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(Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate

    • Product Name (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate
    • Alias Quizalofop-P-Ethyl
    • Einecs 429-150-4
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    524425

    Iupac Name (RS)-2-[4-(5-trifluoromethyl-2-pyridyloxy)phenoxy]butyl propionate
    Molecular Formula C19H18F3NO4
    Molecular Weight 381.35 g/mol
    Cas Number 105512-06-9
    Appearance Colorless to pale yellow liquid
    Boiling Point Decomposes before boiling
    Solubility Slightly soluble in water; soluble in organic solvents
    Density Approximately 1.28 g/cm³
    Logp 4.93
    Storage Conditions Store in a cool, dry, well-ventilated area away from incompatible substances

    As an accredited (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing Amber glass bottle, sealed with a screw cap, labeled clearly; contains 25 grams of (Rs)-2-[4-(5-Trifluoromethyl-2-pyridyloxy)phenoxy]butyl propionate.
    Shipping This chemical, (Rs)-2-[4-(5-Trifluoromethyl-2-pyridyloxy)phenoxy]butyl propionate, is shipped in a sealed, chemical-resistant container. It is protected from moisture, heat, and direct sunlight, and complies with hazardous material transportation regulations. Proper labeling and documentation, including safety data, accompany the shipment to ensure safe handling and regulatory compliance during transit.
    Storage Store (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]butyl propionate in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong acids, bases, and oxidizing agents. Protect from light and moisture. Follow all relevant safety protocols and local regulations for chemical storage. Ensure proper labeling and restrict access to authorized personnel only.
    Application of (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate

    Applications of (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate in Industrial Manufacturing

    As the direct manufacturer, we supply (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate to downstream enterprises who require narrow specification and consistent purity for integration into advanced industrial synthesis. Below we detail prominent real-world application scenarios in the agrochemical, herbicide formulation, specialty crop protection, and custom pesticide compounding sectors, structured strictly according to operational practice and technical compliance.

    1. Selective Herbicide Active Ingredient for Post-Emergence Crop Protection

    This molecule functions as a core high-performance herbicidal active, deployed in post-emergence grass and broadleaf weed control products used by major agricultural producers. Downstream companies formulate selective herbicides targeting cereal and oilseed crop systems, aiming for targeted toxicity and minimal phytotoxicity to non-target species such as wheat and barley. Manufacturers standardize its incorporation for season-long weed suppression while adhering to evolving regulatory residue requirements and precise field application guidelines.

    Industry compliance standards

    • EU Regulation (EC) No 1107/2009 (Plant Protection Products Authorization)
    • FAO/WHO Maximum Residue Limits (MRLs) for cereals and vegetables
    • China GB 2763—National Food Safety Standard for MRL of Pesticides
    • ISO 9001:2015 certified quality and batch traceability processes

    Typical usage ratio

    • Actives content in formulated herbicidal concentrate: 5-15% w/w depending on crop and regional regulation
    • Adjustment based on weed spectrum and resistance profile indicated during field trials and by customer agronomists

    Downstream process integration

    • Blending into oil-based EC (emulsifiable concentrate) and SC (suspension concentrate) formulations post-pure compound synthesis
    • Integration with proprietary safener or adjuvant matrices using inline mixing under controlled temperature and inert atmosphere
    • Final emulsification and micro-milling prior to quality packaging

    Final product types

    • Selective grass weed herbicides for wheat, barley, and rice planting
    • Post-emergence broadleaf weed control products
    • Co-formulated multi-mode herbicidal concentrates
    • Ready-to-use field sprays distributed through agrochemical channels

    2. Component in Agrochemical Mixtures for Resistance Management

    Formulators deploy this compound as a strategic active within rotation or mixture programs to delay weed resistance development in high-intensity production zones. Downstream blenders demand consistent crystallinity and particle size distribution so that the ingredient disperses evenly with other synthetic moieties, stabilizers, and inert carriers. Technical departments scrutinize its compatibility with nonionic surfactants and complex microemulsion systems tailored for foliar application, while strictly documenting material flows for compliance audits.

    Industry compliance standards

    • OECD Good Laboratory Practice (GLP) for toxicology and eco-toxicological dossiers
    • EPA 40 CFR Part 180 (US Environmental Protection Agency tolerance standards)
    • Japan Agricultural Chemicals Regulation Law
    • SACHER Chinese Ministry of Agriculture pesticide registration

    Typical usage ratio

    • 3-8% w/w in tank-mix or pre-mix formulations, routinely validated for cross-resistance protocols
    • Ratio adjusted relative to partner active ingredients and local weed population genetic analysis

    Downstream process integration

    • Wet granulation or micronization with synergistic actives and bulking agents
    • Solubilization with cost-optimized solvent blends for co-formulation in spray programs
    • Particle size control via fluidized bed drying and subsequent granule coating

    Final product types

    • Multi-active herbicidal concentrates for rotational spray schemes
    • Pre-packaged crop protection combination packs
    • Stabilized micro-emulsions for broad-acre deployment
    • Granulated “boutique blends” for contract service providers

    3. Advanced Intermediate for Customized Crop-Specific Herbicidal Solutions

    Chemical processing facilities utilize this compound as a prolific intermediate when developing proprietary herbicide products for specialty crops including horticultural vegetables and non-cereal cash crops. Custom recipe development requires batch-controlled material input and high analytical consistency, supporting precise titration during multi-step synthetic routes. R&D teams structure these intermediates for regionally adapted weed control solutions, where each lot’s physico-chemical profile must comply with both client and jurisdictional parameters.

    Industry compliance standards

    • REACH Annex IX registration for downstream derivative uses
    • ISO/IEC 17025:2017 certified in-house/third-party analytical validation
    • Brazilian ANVISA pesticide product notification
    • US FIFRA Section 3 formulation registration

    Typical usage ratio

    • Intermediate content typically 10-18% m/m in pre-formulation blending
    • Fine-tuned based on target weed spectrum, local crop tolerances, and pilot plot feedback

    Downstream process integration

    • Batch addition during multi-step synthesis reactors, sequenced by flow-chemistry control software
    • In-process sampling for LCMS-based identity and purity endpoint confirmation
    • Subsequent transfer to controlled-atmosphere storage for staged final assembly or contract blending

    Final product types

    • Herbicide solutions for seed dressing applications targeted at vegetable crops
    • Custom-formulated foliar sprays for vineyard and orchard weed management
    • Specialty low-residue products for high-value export fruits
    • Herbicidal base compounds for further modification by regional licensees

    4. Ingredient in Patented Low-Volatility Herbicide Formulations

    Producers incorporate this substance to engineer patented low-volatility herbicidal products, crucial for use near sensitive ecological zones or adjacent to residential areas. Downstream manufacturers conduct vapor pressure analysis and third-party drift studies to validate compliance, integrating the active within advanced surfactant-polymer systems that suppress volatilization during broad-acre spraying. Stringent traceability, controlled milling, and filtration are essential for meeting registration requirements related to off-target movement and environmental impact.

    Industry compliance standards

    • US EPA Volatility Mitigation Guidance (PR Notice 2017-1)
    • European Environmental Fate and Exposure Risk Assessment (EFSA Guidance)
    • ISO 14001:2015 Environmental Management certification for manufacturing
    • FIFRA Reduced-Risk Pesticide Initiatives

    Typical usage ratio

    • Final dispersions typically contain 6-12% of the active ingredient by mass, depending on targeted vapor pressure limits
    • Ratio and microencapsulation levels adjusted based on regional weather pattern modeling

    Downstream process integration

    • In-line microencapsulation using polymer shell technologies to reduce evaporation
    • Pulse-laser particle sizing for strict upper limit on droplet size
    • Automated filling into sealed, tamper-evident application units for traceability

    Final product types

    • Drift-reduction herbicide emulsions for no-till field systems
    • Low-odor, residential buffer zone spray products
    • Specialized non-volatile actives for urban landscape care
    • Pre-mixed granulated herbicides with documented vapor retardant properties
    Free Quote

    Competitive (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate prices that fit your budget—flexible terms and customized quotes for every order.

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    Certification & Compliance
    More Introduction

    Introducing (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate: Practical Insights from the Manufacturer

    The Foundation: Straight From Our Labs

    Experience guides every step in our journey producing (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate. Decades working with phenoxy derivatives provided us with a clear understanding of what researchers and formulators demand: uncompromising consistency, solid traceability for every lot, and precise chemical integrity. Long hours in our pilot plants taught us how humidity, storage, and even subtle variations during synthesis can affect the finished product's purity and reliability.

    We never rushed the scale-up for this compound. Our chemists observed distinct changes in crystalline behavior as batch size increased, making subtle process refinements to lock down uniform quality. Every kilogram passes through a combination of HPLC, NMR, and GC testing platforms. These are not just tick-boxes for us. Our team of analytical chemists actively looks for unexpected byproducts, even those below regulatory thresholds.

    Model, Specifics, and What Sets It Apart

    We manufacture (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate in both standard and custom configurations, with optical rotation, moisture content, and batch purity above 98%. Many on the team recall years past, working with older phenoxybutyl analogs that produced inconsistent reaction yields for downstream applications. Even subtle impurities can wreck a formulation or cause revalidation headaches for R&D labs. Our product avoids these legacy issues with rigorous in-process controls long before final quality checks.

    Our proprietary synthesis uses a precisely controlled temperature profile and customized phase separations that push the propionate yield higher, reducing unreacted starting material. This approach ensures you get a clean product ready for formulating. Formulators appreciate a pourable, low-volatility liquid; we've dialed in operational parameters to provide exactly that. Experience warned us against slight polymerization side reactions, which we learned to prevent through atmospheric control and solvent cleanup.

    How (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate Gets Used in the Real World

    Speaking candidly, most of our clients order this compound for specialty agrochemical and advanced material R&D. They rely on its stable trifluoromethyl-pyridyl structure for robust pest resistance or as a precursor in liquid crystal synthesis. Our field partners share case studies from their own pilot greenhouses: insecticidal formulations using our product show reduced volatility loss, especially in humid climates. Real feedback helps us refine rinse protocols and adjust solvent traces to under 0.2%—the small change that lets their end formulations behave consistently during field trials.

    In specialty coatings, a few customers use our product to hold reactive monomers in solution without premature curing. One story comes to mind: a coatings group spent months struggling with random haze formation on test panels. Collaboration traced the culprit to batch-to-batch inconsistency in a competitive pyridyloxy product. They switched over to our line, which solved the haze and saved them from a costly line shutdown. Years manufacturing these niche chemicals taught us never to undervalue stability and precise specification adherence.

    Comparing to Other Phenoxybutyl Esters and Pyridyloxy Derivatives

    Plenty of suppliers offer close analogs—2-Phenoxyethyl esters or simple alkyl pyridyloxy compounds. Our experience with generic imports taught some hard lessons; these products often show higher water content, broader melting ranges, and variable crystal morphologies. During bench-scale synthesis, these inconsistencies can derail an entire project timeline. We design our process to remain stable regardless of ambient humidity or temperature, passing rigorous low-temperature storage and accelerated aging tests.

    Unlike some alternative manufacturers, we keep formulation chemists in the feedback loop. Their insights brought us to double-filtration stages and tighter endpoint monitoring, flattening out problem batches that would have slipped through legacy processes. This extra effort pays off for anyone running high-throughput analytical screens or demanding an exact spectral match for regulatory submission.

    As a manufacturer, we see the real-world impact when a product holds to specification, and we hear the fallout when it doesn’t. Without shortcuts during manufacture, we avoid the subtle batch drift that often creeps up on traders and middlemen who lack in-house analytical support. Years of post-sale support for technical teams shaped our perspective: a compound is only as good as its consistency, and claims mean little without demonstrable results.

    Supporting Researchers and Scaled Commercial Projects

    Many contract R&D labs and material science groups come directly to us for support, not just product. They send us feedback—sometimes not just about our chemical, but their frustrations with inconsistent supply and non-responsive technical advice from other sources. Our technical specialists know the product inside out and communicate manufacturing changes or supply chain adjustments in real time, not after the fact.

    For their pilot projects, consistency is paramount. A client in the advanced polymer industry reported downstream curing failures with off-brand pyridyloxy derivatives. After switching to our high-purity grade, they achieved the expected crosslink density and mechanical properties within their specification window. These outcomes do not happen by chance. Every batch draws on hard-won experience from our operators—those who learned, through trial and error, precisely how oven dwell times and filtration rates influence outcome. We maintain trace records and retain samples, forming a line of defense invisible to the end user but crucial for supporting root-cause analysis and process scale-up.

    Stepping Up Purity: Why It Matters in Practice

    The most seasoned chemists in our facility obsess over parameters—water content, chiral purity, and presence of trace stabilizers. They remember working with lower spec alternatives that clogged instrumentation and distorted analytical readouts. It’s easy to underestimate the impact of a few tenths of a percent in impurity, until you calibrate hundreds of microplates only to discover batch-dependent drift.

    Our plant maintains segregated lines and validated cleaning steps to avoid cross contamination, especially crucial since many clients evaluate not just chemical purity but presence of specific ions or residual solvents. One of our customers in the electronics materials sector alerted us to a trace sodium contamination issue—our cross-functional troubleshooting led to changes in glassware and solvent sourcing. Troubleshooting like this comes only with years handling specialty fine chemicals and with a direct communication channel between chemist, plant operator, and client.

    Scaling Up Responsibly

    Unlike distributers or brokers juggling supply from many unknown sources, our process leaves nothing to chance. We buy our starting materials in bulk from audited partners, test each incoming lot, and control every step within our own ISO-certified site. Investing in traceable process controls means our product yields the same correct result, no matter the project size.

    Customers developing next-generation agricultural treatments using our compound appreciate the stability and proven reactivity. Their field teams reported lower run-off and more predictable biological activity—likely a combination of our tight batch-to-batch purity and controlled moisture profile. That real-world outcome motivates every operator we have, from night shift maintenance to our QC analysts.

    Listening and Learning: How User Feedback Drives Manufacturing Choices

    User experience matters as much as any analytical report. We set up formal channels to gather input from end users, not just procurement teams. Several product improvements saw the light of day only because a customer chemist shared a repeat pain point: older esters crystallized during winter shipping, causing delays. We responded by modifying our solvent system to prevent unwanted solidification during transit, reducing customer downtime.

    Direct conversations with formulation chemists highlighted preferences for lower odor profiles. In response, we further refined our distillation process and upgraded activated carbon beds, resulting in a nearly odorless end material. Changes like these do not happen in a vacuum. Having the entire team invested—from R&D chemist to line manager—ensures quick pivoting when important feedback comes in.

    Difference Defined by Commitment, Not Claims

    Anyone can print a certificate of analysis. It takes technical understanding, real-world transparency, and dedicated operations to deliver (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate that meets functional expectations at every use case. Unlike some broad line chemical suppliers, we insist on narrowly defined, fully traceable product lots. We do not combine off-spec or reprocessed batches, and all product that leaves our site can be traced directly back to synthesis, with full analytical and process history available for audit.

    We stake our reputation on delivering material that performs as expected, every time. Longstanding relationships with formulation labs, agrochemical innovators, and advanced material R&D groups grew out of this reliability. Not every batch runs perfectly—when something drifts outside specification, we halt production and identify root causes before releasing another container.

    The Path Forward: Investing in Continuous Improvement

    Customers expect more than just chemical—regulatory compliance, environmental impact, and supply assurance now factor into every purchase. Over the past decade, we invested steadily in greener, less waste-intensive process controls. We reduced the volume of chlorinated solvents in our workflow, transitioned to closed-loop systems for reaction wash water, and slashed our on-site chemical waste generation.

    We’re fully aware that the market does not stand still. As demand for advanced materials grows, process validation shifts to include new analytical techniques and trace contaminant screening. Our team adapts, upgrading instrumentation, expanding internal standards, and adjusting QC parameters based on evolving regulatory guidance. These practical, on-the-ground investments are a key reason for the performance profile our product delivers.

    Final Thoughts from the Manufacturer’s Bench

    Behind every order of (Rs)-2-[4-(5-Trifluoromethyl-2-Pyridyloxy)Phenoxy]Butyl Propionate stand years of practical, hands-on chemical manufacturing experience. We do not treat feedback as a formality—it shapes how we select raw materials, adjust reactor protocols, and design our cleaning cycles. Every customer, whether developing new agricultural actives, crafting advanced liquid crystals, or scaling pilot projects, brings a set of requirements that only purpose-driven manufacturing can satisfy.

    Our perspective remains grounded: chemicals are valuable only when they perform as promised in the hands of the scientists and engineers who rely on them. Batch after batch, we draw on our own trials, plant floor lessons, and direct customer conversations to sharpen process controls, adjust parameters, and deliver quality that supports innovation at every scale.

    If you work in a field demanding consistent, traceable, and high-purity inputs, our team stands ready to support every step—bringing not sales rhetoric, but years of technical knowledge and real-world evidence behind each kilogram produced.