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HS Code |
137996 |
| Name | 3-(1,3-Benzodioxol-5-yl)-2-cyanoacrylic acid |
| Molecular Formula | C11H7NO4 |
| Molecular Weight | 217.18 g/mol |
| Appearance | White to off-white powder |
| Cas Number | 112306-08-4 |
| Melting Point | 205-210 °C |
| Solubility | Slightly soluble in water, soluble in DMSO and methanol |
| Purity | Typically >98% |
| Boiling Point | Decomposes before boiling |
| Inchi | InChI=1S/C11H7NO4/c13-11(12)6-8-1-2-9-10(3-8)16-7-15-9/h1-3,6H,(H,13,14) |
As an accredited 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging is a sealed amber glass bottle containing 5 grams of 3-(1,3-Benzodioxol-5-yl)-2-cyanoacrylic acid, labeled with safety information. |
| Shipping | **Shipping Description:** 3-(1,3-Benzodioxol-5-yl)-2-cyanoacrylic acid is shipped in sealed, chemical-resistant containers to prevent contamination and moisture exposure. The packaging is clearly labeled according to regulatory guidelines. Transport follows standard protocols for non-hazardous organic compounds, with documentation included. Store and ship at ambient temperature, away from direct sunlight and incompatible substances. |
| Storage | Store **3-(1,3-Benzodioxol-5-yl)-2-cyanoacrylic acid** in a cool, dry, and well-ventilated area, protected from light and moisture. Keep the container tightly closed and clearly labeled. Avoid exposure to heat, oxidizers, and incompatible substances. Use only in a chemical fume hood, and ensure proper personal protective equipment is worn during handling. Store away from food and incompatible chemicals. |
Applications of 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid in Industrial ManufacturingAs an experienced manufacturer of 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid, we supply this specialty intermediate for applications in advanced chemical synthesis across several tightly defined industrial fields. The material demonstrates consistent reactivity and selectivity, supporting innovation and scale-up in high-value downstream production. Below are the principal industrial use-cases where our clients integrate this compound into their production lines. 1. Active Pharmaceutical Ingredient (API) Synthesis: Selective Intermediate for Benzodioxole-based TherapeuticsManufacturers of new chemical entities and generic pharmaceuticals draw on this compound as a key building block during construction of benzodioxole-containing cores for small molecule APIs, particularly within cardiovascular and central nervous system therapy classes. Chemists favor its functional group placement for step-economical coupling and subsequent functionalization, which streamlines intermediate transformations under controlled cGMP environments. Careful proportioning is engineered into each step, according to target molecule complexity and batch scale, helping users achieve consistency during process validation and commercial manufacturing. Industry compliance standards
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2. Specialty Organic Pigments: High-Performance Dye ManufactureProducers of specialty dyes leverage this compound as a critical intermediate in the preparation of extended conjugation molecules used for high-purity colorants, especially where chromophore stability and sharp spectral properties are required. It acts as both a condensation partner and a modulator of electronic properties in pigment backbones, contributing to the production of materials for advanced printing and high-end textile coloration, with batch records maintained for traceability under industry certification schemes. Industry compliance standards
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3. Photosensitizer Intermediate in Dye-Sensitized Solar Cell (DSSC) ManufactureMaterials engineers incorporate this compound at the heart of DSSC dye development programs. The rigid benzodioxole segment and electron-withdrawing cyanoacrylic acid group synergize to deliver increased absorption efficiency and improved anchoring of dye molecules onto titanium dioxide substrates. This function plays a direct role in enabling next-gen photovoltaic devices to achieve higher conversion rates, specifically when produced under ISO-compliant environmental tracking for renewable energy parts. Industry compliance standards
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4. Fine Chemical Synthesis: Intermediate for Functionalized Aromatic EstersContract manufacturers and custom synthesis labs utilize our 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid for precise incorporation into multi-functional aromatic esters destined for applications such as specialty plasticizers, performance additives, and fragrance ingredient precursors. The compound’s defined structural properties allow direct engagement in esterification and transesterification reactions, enabling the preparation of high-value, low-volume chemical specialties that require careful management of reaction profiles and impurity control in regulated markets. Industry compliance standards
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At our manufacturing facility, every batch of 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid tells a story. On the one hand, it’s a molecule with a rather technical name, yet in a chemist’s hands, this compound often marks a leap forward in reliable synthesis for active pharmaceutical ingredients, specialty intermediates, and organic electronic materials. We understand how important a dependable source is, especially as research and development cycles shrink and regulatory scrutiny grows. Our process keeps those priorities at the forefront.
This acid, recognized for the condensed ring structure borrowed from the benzodioxole core, draws attention for more than just its IUPAC name. Structurally, the cyano and acrylic groups fasten themselves to the aromatic ring, creating a functional bridge well suited for integration into larger, more complex molecules. This unique combination allows researchers to avoid the steric and electronic pitfalls that show up with related acrylic compounds. Over the years, our teams noticed that such subtle molecular tweaks often lead to a noticeable difference in downstream performance, whether in adjusting light absorption for dyes or assessing reactivity in fine chemical syntheses.
During synthesis, our staff rely on careful, hands-on monitoring at each stage. We don’t just rely on instrumental readouts; we trust the insight built up from crafting thousands of batches. Standard practice always means checking for purity by HPLC and confirming identity by NMR, but it’s the eye and experience of our chemists that resolve questions equipment cannot answer. Our product consistently delivers purity upwards of 98%. That has made a difference for clients whose work demands very narrow impurity profiles—especially those developing APIs where regulatory filings hinge upon crystal-clear analytical data.
Beyond simple purity, our team tracks moisture and residual solvent content. Cyanoacrylic acids show a tendency to hold on to certain solvents or water through hydrogen bonding. Our drying and packing practices remain geared toward minimizing such remnants, providing a crystalline powder that stores well and handles reliably. The physical consistency—fine, free-flowing, low-lump—comes through deliberate drying times and tightly controlled packaging atmospheres. Instead of leaving such matters to automated systems alone, our operators intervene routinely, based on sensory checks: subtle differences in texture, weight, even scent often signal when a batch meets the mark or requires more attention.
In direct conversation with customers, we’ve seen the most demand for 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid in the active pharmaceutical ingredient space. Medicinal chemists often seek this compound as an intermediate for synthesizing complex bioactive molecules. Its function goes beyond static chemistry: the aromatic core, with the benzodioxole ring, lends metabolic stability, while the acrylic acid segment offers room for linking or further transformations. Drug development teams, working late into the night, have told us how a subtle change in a starting material’s impurity profile throws off an entire project deadline. So for us, every shipment is a commitment to supporting their next breakthrough.
On the materials front, researchers leverage the conjugated backbone of the molecule when designing optoelectronic components and dye-sensitized solar cells. The cyano group helps anchor the dye onto semiconductor surfaces, and the aromatic system allows strong π-stacking. One university research group reported to us that by switching to our higher-purity acid, their device yield increased measurably, with fewer short circuits during cell fabrication. These real-world improvements start with changes invisible to the eye—catching a slight excess in residual moisture or avoiding a harsh recrystallization solvent that could trace into the final material.
We also see the acid’s understated importance as a tool for academic labs and production teams developing calibration standards or marginally scaled specialty reagents. Whether it’s for click reactions, the preparation of ester derivatives, or as a precursor for light-absorbing polymers, the molecule’s purity and storability matter in bench-scale experiments just as they do at volume. Our staff often field direct calls from lab managers working with complex analytical protocols, troubleshooting whether a tiny discrepancy in batch-to-batch color hints at a subtle impurity or is simply a non-issue.
Chemists have a toolbox of cyanoacrylates and aromatic acids available, so the question comes up regularly—what makes this one earn a permanent place on the shelf? Compared with methyl or ethyl cyanoacrylates, the benzodioxole ring backbone delivers additional stability during storage and resists unwanted side-reactions during synthesis. In oxidative or photochemical applications, the compound holds up where lighter aromatic analogues tend to degrade, and the residue left behind, if any, contains far fewer hazardous by-products.
On every production run, we compare our acid against simple phenyl cyanoacrylates and find notable differences in color stability upon light exposure. Downstream applications requiring strict photostability, such as certain organic solar cell dyes, benefit directly. Our product resists discoloration, helping clients avoid the time and cost of re-purifying intermediates. Clients in the pharmaceutical sector appreciate the molecule’s reluctance to cyclize or polymerize during long-term storage—problems common in less sterically hindered analogues. Our attention to these details, learned the hard way after handling many grades and structures, keeps our batches consistent.
Many in the market try to adapt bulk commodity versions of cyanoacetic acids and acrylic acids, but overlooked contaminants—halides, peroxides, amines—often lead to performance failures in sensitive organic reactions. Our manufacturing stream draws from semiconductors and life sciences, where such side-products can't go unnoticed. We designed the process so even these hard-to-spot intruders are chased out over multiple purification steps, leaving behind a cleaner, more predictable product. Further, our use of high-grade reagents, not just technical grade feedstocks, shrinks the risk of hidden contamination that can frustrate demanding applications.
Years of production have taught us the risks inherent in scaling aromatic intermediates. 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid brings certain pitfalls in handling and isolation. Process upsets often reveal themselves in crystal form, color, or flowability. We never treat these cues as background noise. Instead, our team investigates every deviation, carving out samples for additional analysis and dialogue with process engineers. In practice, it’s the accumulation of small interventions—a few extra hours of drying, a correction in solvent ratio, a revision of our filter inspection—that keeps standards consistent as volumes increase.
We don’t consider quality management a set-and-forget checklist process. Each drum shipped reflects live adjustments based on what works in the real world: atmospheric pressure swings, the quirks of incoming raw material lots, even seasonally variable humidity that presses into the warehouse. We reject the idea that a certificate of analysis alone guarantees success. Direct dialogue with users—from process chemists running tonnage batches to graduate students working on gram scale—shows us which issues refuse to show up on typical paperwork. Over time, our best product adjustments have grown from these conversations rather than theoretical guidelines.
The pressure on chemical suppliers to deliver fully compliant, transparent products only grows heavier year by year. Our experience in regulated markets means we've built our documentation system with an eye for what auditors, compliance officers, and analytical chemists want—but we also refuse to bury clients under ambiguous certificates. Instead, we open direct lines for analytical crosschecks, method development, and troubleshooting unusual peaks or by-products in client-side analyses. Our approach keeps the relationship collaborative, not transactional.
3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid may, on paper, look similar to other cyanoacrylates. What sets it apart, and what keeps our clients returning, remains the predictability in validation data batch after batch. Impurities cropping up outside specified ICH or USP guidelines can derail validation runs, so we schedule routine requalification of standard methodologies. In the rare event we catch an out-of-spec result before a shipment, our facility pauses distribution and tackles root cause analysis without delay. Clients count on this mindset to save precious time and resources that would otherwise go into rework or extended stability pulls.
For every innovation that makes it to market, countless near-misses never leave the lab. The margin for error narrows as the complexity of molecules increases, and new technologies can stumble at overlooked steps. Over the past decade, we’ve faced challenges with large-scale crystallization, realizing that certain polymorphs can spring up unexpectedly and throw off later processing. Our technical team implemented seed crystal controls and varied thermal gradients to catch these rogue forms before they reach packaging, a process that started from operator feedback noting subtle but important shifts in moisture uptake and purification yield.
Handling and storage have driven another round of improvements. Not all cyanoacrylic acids store equally; some degrade quickly, making logistics a headache. Through a combination of inert atmosphere packaging and robust desiccant protocols, we ensure that the product our customers receive matches the properties seen on the day of manufacture. Time and thermal abuse during shipping can degrade sensitive compounds, and we built our warehousing around climate management as a result of mishaps encountered over years of global shipping. Feedback from customers exploring longer transit times in tropical regions shaped our current packing lines.
Innovation sometimes needs an outside push. A few years back, several key clients began reporting unusual chromatographic behavior using their in-house methods, which standard QC missed. Rather than standing by published values alone, we flew in a technical associate to co-develop new reference standards and simulate client-specific conditions. The partnership led to better detection limits and more robust validation methods. This collaborative problem-solving built trust and confidence.
We recognize that the world of specialty chemicals shifts rapidly. Sustainability came into sharper focus over the past few years. As a manufacturer, we analyze every step of our synthetic route with a goal of reducing waste and energy consumption. Process intensification, the move from batch to continuous manufacturing, and greener chemistry alternatives creep up in every planning meeting. 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid does not escape this scrutiny. Our ongoing trials into solvent swaps and by-product capture aim to improve both yield and environmental impact. No quick fixes emerged, but as pressure grows from both clients and regulators, our learning curve steepens.
The practical side of sustainability goes beyond mere rhetoric. We focus on reusing cleansing solvents, optimizing recycling loops for spent filter media and container liners, and pilot trialing biobased feedstocks where reactivity and cost allow. Sometimes the industry lacks precedents, so we set our own benchmarks based on small-scale run data and collaborative discussions with value chain partners. The best ideas rarely come from top-down dictates, but from shop floor debates and regular review sessions. Every improvement, even when incremental, widens our margins while lightening our environmental footprint.
Supplying 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid at production scale isn’t just an exercise in scaling up reactions. It’s about translating bench discoveries into kilogram and ton outputs that match original expectations. Not all process chemists can predict which complications might arise at vessel scale. Solubility shifts, thermal control, trace contamination, and unexpected exotherms have tripped up many scale-ups, turning straight-line projections into circuitous trouble-shooting missions. Our engineering team prefers direct dialogue with clients scaling up new syntheses, leveraging plant trials, and providing on-the-fly modification of parameters when unusual behavior surfaces.
We often field queries from startup labs or new drug developers struggling with early-stage transition. Sharing experience about which analytical hurdles tend to show up, or how to avoid caking, crystal bridging, or stuck filtrations, often makes a world of difference for customers unaccustomed to large-scale organic isolation. We don't hide knowledge behind paperwork. Instead, our support extends through custom packaging solutions—small lots, inert atmospheres, and validation samples to bridge the gap as teams refine internal processes.
From the vantage of a chemical manufacturer, 3-(1,3-Benzodioxol-5-Yl)-2-Cyanoacrylic Acid stands out by virtue of its reliability and utility across industries. Our focus remains on chemical integrity, real-world usability, and honest communication over the lifespan of each product batch. We view our compounds not as inert catalog entries, but as vital contributors to someone’s progress in the lab, on the plant floor, and in finished commercial products. The product’s performance and difference from other cyanoacrylic acids arise thanks to the details we monitor, control, and share openly with our partners. That longstanding commitment to practical, data-driven improvement ensures each vessel we fill supports stronger, steadier advances for the end user.