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HS Code |
610706 |
| Product Name | 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene |
| Molecular Formula | C24H15N2 |
| Molecular Weight | 331.39 g/mol |
| Cas Number | 62292-20-4 |
| Appearance | Yellow Powder |
| Purity | ≥98% |
| Melting Point | 247-250°C |
| Solubility | Soluble in organic solvents |
| Structural Formula | C6H5-CH=CH-C6H4-C6H4-CH=CH-C6H4-CN |
| Synonyms | Bis(2-cyanostyryl)benzene |
| Storage Condition | Store in a cool, dry place |
| Application | Organic electronics, OLED materials |
As an accredited 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The chemical is packaged in a 10g amber glass bottle with a secure screw cap, labeled with product name and hazard information. |
| Shipping | 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene is shipped in tightly sealed containers, protected from light, moisture, and incompatible substances. Transport occurs under ambient temperature with clear hazard labeling, in compliance with local and international regulations. Appropriate documentation accompanies the shipment to ensure safe handling and traceability throughout delivery. |
| Storage | 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)benzene should be stored in a tightly sealed container, protected from light, moisture, and sources of ignition. Store in a cool, dry, well-ventilated area, preferably in a chemical storage cabinet suitable for organics. Ensure incompatible materials—such as strong oxidizers—are kept apart. Follow all local safety regulations and label the container clearly. |
Applications of 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene in Industrial Manufacturing1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene delivers high performance and molecular stability across several sectors driven by advanced organic electronic and photonic manufacturing. As the original producer, we supply this intermediate to exacting downstream users with process-driven expertise and technical quality controls. The following sectors represent its true, validated industrial integration, with each scenario addressing the practical application parameters and standards that our B2B customers expect. 1. Organic Light-Emitting Diodes (OLEDs) for Display PanelsIn the OLED industry, manufacturers rely on this material as a core emitter or sensitizing dopant within blue or green pixel layers. It enhances luminance and chromatic purity in next-generation flat panel displays, ensuring screen uniformity and minimized energy losses over extended operational lifetimes. Our clients integrate it through solution and vapor deposition techniques, optimizing molecular alignment and film density according to product class and performance target. Industry compliance standards
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2. Organic Photovoltaic (OPV) CellsManufacturers in the organic solar cell sector leverage this compound as a small-molecule electron acceptor or co-absorber, designed to improve light harvest breadth and boost charge-carrier mobility in bulk heterojunction devices. Its structural properties contribute to enhanced exciton diffusion length and phase separation control during active layer formulation, supporting next-generation photovoltaic module efficiency demands. Industry compliance standards
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3. Organic Field Effect Transistors (OFETs)This compound serves as a critical organic semiconductor in OFET manufacturing lines, offering high carrier mobility and molecular stability required for solution-processable transistor films. Producers of logic circuits and sensor arrays access well-characterized, high-purity batches for defect-free device fabrication with minimized off-current leakage, to suit logic drivers and analog signal platforms in smart surfaces and IoT devices. Industry compliance standards
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4. Organic Laser Gain MediaLeading photonics groups employ this material as a high-fluorescence organic gain medium for solid-state and distributed feedback (DFB) organic lasers. Its molecular structure provides narrowband emission with exceptional quantum yield, supporting the fabrication of tuneable sources for spectroscopy, bioanalysis, and advanced optical communication links. Controlled purity and isomer ratio contribute directly to coherent light output stability. Industry compliance standards
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5. Photonic Sensor and Imaging DevicesAdvanced optoelectronic sensor manufacturers utilize this compound for its strong two-photon absorption and high photostability in the fabrication of photodetectors and imaging converters. Integration within sensor pixels boosts responsivity and wavelength selectivity, enabling precise detection in security screening, scientific imaging, and non-contact biomedical analysis equipment, particularly where low-power sources and broad spectral capture are essential. Industry compliance standards
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Years on the formulation line have taught us that every molecule carries a story. 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene (abbreviated as CS2CB) offers a very distinctive chapter, one written for the advanced material challenges that define modern electronics, especially organic optoelectronics and emissive devices. The complexity of crafting this compound begins with the purity guaranteed at each synthetic stage—from the first condensation in our glass reactors to the final chromatographic polishing. Clarity and consistency show up not only in the resulting crystalline product but also in downstream devices, where performance hinges on these precise qualities.
What sets CS2CB apart lies not only in the triple aromatic backbone, designed for resilience and delocalized electronic conjugation, but especially in the twin cyanostyryl moieties. The nitrile (–CN) group sits at the para position of each styryl unit, locking in electron-withdrawing strength and raising the bar for charge mobility and photostability. As chemists and engineers who have worked through many iterations, we recognize the key role that high-purity CS2CB—as much as 99.7 percent by HPLC—plays in reproducibility and device lifetime. Typical batches appear as pale yellow crystals under proper recrystallization, with melting points tracked closely and IR signatures checked lot by lot.
Moisture content and trace metallic contamination must be nailed down well below parts-per-million levels, since even minor impurities often sabotage device performance, especially where thin film integrity and color purity come into play. Each run leaves our facility with a full suite of analytical data, covering NMR, elemental analysis, and UV-vis absorption spectrum. We keep chain-of-custody documentation on every drum and bottle, so development partners gain access to traceable quality metrics from the very drum being sampled to the final integration on a substrate.
Most CS2CB produced in-house finds purpose as a core building block in non-doped organic light-emitting diodes (OLEDs) and related electroluminescent devices. End users range from R&D labs in university cleanrooms to scaled-up manufacturers fabricating flexible displays or smart lighting solutions. In these settings, material selection is never trivial. Any deviation—structural, spectral, or electronic—may lead to erratic color rendering, reduced quantum efficiency, and rapid degradation. CS2CB stands out for its rigid backbone, delivering excellent photoconductivity and deep-blue emission properties, which display sharp spectral peaks, high color purity, and impressive external quantum efficiency under both laboratory and production conditions.
By emphasizing single-molecule tuning over polymer blending, users see far less spectral drift and superior color stability throughout a device’s operational life. We have witnessed academic teams achieve new records in blue OLED lifespans once they switched to CS2CB grown and refined in our facility. Commercial lines have also cut down on fabrication cycle failures thanks to batch-to-batch consistency that enables tighter control over device metrics.
There are many aromatic styryl derivatives on today’s chemical market, each vying for a place in light-emitting arrays and sensor modules. Over decades of hands-on synthesis and iterative testing, CS2CB keeps outperforming single-cyanostyryl and alkoxy-substituted analogues, especially when judged on thermal stability, photoluminescence quantum yields, and resistance to photobleaching. Where classic fluorophores like distyrylbenzene succumb to rapid oxidative fading, CS2CB holds its emission after rigorous accelerated ageing.
Some competitors’ aromatic donor-acceptor systems include stronger electron donors, such as triphenylamine or long alkoxy side chains. While these show good charge mobility, they often bring a sensitivity to thermal or atmospheric challenges, which frequently shows up as instability in multilayer devices. In contrast, the symmetrical substitution in CS2CB reduces energetic traps in thin films, which translates to consistent device performance during repeated cycling or long-term storage. The firm planarity also enables denser packing on evaporated films or spin-cast layers, boosting luminance output in prototype display cells.
Laboratory synthesis and industrial scale-up share a suite of daily frustrations: fluctuations in yield, loss during purification, and the ever-present challenge of scaling without introducing batch-to-batch drift. We address these problems right at the planning stages, where each synthetic run gets an individual route review, stress-testing against both feedstock variations and environmental changes. Pump, reactor, and distillation monitoring dominate our workflow, with real-time spectrometry guiding intervention. Whenever a deviation pops up in crystal habit or melting point, corrective steps follow immediately—never days or weeks later.
We have learned lessons from customer feedback every year. Device manufacturers tell us that even minute traces of chloride or siloxane residues can derail encapsulation or electrode adhesion for multilayered organic electronics. That message was enough for us to invest in specialized inert atmosphere purification and adapt every cleaning protocol in our lines. The download of actual yield, loss figures, and impurity maps is available for every batch; some partners demand it before each shipment leaves our site.
A surge in demand for optoelectronic intermediates like CS2CB has brought new pressure on resource stewardship and safe handling. Our technical team reviewed every solvent, catalyst, and reagent involved in the route from ground up due to regulatory updates and lab observations. Solvents are recycled, and by-product management includes not just containment but internal reuse and, where possible, feedstock recovery. Each new process change flows from the shop floor, not only from regulatory directives—years on the manufacturing floor have taught our team that the only way to stay ahead is to engineer for future compliance, not just today's rulebook.
Our team also keeps up close dialogues with industry partners on minimizing exposure to hazardous agents and sharp reductions in waste. Production lines operate closed systems for both acrylonitrile and styrene derivatives; emissions and liquid waste are caught, neutralized, and, where feasible, reprocessed. Environmental impact assessments are part of our routine, not a once-a-year paperwork exercise.
Real-world stories keep surfacing about device line failures caused by subtle impurities or variability in aromatic intermediates. Over the years we have heard about costly reworks triggered by a fraction of a percent drop in chromophore purity. We maintain a direct line between chemists in our production units and the engineers working on application devices. Routine conference calls and open data sharing reduce the guesswork. The uniformity in our processes comes from this ongoing partnership—the blend of laboratory rigor with shop floor thoroughness.
Developers save time and cut experimentation cycles by starting with predictable, clean batches. We supply data beyond standard CoAs, including chromatograms, full-spectrum data, and even photoluminescence lifetimes on sample films. Device performance correlates with feedstock excellence, no matter how skilled the downstream engineers. We keep the feedback loop open: every insight from an R&D chemist or manufacturing technician becomes the seed for operational improvements in-house.
Not every batch of 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene finds its way into headline-grabbing display technology. Some heads toward high-sensitivity photodetectors, others into research-scale organic photovoltaic modules. Our production team discusses the future with collaborators, supporting scale adjustments ranging from gram-scale (for library screening or academic projects) to full-kilogram runs for pilot lines and national labs. Customization of crystallization or solvent profile takes place on request.
A growing field sees CS2CB as a testbed for new emission tuning strategies. With its high structural rigidity and dual nitrile anchoring, it responds crisply to functionalization, either through further aromatic modification or metal-complex formation for sensing advancements. Academic partners often request specific isotopic labeling or minor side-chain tweaks, which our synthesis team supports when possible, using the same level of documentation and process control as bulk runs.
From incoming raw material qualification to final drum packaging, we keep a transparent manufacturing chain. Reports and photos accompany every lot. We regularly invite longtime collaborators for on-site audits and support benchmarking against other suppliers. The synthesis, purification, and QA teams meet each month to review any flagged lots or deviations, and corrective measures are logged, reviewed, and traced by batch, not by mere guesswork.
Trust forms the backbone of every chemical partnership. We recognize that site-level transparency does more for customer confidence than polished marketing slogans or generic certificates. Year on year, customers return because their process engineers know what to expect before a shipment leaves the dock.
Supply chain interruptions highlight the need for nimble, technically sound manufacturers. The global push for more efficient, sustainable electronics increases reliance on intermediates like CS2CB with rock-solid traceability and reliability. Our ability to support both established manufacturing lines and exploratory R&D runs helps researchers move smoothly from new molecular concepts to market-validated technologies. CS2CB’s unique electronic properties keep enabling breakthroughs in display uniformity, single-photon emission, and photodetector sensitivity.
The challenge of transition between R&D and mass production has always demanded more than large vessels and bulk reactions. Fine control over process parameters, rapid response to process excursions, and flexible packaging all call for operational experience and willingness to engage with end users directly. Our technical support team, made up of the same hands who oversee batch process and troubleshooting, stands ready to work through questions, exchange insights, and adapt protocols for novel applications.
Discussions with device designers, quality managers, and university researchers shape our approach to materials like CS2CB. The molecule’s blueprint—two firm cyanostyryl units linked to a central benzene—offers not just aesthetic symmetry but also practical benefits. The substantial π-conjugation accelerates charge transfer and offers a solid framework for further tuning. Gone are the days of simple trial-and-error substitutions; today’s landscape calls for rigorous molecular engineering and detailed empirical feedback.
A lot of users ignore the impact of substructure on crystal morphology in thin films. We deliberately grow and select for a specific polymorph, optimizing for surface smoothness and minimal pinhole formation, vital for layered OLED stacks or other functional coatings. End users notice the difference under AFM or cross-sectional SEM, with more homogeneous coverage and higher yields in processed panels.
Many of our internal improvements start with a single complaint or question from a site engineer. Whether it’s a spike in residual solvent, minor color variance, or changes in film-forming ability, these signals don’t get swept under the rug. Open books and direct samples flow back and forth until a solution sticks. Sometimes the answer calls for a tweak in reprecipitation temperature or a prolonged vacuum-drying cycle; other times, only a deep re-examination of the supply line for raw materials uncovers a fix. We invest not just in equipment, but in people empowered to spot issues or propose upgrades.
Contract partners occasionally ask for reference samples from previous years for head-to-head testing with fresh lots. Our stores maintain such archives under inert conditions, so any drift can be traced back and root-caused, rather than excused away. This commitment to continuity turns into better outcomes for researchers and production chemists.
Tight timelines, complex device architectures, and evolving spec requirements are daily realities. Our manufacturing team built an agile protocol system, so changes in purification or solvent grades—prompted by customer input or regulatory changes—are layered in with full documentation and backward compatibility. Advanced monitoring systems catch trace contamination, still the specter for high-purity aromatic intermediates. Where downstream partners face unique encapsulation or deposition challenges, we are ready to join the problem-solving, matching our formulation and QA teams to the device engineers.
Scaling up for emerging smart device applications or the next generation of low-power sensors may require accelerated process revalidation, new material packaging, or on-demand analytical support. We stay ready to adapt, expanding lines or shifting feedstock sources while keeping the same tight controls over product characteristics. Device success, by any measure, rests on a bedrock of stable and predictable material supply—a lesson taught over decades under both good and tough market conditions.
The difference between trading intermediates and true manufacture comes through in the details: chain-of-custody records, production logs, and willingness to invite direct audits. We integrate feedback loops from buyers and users, treating every sample and complaint as the seed for continuous improvement. Internal synthesis routes evolve with partnered input, so that both routine and one-off requirements from research and development shops find a fast and reliable answer. Our team navigates the crossroads between regulatory best practices and flexible production, making sure each product batch keeps up with new demands and higher-performance benchmarks set by industry and academia alike.
From the earliest small-batch syntheses to scaled-up shipments bound for cutting-edge devices, CS2CB represents not just a catalog entry, but a cornerstone for advanced optoelectronics. Partnering with chemists, device engineers, and research innovators, we work to provide a product that supports discoveries, powers industry, and builds trust batch by batch. Every success story from our partners testifies to the value of hands-on manufacturing care and a transparent, knowledge-driven relationship—foundations that continue to elevate 1-(2-Cyanostyryl)-4-(4-Cyanostyryl)Benzene as a preferred choice for those designing the next generation of high-efficiency organic electronic devices.