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HS Code |
114253 |
| Iupac Name | 2-(2,4-dichlorophenoxy)ethanol |
| Molecular Formula | C8H8Cl2O2 |
| Molar Mass | 207.06 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Density | 1.33 g/cm3 |
| Boiling Point | 174-177 °C at 14 mmHg |
| Cas Number | 553-83-7 |
| Solubility In Water | Slightly soluble |
| Logp | 2.58 |
| Flash Point | 114 °C (237 °F) |
| Refractive Index | 1.552 |
As an accredited 2-(2,4-Dichlorophenoxy)Ethanol factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Opaque amber glass bottle with tight-seal cap, hazard labeling, and 100g net weight; includes chemical name, formula, and safety warnings. |
| Shipping | 2-(2,4-Dichlorophenoxy)Ethanol is shipped in tightly sealed, chemical-resistant containers to prevent leaks or contamination. It should be transported under controlled temperature conditions, away from incompatible substances, and labeled according to hazard regulations. Ensure appropriate documentation and safety data sheets accompany each shipment, and comply with all local and international transport regulations. |
| Storage | 2-(2,4-Dichlorophenoxy)ethanol should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and acids. Protect from moisture, heat, and direct sunlight. Store in a designated chemical storage cabinet, clearly labeled, and away from food and drink. Follow all safety and regulatory guidelines for hazardous chemicals. |
Applications of 2-(2,4-Dichlorophenoxy)Ethanol in Industrial ManufacturingAs a dedicated producer of 2-(2,4-Dichlorophenoxy)ethanol, we enable global manufacturers to harness its unique properties across advanced chemical industries. Our extensive quality protocols and experience as a direct manufacturer support customers in specialized applications where purity, traceability, and safe integration are critical to finished product reliability. Below, we highlight the major industrial application fields where this material provides acknowledged functional value, outlining downstream operational roles, compliance demands, processing steps, and representative end products. 1. Herbicide Intermediate Production for Phenoxyalkanoic FormulationsDownstream agrochemical companies require 2-(2,4-Dichlorophenoxy)ethanol as a key synthesis intermediate when producing selective phenoxy herbicides. Its ethoxylated structure serves as an essential building block for active ingredients used in cereal, rice, and plantation crop protection. Production teams incorporate this intermediate in multistep synthesis, ensuring regulatory alignment with international restrictions on dioxin residues and active substance traceability. Industry compliance standards
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2. Synthesis of Plant Growth Regulator Actives (Auxin Analogues)Manufacturers of plant growth regulators utilize 2-(2,4-Dichlorophenoxy)ethanol to synthesize specific auxin-like actives enhancing cell elongation and fruit set in horticultural crops. The raw material enters targeted etherification and esterification routes, demanding careful control of reaction completeness to meet agrotechnical product purity thresholds and distribution uniformity. Industry compliance standards
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3. Intermediate for Diphenoxy Acid Synthesis in Specialty ChemicalsProducers of specialty diphenoxy acid derivatives for resin modification and surfactant manufacturing use this material to introduce chlorinated phenoxy groups via alkylation pathways. Adherence to occupational hygiene and process safety norms is monitored throughout the integration of this raw material into specialty chemical synthesis steps, especially regarding volatile organic compound (VOC) handling. Industry compliance standards
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4. Precursor for Custom Agrochemical Synthesis—Fine Chemical Contract ManufacturingIn fine chemical facilities engaging in contract research and toll manufacturing, this compound is charged as a defined precursor for custom syntheses that require structural dichloro-phenoxy moieties. These operations implement rigorous change-control processes and document material genealogy to satisfy international code requirements for custom synthesis and supply chains in regulated sectors. Industry compliance standards
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In chemical manufacturing, value comes from clear results and practical use. 2-(2,4-Dichlorophenoxy)ethanol is an example of a compound whose role has grown in industrial and research labs. Its structure builds on the 2,4-dichlorophenoxy chemical backbone, adding ethanol functionality and creating a molecule with several unique possibilities. We know this compound as a colorless to pale yellow liquid under standard conditions, with a sharp, recognizable phenolic odor and a reputation for reliability batch after batch.
Every manufacturer pays attention to molecular precision. The molecular formula C8H8Cl2O2 pairs a stable aromatic ring with a flexible ethyl group. We maintain purity levels higher than 98% through careful reaction steps and consistent analytical checks. Our processing line doesn’t just echo what others produce; it’s tailored to remove unwanted byproducts efficiently, focusing on batch reproducibility and transparency about any trace components.
Producing 2-(2,4-Dichlorophenoxy)ethanol often starts on the aromatic chemistry bench. Halogenation and etherification need tight temperature ranges and solid catalyst workup. Workers deal with chlorinated intermediates and oxygenated solvents where safety isn’t just a procedure—it’s a way of life. Investing in condenser-coupled reactors and real-time impurity monitoring keeps us ahead of outbreaks of side reactions and yield drops. Our plant leans on pressure-rated glassware and specialty alloy vessels to keep corrosion in check. There’s constant air monitoring to keep emission figures in line with what’s safe for both people and equipment.
The details aren’t just chemical. Equipment maintenance and a trusted team of plant operators matter as much as upstream substrate selection. From the raw material procurement—high-grade dichlorophenol and anhydrous ethanol supplies—to reacting at the right scale, everything counts. You see it in our waste management stream, where spent acids and excess halides move safely downstream into neutralization tanks. It isn’t glamorous, but keeping a clean plant is what brings real trust to the production line.
If you ask why 2-(2,4-Dichlorophenoxy)ethanol stays in demand, the answer comes from long-term end users—those who care about both product performance and process reliability. This ethanol derivative enters chemical syntheses where a phenoxy group brings stability and the ethanol tail opens up functional possibilities. We don’t just market this molecule; we support users who build on it, whether for specialty intermediates, agricultural actives, or tailored resin systems.
Unlike other dichlorophenoxy analogues, the ethanol group offers a measured balance between reactivity and solubility. Researchers and process chemists who use the methyl, butyl, or isopropoxy variants talk about volatility or solubility challenges, but our ethanol chain sits in the sweet spot for handling and downstream reactivity. In water and common organic solvents, 2-(2,4-Dichlorophenoxy)ethanol dissolves smoothly, making it fit for integration into both aqueous and organic systems. That often means one less process tweak to worry about on the customer’s end.
Longevity in the chemical market comes from listening to plant engineers and lab technicians. We keep hearing from textile chemists who leverage this compound for its blending characteristics in polymer emulsions. There’s feedback from crop science technicians harnessing its stability for pre-emergent herbicide work. Our process plant has grown alongside these fields, upgrading distillation and purification steps not once, but every time users found impurities in their application stream. We bring the analytical results back into our SOPs, updating process spreadsheets and operator training so future runs avoid repeat issues.
We’ve learned that quality is more than a number on a certificate. Batch-to-batch reproducibility affects blending in multi-kiloliter reactors as much as benchtop validation in QC labs. A subpar intermediate ripples downstream; we’ve witnessed how a single out-of-spec component halts production lines or cascades into quality complaints at the end-user site. Each time that’s happened, we didn’t just troubleshoot the job—we rebuilt our documentation and cross-checked future lots. Those real conversations with customers turn into real improvements at every tank and every reactor in our plant.
No chemical leaves our gates without a close look at safety data. Chlorinated aromatics demand respect in every step, from reaction to packaging. Workers suit up in sleeves and gloves; we test for vapor leaks at every valve and transfer point. Storage tanks hold this compound in corrosion-resistant containment, with labeling checked and double-checked by experienced crews. Our internal shipments carry digital manifests so every batch gets traced, not just for compliance, but for readiness for audit and recall situations.
We’ve seen the damage that poor stewardship can do. Accidents or improper tank cleaning not only threaten immediate health, they stain a reputation earned over years. So we pull in outside audits, train regularly on safe handling, and run air-scrubbing systems in production bays. Regulatory changes in emissions levels or permissible exposure limits aren’t hurdles; they’re benchmarks. Ahead of requirements, we’ve upgraded containment and vapor abatement to make sure no worker or visitor faces unnecessary exposure. These costs never show up on the product invoice, but they form the backbone of any responsible operation.
End-users don’t just care about theoretical properties—they want consistency, prompt delivery, and the chance to keep production lines moving on their own terms. Over years, we’ve learned that hassle-free blending is possible because we prioritize purity and particle size from the outset. Bulk buyers for advanced materials, intermediate syntheses, and custom research labs come back because they don’t have to adjust for haze, precipitates, or off-smells that can ruin entire production runs.
Across fine chemicals, 2-(2,4-Dichlorophenoxy)ethanol brings reactivity while resisting spontaneous degradation. It stores well, moves through liquid transfer in closed pipes, and does not foul up tanks with residues that take hours to remove. This kind of reliability allows innovators to test new routes, launch downstream formulations, or scale up without sudden shutdowns. Every drum, intermediate tank, or carboy sent out reflects a hands-on mindset where questions get answers, and technical challenges prompt joint problem-solving. We stay in constant touch with repeat users, fielding technical queries about formulation tweaks and making changes based on documented needs, not on assumptions.
Every decision-maker faces a line-up—there are plenty of ether derivatives and chloroaromatic compounds on offer. Some share a similar backbone, differing in side chain or halogen placement. Direct competitors include 2-(2,4-dichlorophenoxy)acetic acid, often used in agriculture for weed control. In practice, the ethanol variant combines the stability needed in complex syntheses with a mix of water and solvent compatibility. Its profile in downstream reactivity lets it blend quickly, avoiding the phase separation or emulsion instability that sometimes crops up with longer-alkyl or carboxylic substitutes.
From our manufacturing data, yield stability stays higher over months of production compared to related compounds that need extra purification steps. Customers who tried switching to bulk-market alternatives often report more filtration steps, unexpected odor differences, or clogging in fine-tipped dosing equipment. The ethanol group’s shorter chain doesn’t just affect solubility—it supports better shelf life in standard warehouse conditions. Each of these technical differences builds a real case for specific use; these are results seen on the floor, not just on the datasheet.
We use high-quality steel or HDPE drums to prevent leaks and contamination. Filling lines get checked every shift, and our packaging teams keep sample archives from every large batch. Our logistics crew works closely with carriers who have handled chemicals before; loading, tie-down, and shipping documentation run like clockwork. Labels follow global regulations so that customs and warehouse receivers know what’s inside and how to treat it. Each outgoing shipment tracks back to quality control releases, and every lot number links to retention samples stored under climate control. Warehouses keep this material in ventilated bays, away from strong oxidizers and ignition sources, and separated from food-grade ingredients or open flame.
Byproducts and spent solvents move to recovery units, not the drain. Our effluent runs through pH neutralization and scrubber stages, followed by independent spot checks from accredited labs. Local environmental regulations set tough rules for discharge, and we support them through measurement, record-keeping, and investment in plant improvements. We have dealt with the fallout of poorly managed waste in the past—remediation takes years and undermines trust. Lessons learned have fed into more automated controls, better training, and a culture that pushes for innovation in waste reduction, not just compliance.
Part of what sets this product apart lies in humble transparency—not pretending all processes are perfect, but sharing where improvements come from. Lab teams and line operators run suggestion cycles every quarter; some of the best new filtration and drying steps didn’t come from outside consultants but from those who run the equipment daily. End users sometimes reach out with challenges not seen in our own labs—solubility limits in complex media, or odor drift in open systems. These stories feed back into adjustments. Sometimes it’s a change in crystallization temperature, other times, it's a review of drying procedures. Each improvement builds from direct communication supported by factual lab data, not marketing claims.
We actively build collaborations with users developing alternative applications, from specialty polymers to controlled-release actives. Our focus remains steady—keep purity up, maintain delivery schedules, and respond rapidly to questions and concerns as new uses evolve. This willingness to adapt keeps us ahead of commodity producers who only chase volume.
Our customers run everything from small pilot plants to round-the-clock industrial sites. They demand not just timely shipments, but specific particle size, color, odor, and batch documentation on every delivery. Packaging counts as much as product inside: liner quality in steel drums, secure closures, and clear hazard labelling. API manufacturers need tight impurity profiles, while agricultural users ask for robust shelf life and safe transport. We’ve faced tough feedback when missed batches held up a production run; our response always involves root-cause investigation and direct customer updates, never canned replies. Reliability builds through action, not slogans.
Every employee receives ongoing safety, process, and quality training. Supervisors track cross-training and keep logs—not as box-ticking exercises, but to raise awareness of what works or what needs change. Plant meetings draw on hands-on experiences from veteran operators as much as from written SOPs. No one gets left out of safety discussions: forklift drivers, line techs, and chemists all take responsibility for spotting anomalies and logging near-miss incidents. Plant culture moves fast, but not at the cost of safety or careful recordkeeping. Hazard awareness isn’t a poster on the wall; it’s lived out shift after shift.
On the customer front, we communicate directly, avoiding jargon or vague assurances. Every claim gets technical support—from raw material traceability to batch release documents. Customers calling in with technical issues get connected quickly to someone on our technical or production team, not shuffled between departments. That clarity and responsiveness form the basis for ongoing projects. Each contact, whether by email or phone, serves as another checkpoint to improve—not just to push product, but to learn how the material behaves under new conditions and in diverse applications.
2-(2,4-Dichlorophenoxy)ethanol reflects what happens when precise chemistry meets genuine end-user engagement. Decades of practical feedback and ongoing investment shape every batch that leaves our site. We track details from raw input to packed drum, always with the end application in mind. For us, this is not just another reagent on a shelf—it’s the result of careful production, honest communication, and learning from every application where it’s put to use. Whether supporting established syntheses or fueling new developments, our approach stays hands-on, grounded in facts, and open to continuous improvement. That’s the standard we set and the challenge we meet every day on the line.