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Home > Organic Chemistry > Hydrocarbons and Derivatives (Find 62 items)
Explore the raw materials of hydrocarbons and their derivatives. From aromatic hydrocarbons to aliphatic hydrocarbons, discover each compound's CAS NO., properties, and SDS. Procure raw hydrocarbon materials from accredited suppliers and access comprehensive product details for your chemical formulations.

Terbinafine hydrochloride

(78628-80-5)
1. An orally active, antimycotic allylamine related to Naftifine. A specfic inhibitor of squalene epoxidase, a key enzyme in fungal ergosterol biosynthesis. Antifungal.
2. Terbinafine hydrochloride is a synthetic allylamine antifungal. It is used to treat dermatophyte infections of the toenail/fingernail, ringworm and jock itch. It is used in adsorption, partition and stability studies.

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Terpineol

(8000-41-7)
Solvent for hydrocarbon materials, mutual solventfor resins and cellulose esters and ethers, perfumes,soaps, disinfectant, antioxidant, flavoringagent. Used in the preparation of flavors, also used in medicine, pesticides, plastics, soap, ink industries, and as a color solvent on glassware

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Tetraethylene glycol

(112-60-7)
Used as a new aromatic extraction solvent, cosmetic solvent, aircraft engine lubricant, brake oil admixture, etc.

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tert-Butylbenzene

(98-06-6)
Used as a standard substance for chromatographic analysis, but also for organic synthesis.

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Tetralin

(119-64-2)
Degreasing agent.Solvent for naphthalene, fats, resins, oils, waxes, used instead of turpentine in lacquers, shoe polishes, floor waxes.

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Tetrafluoroethylene

(116-14-3)
In manufacture of polymers and synthesis of fluorinated refrigerants, dielectric media and solvents.In vinyl polymerization, cycloalkylation and addition reactions.

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trans-1,4-Dibromo-2-butene

(821-06-7)
Used as an intermediate in organic synthesis.

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Tetradecane

(629-59-4)
Gas chromatography analysis standard. Organic Synthesis. Solvent.

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Hydrocarbons generally refer to hydrocarbons and are a type of organic compound. This compound consists of only two elements, carbon and hydrogen, including alkanes, alkenes, alkynes, cyclic hydrocarbons, and aromatic hydrocarbons, and is the matrix of many other organic compounds. There are many types of hydrocarbons, which can be divided into: open-chain hydrocarbons, alicyclic hydrocarbons, aromatic hydrocarbons. Hydrocarbon derivatives are compound compounds that continue to combine with other elemental substances or other compounds. Derivatives of hydrocarbons are more colorful and diverse. It mainly combines with oxygen, chlorine, bromine and their hydrides to form a huge derivative community.

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Hydrocarbons, also known as carbonaceous compounds, are organic compounds composed solely of carbon and hydrogen. These compounds, commonly referred to as hydrocarbons, form through reactions with chlorine, bromine vapor, oxygen, and other elements. Methane (CH4) is the simplest hydrocarbon molecule, consisting of a central carbon atom connected to four hydrogen atoms.

In our daily lives, we frequently encounter hydrocarbons. For instance, propane in natural gas and butane in lighters are both examples of hydrocarbons. They serve as fuels due to the vast energy stored within their covalent bonds. During combustion, this energy is released in the form of heat as they react with oxygen to produce carbon dioxide and water.

Hydrocarbons encompass various types, including:
● aromatic hydrocarbons
● saturated hydrocarbons
● aliphatic hydrocarbons

Frequently Asked Questions

What are hydrocarbons and their derivatives used for in industrial applications?

Hydrocarbons and their derivatives serve as fundamental building blocks in numerous industrial sectors. They are primarily used as feedstocks in petrochemical manufacturing to produce plastics, solvents, synthetic rubbers, and fuels. Derivatives such as alcohols, aldehydes, and carboxylic acids are essential in producing pharmaceuticals, agrochemicals, and specialty chemicals. Their versatility makes them critical in both energy production and chemical synthesis processes.

How do saturated and unsaturated hydrocarbons differ in chemical properties and applications?

Saturated hydrocarbons (alkanes) contain only single bonds and are generally less reactive, making them stable fuels like methane and propane. Unsaturated hydrocarbons (alkenes and alkynes) have double or triple bonds, which increase reactivity and make them ideal for polymerization and organic synthesis—key in manufacturing plastics like polyethylene and PVC. Understanding these differences helps industries select the right hydrocarbon type for specific chemical processes.

What factors should buyers consider when sourcing high-quality hydrocarbons and derivatives?

When sourcing hydrocarbons and derivatives, buyers should evaluate:1. Purity and specification compliance (e.g., ASTM or ISO standards).2. Supplier certifications such as ISO 9001 or REACH/ROHS compliance.3. Consistency in batch-to-batch quality and traceability.4. Logistics and storage capabilities, especially for volatile or hazardous compounds.5. Technical support and documentation (e.g., SDS, COA).Choosing a reliable supplier ensures safety, regulatory adherence, and process efficiency.

Are hydrocarbon derivatives safe to handle in laboratory and industrial settings?

Many hydrocarbon derivatives can be safely handled when proper safety protocols are followed. However, some—like benzene or formaldehyde—are toxic, flammable, or carcinogenic. Safety depends on correct storage, ventilation, personal protective equipment (PPE), and adherence to OSHA or GHS guidelines. Always consult the Safety Data Sheet (SDS) before use and ensure staff are trained in handling hazardous chemicals to minimize risks.

What are common examples of hydrocarbon derivatives used in everyday products?

Hydrocarbon derivatives are ubiquitous in daily life. Ethanol (from ethylene) is used in sanitizers and beverages; acetone (a ketone) serves as a solvent in nail polish removers; toluene appears in paints and adhesives; and fatty acid derivatives act as emulsifiers in cosmetics and food. Even synthetic fibers like polyester originate from aromatic hydrocarbon derivatives such as terephthalic acid. These compounds bridge raw petrochemicals to consumer-ready goods.

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