| HS Code | 621812 |
| Iupac Name | (E)-O,O-Dimethyl-O-[1-methyl-2-(1-phenylethoxycarbonyl)vinyl] phosphate |
| Molecular Formula | C14H19O6P |
| Molecular Weight | 314.27 g/mol |
| Cas Number | 87674-56-2 |
| Appearance | Colorless to pale yellow liquid |
| Solubility | Soluble in common organic solvents |
| Purity | Typically >98% |
| Storage Temperature | Store at 2-8°C |
| Synonyms | Phosphoric acid, (E)-(1-methyl-2-(1-phenylethoxycarbonyl)vinyl)dimethyl ester |
| Structural Formula | C14H19O6P |
| Smiles | CO[P@@](=O)(OC)OC(=C(C)C(=O)OCC1=CC=CC=C1) |
As an accredited (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 500 mg of (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)vinyl] phosphate, supplied in an amber glass vial with secure cap. |
| Shipping | The chemical `(E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate` should be shipped in tightly sealed containers, protected from moisture, heat, and light. It must comply with relevant hazardous materials guidelines, using appropriate labeling and documentation. Ensure secondary containment during transit and handle only by trained personnel using suitable personal protective equipment (PPE). |
| Storage | **Storage Description:** Store (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)vinyl] phosphate in a tightly sealed container, under an inert atmosphere (e.g., nitrogen or argon) to prevent hydrolysis or oxidation. Keep in a cool, dry place at 2–8°C, protected from light and incompatible substances such as bases and strong oxidizers. Avoid contact with moisture, heat, or direct sunlight. Handle following proper chemical safety protocols. |
Competitive (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate prices that fit your budget—flexible terms and customized quotes for every order.
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Day after day, advances in crop protection come down to the reliability and performance of active ingredients. Behind every product, real experience weighs heavier than generic claims. (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate draws a distinct line in what these ingredients can do, especially for those who look for stability and clear outcomes in synthesis work.
We have worked with this compound long enough to see where it achieves, and where it sets itself apart from older phosphate esters. Formulated in our own reactors and screened through repeated syntheses, the structure—marked by the signature dimethyl phosphate and phenylethoxycarbonyl group—responds to modern agricultural and industrial demands. The material sits comfortably at a purity that eases downstream formulation headaches, helping formulators and technical staff spend less time troubleshooting batch inconsistencies.
Each batch we produce undergoes a stepwise check for identity and purity with HPLC, verified against our own reference standard. Moisture content, residual solvent, and acidity don't just get checked for the sake of paperwork. If a parameter starts to edge out of our tolerated window, we address it during the run—not later. Customers who visit to audit our production lines often comment on the phenylethoxycarbonyl group’s distinct aroma, and we use this as a rough but reliable sign that we’ve nailed the separation. By keeping batch-to-batch variation in tight control, formulators and researchers avoid wasted hours that come with troubleshooting erratic input quality.
We avoid designing with unnecessary stabilizers or diluents; the material arrives as a light amber liquid, easy to weigh and disperse. During summer runs when heat can influence storage, our packing team switches to lined drums with tamper-proof seals. This isn’t a choice made for looks—product that arrives with discoloration or off-odors tells us a lesson straightaway, and we’d rather swap the container than manage downstream complaints.
The (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate molecule was never created simply to expand a catalog. Researchers wanted a solution for targeted insecticidal action, particularly where resistance management and minimal non-target toxicity matter. Over several seasons, our partners in agricultural R&D have blended this molecule into test formulations, watching for both efficacy and mobility in soils.
Typical use rates pivot on the crop and targeted pest, with agricultural scientists reporting best results when this material serves as the core active or as part of a synergistic combination. During greenhouse and open-field trials, consistency matters, not only in knockdown rates but in the confidence that comes from understanding degradability and residual presence in harvest analyses. The phenylethoxycarbonyl moiety lends a distinctive selectivity—field managers note this in their data logs, which helps support regulatory submissions.
Our plant’s history includes years of work with standard dimethyl phosphates and related organophosphate chemistries. The reason this specific compound finds favor comes down to a few points our production chemists encounter at the bench.
Compared with simpler O,O-dimethyl phosphate esters, the presence of the vinyl and phenylethoxycarbonyl substituent opens up both chemical reactivity and biological tuning. Synthesis brings its own challenges—side reactions and incomplete conversions can mar the desired (E)-isomer. We run high-temperature condensations under inert gas, compressing cycle times to lock in the targeted configuration. Handling the vinyl moiety means our staff are trained to avoid oxygen ingress and trace metals, which can cast quality off course instantly.
Unlike some older nerve agent analogs, our customers—especially those tasked with export registration—point out that this compound breaks down more rapidly in common soils and surface waters. We have backed claims in regulatory filings with our own hydrolysis and soil column tests. This is not only a selling point; it shields agricultural communities from legacy issues of leaching and accumulation associated with older generations of organophosphates.
The industry learns from each recall and complaint that drips down from mislabeling, contamination, or formulation instability. Manufacturing with accountability shapes every batch of (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate that leaves our tanks. QC teams pull random drums, split samples, and replicate blending tests—a routine built from hard-won experience rather than manuals.
On a trip to meet technical staff at one of our downstream partners, the discussion quickly circled back to dustiness of powder additives versus the ease-of-use of our liquid format. Many solvents leave residues or interfere in downstream processing, so transitioning toward a cleaner and more predictable liquid means fewer blocked nozzles and faster tank changes. This sort of observation doesn’t show in marketing, but plant operators bring it up time and again.
Chemical manufacturing today moves in step with toughening regulatory frameworks. We face audits not only from international customers, but also from domestic stakeholders checking material transport safety, worker exposure limits, and compliance with environmental controls. Every new compound, including (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate, goes through internal and external scrutiny.
Most concerns start with questions about persistence, breakdown products, and risk of accidental release. We run batch hydrolysis studies under different pH and temperature regimes; remaining breakdown products are mapped by LC-MS and compared with published acute toxicity data for fauna and flora. These datasets inform not just our MSDS sheets but underpin the product stewardship advice we pass to technical managers and compliance officers.
Recovery of process waste stands as a point of pride—solvent recovery rates, waste neutralization, and recycling of side streams are scrutinized every quarter at our plant. Employees have pointed out minor flaws in piping layouts or vent condensation traps that could magnify over time. Their input directly feeds into our ability to supply material with low environmental impact and minimal community concerns.
Clients who visit our production lines often ask about sourcing and batch controls. They want assurance that what leaves our tanks this month will act and perform the same three years down the road. That’s a standard we hold close. From early product development to commercial roll-out, batches are tracked and traced, with synthesis logs available going back years. We keep backup samples from every lot produced, useful in the rare case a technical issue surfaces downstream.
We don’t just rely on certificates and paperwork. Technical staff run product re-tests before shipment for long-term storage orders. Heat cycling, drum agitation, and long-haul shipping simulations uncover issues that might not arise in a controlled lab. Package seals, liner materials, and fill heights are all revisited after every major incident report or busy shipping season.
Running a modern chemical manufacturing line for organophosphates means living with both success and setbacks. Years ago, a summer batch of (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate showed unexpected discoloration—traced to a condensation side reaction exacerbated by moisture ingress in a raw material. By the next cycle, our team had reworked the feeder tank’s purging system and modified supplier validation steps. Since then, problematic barrels haven’t left our plant.
Similar focus falls on operator safety. While most organophosphate esters carry well-understood hazards, this compound’s physical form means less dust and easier spill containment. We review near-misses and actual incidents monthly, stepping up internal training where new handlers join the line. Each improvement carves away at risks, keeps insurance costs in check, and most importantly, protects people on- and off-site.
There have been setbacks—regulators adjusting threshold values at short notice, customers pivoting to alternative chemistries, and, during oil price surges, raw material costs spiking to budgets’ breaking points. Adjusting line throughputs, securing secondary supply lines, and negotiating with contract logistics providers form an ongoing part of our progress. Experience on the factory floor tells us that flexibility and forethought matter more than pristine documentation in overcoming these hurdles.
End-users and agricultural scientists rarely focus on the IUPAC names of ingredients in finished products. They pay attention to results—consistent control, low visible residue, and the ability to rotate actives for resistance management. Our technical service partners collect detailed feedback from the field: where application emerged from backpack sprayers, where run-off studies compared to standard alternatives, and what clean-up practices fit harvesting timelines.
The days of over-formulating with unrelated actives have passed, especially as regulatory focus intensifies on limits and carryover. By dialing in the production parameters for (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate, our team supports straightforward blending, fewer surprises during pilot runs, and compatibility with new plant adjuvants currently under development. Plant managers echo this value back through purchase patterns and follow-up queries—all tangible proof points that the detail work in our plant matters across the supply chain.
Making and supplying (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate isn’t just a technical achievement. It is about weighing each step—from specifying input streams through reactivity review—to meet regulations, customer targets, and internal standards. We take ongoing feedback from the field—those who treat hectares, those in charge of breakdown analyses, those tracking compliance shifts—and choose to invest in process improvements year by year.
Every compound we manufacture, including this one, ties us directly to the trust our partners place in us to avoid downtime and field failures. The dialogue doesn’t end with a delivered shipment. It carries forward through every question about blending, every technical dossier we support, and every training session for new users. Reliability means action, not aspiration. Our years of handling organophosphate synthesis feed directly into material that works in the plant and delivers off-site, season after season.
The world of agricultural and specialty chemicals tightens year by year. Rising expectations bring new challenges—stricter residue limits, shorter time frames to market, broader data required for stewardship. We partner with university and private labs to test and validate under fresh protocols. Data on degradability, non-target exposure, and residue mapping do more than fill regulatory binders—they inform our internal controls and future investments.
Plant changes occur not by chasing buzzwords, but by realignment with lessons learned from application emergencies and end-user demands. If a run of (E)-O,O-Dimethyl-O-[1-Methyl-2-(1-Phenylethoxycarbonyl)Vinyl] Phosphate builds up an off-note in storage, our teams drill down, pull archived samples, and open dialogues with both container suppliers and off-takers. New cycles of continuous improvement—lean manufacturing audits, material flow mapping, digital batch tracking—layer on top of our core synthesis operations.
Every metric we track, every process improvement we complete, and every customer conversation feeds back into the loop of making next season’s material better than the last. This level of commitment carves a place for our products, particularly complex phosphate esters, in strategies that demand both technological depth and applied knowledge. The end story remains the same: a compound built by actual manufacturing experience, used because it works, and trusted because we stand behind it—batch after batch.