4-(3-Bromophenyl)-6-Phenyldibenzo[b,d]Furan
- CAS No.2088537-45-3
- GradeIndustrial / Pharmaceutical
- Availability● In Stock
High-purity OLED intermediate designed for advanced organic light-emitting diode synthesis. Available in bulk quantities with comprehensive quality documentation.
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Product Overview
We are proud to present our premium grade 4-(3-Bromophenyl)-6-Phenyldibenzo[b,d]Furan, a specialized chemical intermediate engineered for the high-tech organic electronics sector. This compound serves as a critical building block in the fabrication of next-generation Organic Light-Emitting Diodes (OLEDs). Our manufacturing process ensures exceptional purity levels, making it an ideal choice for researchers and industrial producers aiming for high efficiency and longevity in display and lighting applications.
As a leading global manufacturer, we understand the stringent requirements of the optoelectronic industry. Therefore, this product undergoes rigorous quality control measures at every stage of production. From raw material selection to final packaging, we maintain a sterile and controlled environment to prevent contamination. This commitment to excellence guarantees that every batch meets the specified assay requirements, providing consistency for your downstream synthesis processes.
Chemical Specifications
| Parameter | Specification |
|---|---|
| Chemical Name | 4-(3-Bromophenyl)-6-Phenyldibenzo[b,d]Furan |
| CAS Number | 2088537-45-3 |
| Molecular Formula | C24H15BrO |
| Molecular Weight | 399.28 g/mol |
| Purity (Assay) | ≥98.0% |
| Appearance | White to off-white powder |
Applications in OLED Technology
This dibenzofuran derivative is primarily utilized as a key intermediate in the synthesis of host materials and charge transport layers for OLED devices. The presence of the bromophenyl group allows for versatile cross-coupling reactions, such as Suzuki or Buchwald-Hartwig couplings, enabling chemists to construct complex molecular architectures with precision. These architectures are essential for optimizing the energy levels and charge mobility within the emissive layer of the device.
- Enhances thermal stability of the final OLED material.
- Improves morphological stability in thin film formations.
- Facilitates efficient energy transfer in phosphorescent systems.
- Compatible with various vacuum deposition and solution processing techniques.
By incorporating this intermediate into your material design, you can achieve superior performance metrics, including higher luminance efficiency and extended operational lifetimes. It is particularly suitable for developing blue and green emissive materials where stability is often a challenge.
Quality Assurance and Packaging
Quality is the cornerstone of our business. Each production batch is accompanied by a comprehensive Certificate of Analysis (COA), detailing test results from HPLC, NMR, and Mass Spectrometry. We ensure that impurities are kept to minimal levels to prevent quenching effects in the final OLED device. Our laboratory team is available to provide technical support and assist with custom synthesis requirements if your project demands specific modifications.
Regarding logistics, we offer flexible packaging solutions to suit various scales of operation. The standard packing is 25 kg per drum, secured with moisture-proof liners to maintain integrity during transit. However, we can accommodate custom packaging requests based on customer requirements. Storage recommendations include keeping the product in a cool, ventilated place away from direct sunlight and strong oxidizing agents. For global clients, we provide efficient shipping services with full documentation to ensure smooth customs clearance.
