taught us to prioritize batch-to-batch reproducibility, keeping an open dialogue with process chemists for every order.
Our site handles a wide range of phenethylamines and related substituted amines. Operators quickly learn how 3,4-dichloro substitution differs from either mono- or tri-chloro analogs. For those who have worked only with the parent phenethylamine or its simple homologs, the difference shows up immediately in reactivity toward electrophilic aromatic substitution and nucleophilic addition. Double-chlorinated rings present increased electron-withdrawing effects, which shift how the molecule interacts in catalytic and functional group transformations.
Choosing between mono-, di-, or tri-chloro phenethylamines depends not just on theory, but on practical process outcomes—reaction time, temperature control, and downstream purification steps. Our plant’s experience tells us that the 3,4-dichloro derivative often achieves a balance between manageable reactivity and targeted product yield. In making comparisons, our quality control team runs side-by-side profiles, documenting differences in melting points, boiling ranges, and MS/GC spectra. Customer requests for documentation have prompted us to maintain detailed records for all structural analogs.
For polymer applications, producers report that the 3,4-dichloro ring structure influences chain formation and final product stability differently than unsubstituted variants. Over time, many clients have described improved selectivity in coupling reactions and lower byproduct profiles—a feedback cycle we’ve used to refine our own internal specifications.
Maintaining reliable quality takes more than laboratory know-how. On the plant floor, staff must manage raw material variability, solvent selection, and careful temperature control during chlorination and subsequent workup stages. Slight shifts in process conditions—sometimes the result of ambient weather or power fluctuations—prompt our operators to stay vigilant. Years of troubleshooting have pushed us to automate critical controls and invest in inline analytics, ensuring that off-specification material never leaves the factory gates.
Controlling impurities remains a constant struggle, especially when small-scale custom syntheses ramp up to multi-ton production. Side products such as polychlorinated byproducts and isomeric amines can appear if parameters stray. We maintain a library of spectral fingerprints and chromatographic profiles to quickly identify any deviation from our target material. Effective communication between operators and analytical staff is as essential as the most advanced reactor controls.
We’ve invested significant resources to improve tracking and documentation for every drum and every intermediate. Customers in regulated markets—particularly pharmaceuticals—require full traceability, from incoming raw materials to finished batches. Our internal systems document every step, logging batch records, analytical certification, and cleaning protocols. This transparency forms the foundation for every customer relationship we build.
Our quality assurance team shares lessons learned through several decades working with clients across North America, Europe, and Asia. Regulatory audits have underscored the importance of reproducible manufacturing and honest reporting. By sticking to evidence-based documentation, we create confidence in applications ranging from clinical research to start-to-finish drug development.
Continuous improvement is never optional. Environmental and worker safety standards evolve as new data emerges, and our teams treat compliance as a daily reality. Strict environmental rules govern chlorinated chemical production, especially for aromatic amines such as 3,4-Dichlorophenethylamine. We routinely invest in emission controls, solvent recovery, and waste water treatment infrastructure. Onsite engineers work with local officials and industry bodies to fine-tune protocols for storage, handling, and waste management.
Our site management works to reduce fugitive emissions and hazardous waste. Older processes relied too much on open systems and hazardous reactants. Through ongoing retrofit and design, we have transitioned to closed-loop handling and targeted quench systems, which reduces accident risk and waste volume. Worker teams receive regular training on handling, personal protection, and emergency response. We see this as part of the responsibility that comes with producing specialty amines at scale.
Beyond production, technical support often determines whether a material meets project goals. Customers contact us with questions ranging from solubility in custom solvents to compatibility with unique catalysts. Our technical team works alongside application scientists to troubleshoot unexpected results and suggest practical solutions. Collaborating directly with R&D teams over the years has helped us learn about new potential uses—from controlled release studies to advanced organic electronic precursors.
Solutions sometimes mean running pilot reactions onsite to verify lab method transferability to plant scales. Feedback often leads to process modifications: further drying, filtration upgrades, or even alternate packaging to protect product integrity through international transit. These lessons accumulate, producing knowledge that supports both young startups and established sector leaders.
Open feedback channels help us match product performance to technical needs. More than once, a customer’s new synthetic route has required us to tweak our own process conditions or adjust product specifications. We value these opportunities because they reveal real-world challenges and drive us to develop robust, customer-specific solutions. Every adjustment documented in our plant logs traces back to a specific project request or quality improvement trial.
Process chemists often share nuanced feedback—notes on reaction rates, temperature profiles, or unexpected color changes—that help refine our synthesis and purification stages. Through these partnerships, we have identified new applications for 3,4-Dichlorophenethylamine in digital imaging and pilot-scale agrochemical studies. Sharing recorded lessons across teams produces steady advancements in knowledge and reliability.
Manufacturing 3,4-Dichlorophenethylamine for a rapidly evolving market takes more than technical compliance. We have learned that true value comes from reliable, honest partnerships with end users. This means keeping customers updated on raw material constraints, explaining variability risks, or even flagging global transport disruptions before they affect delivery timelines.
Unlike trading companies focused on volume, our team invests in every batch, documenting repeat orders and capturing key insights with each shipment. This commitment helps research and production customers reduce downtime, predict performance, and build their own brands on a foundation of dependable materials.
Scale-up demands present different challenges than lab-scale synthesis. We collaborate with clients at every stage, offering direct samples from kilo to multi-ton lots and tracking any variation in appearance, reactivity, or byproduct formation. Engineers sometimes request custom volumes, concentrated solutions, or specialized containers for integration into automated systems. Our plant teams handle these tasks with the same attention that early product batches received, knowing that success relies on consistent results at every scale.
As new applications emerge, we keep up with technical literature, patent developments, and customer innovation pipelines. Our R&D investments target both process improvements and application testing—constantly refining existing products while seeking new routes to value. This ongoing learning shapes our future pipeline and protects customers from unforeseen disruptions in global supply chains.
Market changes can influence both cost and availability of key inputs for 3,4-Dichlorophenethylamine production. Political changes, weather disruptions, or sudden demand surges lead to occasional tightness in chlorinated benzene or ammonia supply. Experience has taught us to spread sourcing risk across multiple qualified suppliers and to maintain buffer stocks, especially during high-risk periods. This approach has helped cushion downstream clients from the worst effects of market volatility.
When customers alert us to changed specs or expanded orders, our forecasting teams step in, adjusting production rotations and shipment timing. Trust builds with each successful on-time delivery, and recurring supply issues get addressed openly, never ignored or covered up. This approach builds long-term trust in the reliability of our 3,4-Dichlorophenethylamine offering.
A robust product offering starts with a skilled, engaged team. Our plant management invests in worker training for everything from safe handling practices to the newest process technology. Equipment upgrades—like digital process controls, new filtration units, and safer bulk storage—reduce operational risk and boost overall reliability. Operators participate in root cause analysis following any production challenge, creating a culture built on problem-solving and continuous learning.
By investing in both people and plant, we keep improving product consistency and operational safety. These investments translate directly into customer confidence and product reputation in every market we serve.
Working hands-on with 3,4-Dichlorophenethylamine across countless batches and customer projects has taught us that technical know-how and product reliability go hand in hand. Each product shipment reflects years of hands-on experience and a culture of continuous improvement. We accept responsibility both for the safety of our teams and the downstream impact on our customers’ processes.
The commitment extends beyond the factory gate. Our quality, technical, and logistics teams stay engaged with customers at every stage, seeking out technical feedback, troubleshooting challenges, and pursuing new approaches to meet emerging needs. For those looking for a supplier who understands both the science and the realities of the production floor, our approach delivers more than just a chemical—it builds a lasting partnership.