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HS Code |
591097 |
| Iupac Name | 2-chloro-N-(benzo[1,3]dioxol-5-yl)acetamide |
| Molecular Formula | C9H8ClNO3 |
| Molecular Weight | 213.62 g/mol |
| Cas Number | 25143-36-0 |
| Appearance | White to off-white solid |
| Melting Point | 135-137°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Storage Conditions | Store in a cool, dry place, tightly closed |
| Purity | Typically ≥98% |
| Smiles | ClCC(=O)Nc1ccc2OCOc2c1 |
| Inchi | InChI=1S/C9H8ClNO3/c10-5-9(12)11-6-1-2-7-8(3-6)14-4-13-7/h1-3H,4-5H2,(H,11,12) |
| Synonyms | 2-Chloro-N-(1,3-benzodioxol-5-yl)acetamide |
As an accredited N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | White, sealed HDPE bottle containing 25 grams of N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide, labeled with hazard symbols and product details. |
| Shipping | N-Benzo[1,3]dioxol-5-yl-2-chloro-acetamide should be shipped in a tightly sealed container, protected from moisture and light. Transport in accordance with local, national, and international regulations for chemicals. Use appropriate hazard labeling, and ensure it is cushioned to prevent breakage or spills during transit. Handle with care. |
| Storage | N-Benzo[1,3]dioxol-5-yl-2-chloro-acetamide should be stored in a tightly sealed container, in a cool, dry, and well-ventilated area, away from heat and direct sunlight. Keep separated from incompatible substances such as strong oxidizers and acids. Store at room temperature, avoiding moisture and sources of ignition. Properly label the container and keep out of reach of unauthorized personnel. |
Applications of N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide in Industrial ManufacturingN-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide serves as a key intermediate for several highly regulated sectors. We supply this raw material in compliance with strict industrial standards to ensure reliable incorporation into downstream production. Below, we describe major real-world industrial applications with the critical compliance, formulation, and processing details required by downstream users. 1. Pharmaceutical Intermediate: Synthesis of Antihypertensive AgentsAPI manufacturers use this substance as a critical building block in the multi-step synthesis of specific antihypertensive drugs, particularly those based on benzodioxole moieties. In this process, stringent impurity control and traceability throughout every batch are essential to meet Good Manufacturing Practice (GMP) conditions. Chemists implement optimized chlorination and acylation to integrate this raw material during the penultimate stage. Product formulation typically ranges within narrow parameters set by downstream API specifications. Industry compliance standards
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2. Agrochemical Intermediate: Synthesis of Selective Herbicide ActivesFormulators use N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide as an acylating intermediate for manufacturing benzodioxole-containing selective herbicides. Producers must ensure all starting materials comply with chemical registration and environmental protection standards. Engineering teams control input ratios based on targeted active content, with real-time process adjustments for batch-to-batch consistency. The material enters the synthesis prior to active moiety linkage, followed by downstream purification and solid formulation. Industry compliance standards
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3. Fine Chemicals: Fragrance Ingredient Synthesis for PerfumeryThe compound acts as a precursor in synthesizing specialized aromatic chemicals used in perfumery. Manufacturers must comply with IFRA guidelines and regional chemical safety labeling. Chemical engineers dose it based on olfactory target profiles, with high attention to reaction selectivity to avoid undesirable by-products. This ingredient typically enters as a reactive agent in esterification or amidation steps for fragrance additive production. Industry compliance standards
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4. Dye Manufacturing: Intermediate for Functional Colorant SynthesisWithin the dye and pigment sector, N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide contributes to the synthesis of advanced functional dyes. Downstream processors must meet textile and eco-label compliance, requiring full traceability. Technical teams manage the input into the coupling stage, adjusting process parameters to achieve specific chromophore formation. Post-processing involves stringent filtration and stabilization before downstream blending. Industry compliance standards
Typical usage ratio
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Manufacturing chemicals isn’t about cutting corners. In our plant, each batch of N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide takes shape under the steady hands and watchful eyes of a team driven by experience. Our chemists work closely with process engineers, always adapting to fresh challenges in synthesis and scale-up. Rarely does a day go by without a tweak to a workflow or a review of analytical data, pushing us to improve yield, purity, and safety at every turn. Clear, reliable sourcing of raw materials matters to our team, and working long-term with trusted suppliers ensures that what enters the reactor meets the standards we demand.
Over years spent at the bench and on the production floor, we have learned that detailed attention—right down to the temperature ramp rate and solvent polarity—directly impacts the results. N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide isn’t just another catalog entry. Customer requests drive our projects, and feedback from application chemists or formulators doesn’t just flow into a support inbox. Technicians, operators, and technical leads take that feedback in stride, revisiting lab notebooks and method sheets until the data lines up with what customers actually see in use.
Our N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide comes from a multi-step process, starting with benzodioxole and moving through successive reactions to introduce the chloroacetamide functionality with a high degree of control. We standardize our most frequently ordered model to offer a typical assay of at least 98 percent by HPLC. Batch-specific certificates include water, ash, and key trace impurities, so there’s no guessing about what’s actually leaving the plant.
This chemical has gained traction in the pharmaceutical, agrochemical, and advanced materials segments. Beyond purity, our routine covers physical properties that make a direct difference in workflows. We keep particle size in a narrow window for efficient dissolution or milling, and moisture specification is strictly held, minimizing caking or stickiness in the field.
In production runs for reactive intermediates, labs often report improved yields compared to related compounds that lack the benzodioxole ring. The structure brings both stability and reactivity when handled correctly. For some customers, this means running milder conditions in acylation reactions; for others, it opens up access to novel heterocyclic scaffolds or metabolite analogs. From a technician’s viewpoint, ease of filtration, lower dusting, and reliable flow rates save frustration at the plant or pilot scale.
No two users treat the chemical the same way. In pharmaceutical R&D, the product cuts down on by-product formation during key coupling steps, often enabling the use of alternative coupling agents that aren’t compatible with simpler acetamides. Synthetic chemists have shared how the dioxole core supports the design of novel kinase and protease inhibiting compounds. Formulators in agricultural research run controlled releases, tracking degradation profiles in soils and plants. The compound’s controlled reactivity and manageable toxicity profile lets these teams carry out field trials and bioactivity screens without scrambling to handle legacy safety issues tied to less stable reagents.
For those making advanced polymers, this building block gives a route to new functional materials that resist hydrolysis and show consistent shelf stability, even over months in uncontrolled storage. We’ve seen the product incorporated into custom coatings and specialty films for electronics, where demands for purity and low ionic content go beyond commodity grades.
Process scale-ups often run more smoothly using our material compared to alternatives. Customers in European and North American fine chemical sectors often note the reproducibility of reaction endpoints and product isolation steps. Reducing downstream purification requirements saves money and time, especially when labor costs run high or waste disposal presents a significant overhead.
In our experience, the real difference in N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide compared to other substituted acetamides lies in two things: consistent quality and a clearer understanding of what actually gets shipped. Far too many packages labeled as this compound fall short on identity or contain isomeric impurities that spell trouble for scale-up. In our plant, before any drum is sealed, identity is confirmed by NMR and mass spectrometry. Every consignment gets a full breakdown, not just an assay figure copied from a database.
From a synthetic utility standpoint, the dioxole substitution pattern interacts with reactive centers in ways that more basic acetamides or even benzyloxy analogs can’t match. Reduced substrate decomposition in transition metal-mediated reactions helps minimize reaction dead-ends. For polymer chemists, the subtle differences in solubility and reactivity patterns allow for new process windows, improving throughput and reducing the time engineers spend troubleshooting in pilot plants.
Our direct knowledge of plant operations reveals the difference between theoretical yield on paper and what can be packed into bottles week after week. We’ve spent late nights reviewing chromatography results and developing clean-up methods for each impurity shown on pilot runs, not just the main ones flagged in textbook processes.
Feedback from applied researchers led us to fine-tune our drying and handling stage, since earlier batches tended to clump if left in drums too long. Now, by applying controlled vacuum and packaging in moisture-proof liners, we extend the use window for downstream blending and dosing.
Every step in our operations puts a microscope on quality—right from sample weighing through to final drum labeling. Analytical runs are routine, with HPLC and GC results posted where both production and QA staff can review them daily. Cross-training techs to understand both process and analytics bridges the gap between chemistry and logistics. It’s not just paperwork—one off-spec batch can lead to customer headaches, so corrections happen in real time.
Many competitors automate out impurity tracking in the name of throughput. We have seen how tiny, overlooked variations in starting material purity or solvent batch differences propagate into finished product issues. Regularly reviewing supplier certificates and running our own independent checks on raw materials offers peace of mind for us and anyone receiving our drums.
Safety isn’t just a compliance check box. Our team drills on spill response and containment for this compound, due to its moderate corrosivity and potential for skin irritation. In scaling from pilot to full production, extra precautions at filtration and packaging keep the dust under control and minimize worker exposure. Training for new staff emphasizes handling protocols, not just signs listing hazards.
Transparency overlaps with safety. Raw data on each batch is open for inspection by auditors and partners during visits. For any trace-level impurity or analytical ambiguity, we follow up directly with affected customers, sending technical notes, spectra, or even sending out small samples from recharacterized batches at no charge.
No manufacturing route gives perfect results every time. Thermal decomposition in late-stage intermediates forced our team to rethink heating cycles and invest in higher-specification temperature control units. Trials with alternative solvents took months, but side reactions and product carryover into waste streams dropped noticeably.
Cross-contamination risks in multipurpose reactors led to a system of dedicated transfer lines and detailed cleaning protocols, sharply reducing analytical outliers. Walkarounds by experienced plant techs often catch issues a manual can’t predict, from batch-to-batch foam overruns to subtle shifts in color that signal an impurity build-up.
Real-life production rarely matches textbook yields. We benchmark every batch against running means—not just for final product, but critical intermediates too. Early batches sometimes showed unexpected color or off-odors due to trace residuals from prior syntheses. By introducing extra wash cycles and reviewing catalyst sourcing, we dialed back these issues, picking up more solid NMR matches with every tweak. These changes do more than pad out a report—they cut costs for us and our partners downstream.
Users of N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide often face pressure to balance innovation with responsibility. We give technical guidance on waste handling and disposal for each type of user. For instance, downstream incineration removes persistent residues, and our waste management team stays in direct contact with local regulators to track shifts in compliance requirements.
In our own facility, no drummed product leaves without a sound plan for off-spec recycle, onsite neutralization, or return, should a customer run into storage issues. Plant-wide audits help us map out waste streams from synthesis right through final packing, plugging leaks and routing streams to approved treatment partners.
Regular reviews of peer-reviewed research update our stance on long-term environmental exposure and emerging degradation products. As regulatory climates tighten around persistent organics, we adjust internal controls—not just to meet the letter of regulations, but also to share informed practices with customers. Knowing the differences between a material that gets stuck in the ecosystem and one that degrades as expected guides how we support everyone from research labs to industrial processors.
We treat our customers as project partners, not just buyers. Requests for alternative packaging, custom particle sizes, or expanded analytical breakdowns feed directly into our ongoing R&D. Chemists in client labs send feedback on real-world outcomes, not just theoretical requirements. Insights from an on-site visit or a late-night call after a tough batch run often point out where our paperwork and specs need to catch up with reality.
Long-term relationships with university groups and startup ventures have shaped our internal process notes and even led to tweaks in standard operating procedures. Some of the most valuable lessons didn’t come from a ten-page contract, but from a five-minute call from a frustrated scale-up team who couldn’t get yield up in a new application. We keep those stories in mind, because it’s easy to lose sight of on-the-ground challenges in the lab or plant when buried in compliance paperwork.
We often host technical exchanges, bringing together our chemists and outside process engineers to debrief on production bottlenecks and find common ground. Open data and clear communication break down barriers; sharing what works—and what needs improvement—leads to better outcomes for everyone. These sessions have refined our drying practices, tailored batch sizes, and even prompted us to modify clean-room flows.
A chemical plant is never static. New literature, legislative shifts, and field reports all guide us to revisit and revise. After a spike in customer requests for lower-halide versions, we invested in new synthetic protocols and filtration equipment. Analysis of recurring process deviations led to ongoing skills training across shifts—not just among chemists, but from logistics to cleaning crews.
On our shop floor, day-to-day notes and production logs feed directly into our company-wide database. We track how batch conditions correlate with both short-term and long-term quality metrics, using this to catch negative trends early. Whether it’s a temperature fluctuation, solvent batch change, or unnoticed humidity spike, we look for the root cause and share updates both internally and, where relevant, with project partners.
Sometimes, a change trickles in from unexpected sources. A warehouse operator flagged an issue with liner durability after repeat drum handling. That feedback led us to test and adopt more robust liners, reducing damage and moisture ingress, and ultimately improving shelf stability for everyone down the chain.
We build on rigorous training, data sharing, and ongoing discussion. No SOP goes untouched if the data say it needs improvement—there’s no room for pride when progress matters more.
As demand for N-Benzo[1,3]Dioxol-5-Yl-2-Chloro-Acetamide grows, we focus on consistency, safety, and utility, not just on making numbers or filling quotas. Reports from scientists and engineers help us define what matters most, from accessible, clear data to a transparent view of how raw materials turn into a reliable final product.
The future of chemical manufacturing isn’t just about faster production or tighter specs—it comes from open communication and a respect for impact, from the research bench right through field and end use. Our team revisits each challenge with experience, aiming for concrete solutions rooted in facts, not just promises. The more we learn from customers, research partners, and our own shop floor, the better our chemical—and our company—becomes.