|
HS Code |
958649 |
| CAS_Number | 3456-99-5 |
| Molecular_Formula | C11H16O |
| Molecular_Weight | 164.24 g/mol |
| Appearance | Colorless to pale yellow liquid |
| Boiling_Point | 246-248°C |
| Melting_Point | -40°C |
| Density | 0.92 g/cm³ |
| Solubility_in_Water | Insoluble |
| Refractive_Index | 1.494 |
| Flash_Point | 102°C |
| Storage_Temperature | Room temperature |
| Purity | ≥98% |
| Odor | Mild aromatic |
| Vapor_Pressure | 0.12 mmHg at 25°C |
| Synonyms | 5-Phenyl-1-pentanol |
As an accredited 35-Hydroxypentyl Benzene) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 35-Hydroxypentyl Benzene is securely sealed in a 500g amber glass bottle, featuring a tamper-evident cap and clear labeling. |
| Shipping | **Shipping Description for 3(5)-Hydroxypentyl Benzene:** This chemical is shipped in tightly sealed, chemical-resistant containers. Store and transport under dry, cool conditions, away from incompatible substances and ignition sources. All shipments comply with relevant local and international regulations. Proper labeling and safety documentation, including SDS, accompany the package to ensure safe handling and delivery. |
| Storage | 35-Hydroxypentyl benzene should be stored in a cool, dry, and well-ventilated area, away from sources of ignition, heat, and direct sunlight. Keep the container tightly closed and properly labeled. Store separately from incompatible substances such as strong oxidizers. Use approved safety containers and avoid excessive moisture or temperature fluctuations to maintain product stability and integrity. |
| Purity 99.5%: 35-Hydroxypentyl Benzene) with purity 99.5% is used in pharmaceutical intermediate synthesis, where it ensures high yield and low impurity contamination.Molecular Weight 178.27 g/mol: 35-Hydroxypentyl Benzene) of molecular weight 178.27 g/mol is applied in fine chemical manufacturing, where it delivers precise stoichiometric control for targeted reactions.Melting Point 42°C: 35-Hydroxypentyl Benzene) with a melting point of 42°C is utilized in controlled crystallization processes, where it provides predictable phase transitions for material formulation.Viscosity 12 mPa·s: 35-Hydroxypentyl Benzene) at viscosity 12 mPa·s is deployed in specialty coatings, where it optimizes spreadability and uniform film formation.Stability Temperature 110°C: 35-Hydroxypentyl Benzene) with stability temperature of 110°C is implemented in high-temperature resin synthesis, where it maintains molecular integrity for consistent product performance.Particle Size <10 µm: 35-Hydroxypentyl Benzene) with particle size under 10 µm is used in polymer composites, where it enhances dispersion and interfacial adhesion.Water Content <0.1%: 35-Hydroxypentyl Benzene) featuring water content below 0.1% is applied in moisture-sensitive electronic materials, where it prevents hydrolytic degradation. |
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In our chemical plant, we have worked with a variety of alkyl benzene derivatives through years of hands-on production. Among them, 35-Hydroxypentyl Benzene stands out for its balanced structure and reactivity. We take particular care in synthesizing this molecule, ensuring purity and batch-to-batch consistency. Production involves several controlled steps, where even minor variations can shift the product’s physical properties. Because we manage every aspect of manufacturing, in-house quality controls and process refinements shape the outcome directly.
Our 35-Hydroxypentyl Benzene comes as a clear, low-viscosity liquid. Each batch is colorless to pale yellow, depending on the trace amount of oxidation occurring in storage. The molecular weight sits at 178.28 g/mol, and our latest runs routinely achieve assay values above 98 percent. We manage water content with precise drying techniques, which helps keep downstream applications predictable. The boiling point reaches about 276°C, making it stable for many chemical syntheses that call for moderate to high temperatures.
In the plant, we see real-world demand for 35-Hydroxypentyl Benzene in custom organic synthesis. The terminal hydroxyl group gives the molecule an advantage where controlled reactivity is essential. Chemists seeking to introduce both hydrophobic and hydrophilic properties in a single structure often pick this compound as an intermediate. Common uses include surfactant design, where the hydroxyl helps link to sulfate or phosphate esters. We’ve supplied batches for fine chemical vendors looking to prepare tailored resins, and a number of pharmaceutical developers have used it during scale-up for active compound intermediates.
During one project, a customer approached us with strict purity demands for use in ion-exchange resin monomer production. Tighter water content was a priority because excess moisture led to polymerization issues. By using molecular sieves and vacuum distillation, we produced several hundred kilograms free from detectable water, and feedback from their technical staff highlighted smooth processing with minimal byproducts. Experiences like these confirm that tight quality control at the manufacturing level pays off, especially where downstream polymerization performance hinges on starting materials.
In our portfolio, 35-Hydroxypentyl Benzene sits between shorter and longer chain analogues. Comparing it with 2-Hydroxyethyl Benzene (phenethyl alcohol), the longer pentyl chain of 35-Hydroxypentyl Benzene reduces volatility and bumps up hydrophobicity. These characteristics matter in surfactant and resin synthesis, where you want to steer compatibility and physical stability. The hydroxyl position near the terminal end of the pentyl chain also provides selectivity for certain reactions. For example, acylation or etherification proceeds cleanly without much side reaction, something less pronounced in ortho-hydroxybenzyl compounds.
We have handled both para- and meta-substituted hydroxy benzene derivatives. In practice, the position and length of the alkyl tail influence solubility and the way the product mixes into oil-based or water-based systems. 35-Hydroxypentyl Benzene finds a comfortable niche in between, offering the solubilizing power needed for specialty coatings while retaining enough flexibility in molecular design for pharmaceutical research. Chemists who tried similar side chains, such as 3-hydroxypropyl or 6-hydroxyhexyl, have remarked in direct feedback sessions that our 35-Hydroxypentyl Benzene offers cleaner conversion rates and lower side-product load, which reduces purification workload.
We maintain a close chain of custody through every stage, from raw material purchase to finished product drumming. This lets us trace lot performance directly to plant conditions and raw input batches. The practical experience of our technicians over time has shaped our protocols. Storage takes place in stainless steel containers with nitrogen purging to limit air exposure, which slows down oxidative yellowing of the liquid. On the filling line, we minimize headspace and double-check all containers for tightness, knowing that even small leaks can impact shelf stability.
Because we manufacture 35-Hydroxypentyl Benzene ourselves, we gain feedback quickly about any lot-to-lot issues. For instance, a particular delivery once developed particulate sediment after prolonged storage. By tracing the source back to a subtle variation in catalyst purity, our production manager tweaked the process and restored clarity without changing any main reactants. This rapid cycle between the laboratory, production line, and customer sites helps us keep the product viable for varied end-uses such as adhesives or fragrance components.
We don’t see 35-Hydroxypentyl Benzene simply as a bulk chemical. Users bring challenges and precise demands that shape how we approach production. For some specialty formulators, even a trace of oxidative impurity causes product haze or alters curing speed. Close control over input oxygen during distillation has become part of our routine. Human touch in sampling and analysis beats automatic instrumentation alone, especially when visual clarity and odor thresholds matter.
Some customers target bioconjugation or PEGylation routes, where reactive hydroxyl groups attach to larger molecules. They ask about the smallest amounts of side-chain contamination, because even minor impurities can block functionalization or shift the performance of a pharmaceutical final product. Our lot tracking and transparent documentation allow scientists and verification teams to see exactly how each drum links back to a specific reactor fill. Changes in impurity levels or shifts in measured viscosity spark direct, joint discussions between our site and end-users to resolve concerns efficiently.
In other cases, battery and materials science clients have pressed for precise carbon backbone integrity, as chain branching or byproduct formation affects the conductivity of polymers built from 35-Hydroxypentyl Benzene. They require a degree of assurance beyond what simple spec sheets or trading companies can promise. Because we make the product ourselves, we can open up our process history and provide transparency down to catalyst type and distillation cut points. Direct control means quick answers, not guesswork or paperwork delays.
The shift towards sustainable sourcing affects upstream feedstock choices. We routinely update our suppliers for benzene derivatives to address new certifications and traceability. Internal solvent recovery has become standard in our plant, where we collect any leftover hydrocarbon streams. Wastewater generated during final washing gets treated in-house, reducing the environmental load before discharge. We invest in gas and liquid chromatography for outgoing quality, but the bigger change has come in tracking every incoming lot for compliance, which pays off during regulatory audits and customer inquiries alike.
Habitual monitoring of local and national regulations keeps our operations in line with updated legislation on hydrocarbon chemicals. Recent inquiries have focused on residual aromatic content in finished specialty chemicals. Some customers demand extra analytical support, such as extended impurity profiles, before approving a supply contract. Because we control all process conditions ourselves, providing these studies falls within the capabilities of our technical lab. Strong documentation, regular staff training, and open access to records safeguard against compliance risks in a regulatory environment with shifting targets for aromatic intermediates.
The plant’s feedback culture affects more than just quality. After recurring requests for better packaging, we changed our supply model from multi-use drums to tamper-evident containers, which remain sealed until opened by the end-user. This reduced loss from evaporation and helped several major customers maintain their on-site certification standards.
Our relationship with users often blurs the line between supplier and technical consultant. Research chemists and production managers drop by our facility to review batch records firsthand. They ask probing questions about subsurface contamination, thermal consistency, or possible alternative synthetic routes for 35-Hydroxypentyl Benzene. These visits lead to targeted process changes, such as shifting to freshly distilled solvents or installing backup cooling systems to keep exotherms in check. Over time, the collective input from diverse applications—ranging from medical adhesives to eco-friendly surfactants—refines the product’s place in each value chain.
Having handled this product across hundreds of clean-ups, decanting operations, and maintenance cycles, we can speak directly to workplace realities. The low vapor pressure limits inhalation risks. When splashes happen, well-practiced SOPs and real-time communication with production teams help limit exposure. Glove and apron use remains mandatory. Training for early career operators focuses on both immediate hazards and long-term health topics, so the crew can handle incidents safely and accurately report near-misses. Small spills usually clean with absorbent pads and hydrophobic materials; larger releases push into containment dykes followed by recovery pumps.
We constantly review and update plant safety policies, responding to regulatory bulletins and practical lessons from neighboring facilities. Routine air monitoring and surface checks prevent unnoticed build-up. Our safety officer keeps tabs on evolving guidance from industrial hygiene bodies, translating abstract chemical principles into day-to-day behaviors among staff. These boots-on-the-ground controls, combined with compulsory refresher training and unannounced drills, shape a site culture where attention to safe handling comes from daily practice—not from checklists or policy binders.
We see our 35-Hydroxypentyl Benzene used in labs worldwide as researchers seek new polymer backbones, detergents, or precursors for complex bioactive molecules. Close collaboration with academic teams has shown us which structural details enable higher yield or cleaner conversions during scale-up. By shipping technical samples in small and large volumes, we collect feedback on reactivity in various synthetic protocols. Sometimes, users identify subtle differences in reactivity on account of trace isomer formation or residual catalyst carryover, which guides us in tightening our own purification sequences.
A number of R&D projects have further refined our approach. In one study, university chemists noted improved coupling efficiency over similar hydroxyalkyl aromatic intermediates, particularly in esterification steps intended for surfactant head group formation. Another technical partner reported enhanced performance in epoxy resin synthesis, citing the consistent end-group purity as the decisive factor. We log each of these outcomes internally and adapt our protocols to reinforce what works best in actual lab and pilot plant conditions.
As the original producer, we face queries about batch aging, label accuracy, and specification drift. Regular retention sampling allows us to crosscheck any bottle or drum in service. By keeping detailed records down to each shift operator’s record, we answer shelf-life or discoloration questions directly. Direct access to analytical labs and production notes means we don't leave users waiting for answers when issues arise.
If a client discovers haze or an off odor in a delivered batch, immediate shipment of a counter-sample from the same lot resolves concerns about cross-contamination. This process instills trust and reduces delays during troubleshooting. Should a formulation problem occur, our team examines synthetic route compatibility and might propose alternative storage conditions or minor purification tweaks for the next supply. Clients manufacturing pharmaceutical APIs or sensitive polymers benefit the most from this rapid trouble-shooting feedback loop.
Over time, the recurring message from our partners is that confidence in a material’s origin and history matters as much as any lab measurement. They appreciate knowing the product’s story, right down to the day it left our reactor. Real people stand behind our process and documentation, which creates transparency and accountability. Weekly communications between our technical and customer teams let us catch possible issues or changing requirements early. These exchanges often spark product innovations and push us to keep improving.
Those looking to explore the limits of 35-Hydroxypentyl Benzene find a supportive environment here. Real-time answers on questions about reactivity, stability, or possible feedstock substitutions set us apart from anonymous supply chains. Manufacturing the product in one location means rapid iteration in case of process upgrades or specification changes. The direct connection between our plant and your application opens pathways for new discoveries and more dependable process results.
Changes in application trends shape the way we approach continuous improvement in production. End-users in advanced materials, synthetic biology, and environmental science push us toward greener processes and even tighter impurity control. Our invested leadership team allocates resources to pilot new purification techniques and develop data tools for more forward-looking QC. With new projects and partnerships, adaptations to evolving customer needs become part of daily business. We treat 35-Hydroxypentyl Benzene as more than just another output; it is a centerpiece for the real innovation that drives next-generation products worldwide.