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1,3-Dimethylurea is a chemical with the molecular formula C3H8N2O, CAS 96-31-1. Also known as dimethyl urea; Dimethyl urea, symmetrical dimethyl urea; Metformin. Mainly used as a pharmaceutical intermediate, it is also used in the production of fiber processing agents. Used in medicine for synthesizing theophylline, caffeine, and nifedipine hydrochloride. Avoid the formation of dust and aerosols. Highly soluble in water, ethanol, etc., easily soluble in acetone, benzene, etc., soluble in ethyl acetate, butyl acetate, etc., but completely insoluble in ether or gasoline.
The structure contains a carbonyl group that can act as a hydrogen bond acceptor. In addition, it also contains two amino groups that can serve as donors for hydrogen bonds. Therefore, it has strong interaction forces with certain polar solvents, and the solvents have a wide range of selectivity during the solution crystallization process.

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Chemical Formula |
C20H30N2O5 |
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Exact Mass |
378 |
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Molecular Weight |
378 |
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m/z |
378 (100.0%), 379 (21.6%), 380 (2.2%), 380 (1.0%) |
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Elemental Analysis |
C, 63.47; H, 7.99; N, 7.40; O, 21.14 |
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1,3-dimethylurea, as an important urea compound, has wide application value in the pharmaceutical field. Its unique chemical structure and properties make it play an irreplaceable role in drug synthesi, pharmaceutical intermediates, and new drug development.
Synthesis of theophylline
Theophylline is a derivative of methylxanthine, which has effects such as cardiac strength, diuresis, dilation of coronary arteries, relaxation of bronchial smooth muscle, and excitation of the central nervous system. In clinical practice, theophylline is mainly used to treat asthma, asthmatic bronchitis, obstructive pulmonary emphysema and other asthma symptoms, and can also be used for asthma caused by cardiogenic pulmonary edema.
As one of the key raw materials for synthesizing theophylline, high-quality theophylline products can be efficiently and stably produced through specific chemical reaction processes. This application not only meets the high demand for theophylline in the pharmaceutical market, but also provides strong drug support for the treatment of diseases such as bronchial asthma.
Synthetic caffeine
Caffeine is a central nervous system stimulant that can temporarily drive away drowsiness and restore energy. Caffeine is also the most commonly used psychotropic drug in the world, widely used in the medical field as a mild stimulant in North America and some European countries. In the field of medicine, caffeine is commonly used to treat neurasthenia and coma resuscitation.
In addition, caffeine also has analgesic effects and can be combined with other drgs to enhance the analgesic effect. It plays an important role in the synthesi of caffeine and can be efficiently prepared through specific chemical reaction pathways. This application not only enriches the variety of drgs in the pharmaceutical field, but also provides new options for the treatment of diseases such as neurasthenia.

Synthesi of Nificalan Hydrochloride
Nificalan hydrochloride is a compound with specific pharmacological activity, mainly used in clinical practice to treat certain cardiovascular diseases. The synthesi process also relies on its participation. By precise chemical reaction control, high-purity Nificalan hydrochloride can be prepared, providing strong drug support for the treatment of cardiovascular diseases.
Research on anti-cancer effects
In recent years, with the increasing incidence of cancer, the research and development of anti-cancer drgs has become one of the hot spots in the medical field. There are studies indicating that certain urea compounds have potential anti-cancer effects. Although there is relatively little research on its direct anti-cancer effects, considering that it belongs to the urea class compounds, the study of its anti-cancer effects also has certain significance. Scientists are constantly exploring the potential applications in the field of cancer treatment, hoping to provide new ideas and methods for cancer treatment.
Research as a drug carrier
In addition to being used as a raw material for drug synthesi, it can also be studied as a drug carrier. Through specific chemical modifications, drug molecules can be combined with them to form drug carrier systems with specific targeting and release characteristics. This drug carrier system can not only improve the bioavailability and stability of drgs, but also achieve precise drug delivery and controlled release, thereby enhancing therapeutic efficacy and reducing side effects.
Improve synthesis efficiency
In the process of drug synthesi, improving synthesi efficiency is the key to reducing costs and increasing yields. Scientists have continuously improved the synthesi efficiency of drgs involving this substance by optimizing reaction conditions, improving catalysts, and other methods. This not only helps to meet the high demand for drgs in the pharmaceutical market, but also reduces production costs and improves economic efficiency.
Reduce the generation of by-products
In the process of drug synthesi, the generation of by-products often affects the quality and yield of the product. In order to reduce the generation of by-products, scientists have conducted in-depth research on the drug synthesi reactions they participate in. By adjusting reaction conditions, selecting appropriate solvents and catalysts, and other methods, the amount of by-products generated has been effectively reduced. This not only improves the quality of the product, but also provides convenience for subsequent purification and separation work.
Research on antibacterial agents
In addition to the aforementioned applications, it can also be studied as an antibacterial agent. By specific chemical modifications, it can be transformed into compounds with antibacterial activity. These antibacterial compounds can be used to prepare antibacterial drgs, disinfectants and other medical supplies, providing strong support for the prevention and treatment of infectious diseases.
1,3-dimethylurea, as a type of urea compound, has a wide range of applications in the chemical industry. Its unique chemical structure and properties make it play important roles in multiple fields.
Used as an intermediate for synthesizing drugs
It is an important intermediate for synthesizing various drug, among which the most significant are theophylline and caffeine. Theophylline is a derivative of methylxanthine, which has the effects of relaxing smooth muscles and relaxing bronchi. It is mainly used to treat asthma, asthmatic bronchitis, obstructive emphysema, and other asthma symptoms. It can also be used for asthma caused by cardiogenic pulmonary edema.
Caffeine is a central nervous system stimulant that can temporarily drive away drowsiness and restore energy. It is clinically used to treat neurasthenia and coma recovery. In addition, caffeine is often used as one of the ingredients in compound antipyretic and analgesic drug and compound anti cold drug.
When synthesizing these drug, they are usually used as starting materials or key intermediates, and the final product is obtained through a series of chemical reactions. The widespread application of these drug makes them important in the field of drug synthesi.
Used as a fiber processing agent or crosslinking agent
It can also be used as a fiber processing agent or crosslinking agent. During the fiber processing, it can react with functional groups on the fiber surface to form chemical bonds, thereby improving the performance of the fiber. For example, it can improve the wear resistance, wrinkle resistance, and dyeing properties of fibers.
In addition, it can also be used as a crosslinking agent to improve the crosslinking degree and stability of polymer materials.
Compared with traditional fiber processing agents, it has the advantage of not producing formalin. Formaldehyde is a commonly used preservative, but it has a pungent odor and toxicity, posing certain hazards to human health and the environment. And it does not produce formalin in applications, making it more environmentally friendly and safe.
Used as a colloid agent for nitrocellulose
Nitrocellulose is an important polymer material with excellent film-forming properties, weather resistance, and oil resistance. When preparing nitrocellulose products, colloidal agents need to be added to improve their processing performance and stability. It can be used as a colloid agent for nitrocellulose, reducing its surface tension to make it easier to disperse and dissolve in solvents.
At the same time, it can also react with nitrocellulose to form chemical bonds, thereby improving the crosslinking degree and stability of the product. This makes nitrocellulose products have better physical properties and chemical stability, which can meet various application needs.
Used as a preservative and deodorizer
After mixing it with formalin, an effective preservative and deodorizer can be obtained. This mixture has a broad-spectrum bactericidal and bacteriostatic effect, which can inhibit the growth and reproduction of microorganisms such as bacteria, mold, and yeast. Therefore, it is often used for anti-corrosion and odor prevention in fields such as food, cosmetics, pharmaceuticals, and hygiene products.
Compared with traditional preservatives, the preservative mixed with formalin has a wider spectrum of bactericidal activity and stronger antibacterial effect. Meanwhile, due to its non toxicity, it is safer to use.
Co polymerization with a type of acrylic resin containing epoxy propyl groups
Can undergo copolymerization reaction with a type of acrylic resin containing epoxy propyl groups. This copolymerization reaction can be carried out through free radical polymerization or ion polymerization. During the copolymerization process, its functional groups react with the epoxy propyl group of the acrylic resin to form chemical bonds.
The product after copolymerization has excellent properties, such as high strength, high toughness, weather resistance, and chemical corrosion resistance. This makes copolymer products widely used in fields such as coatings, adhesives, plastics, and rubber.

Application in the field of medicine
In addition to serving as intermediates and raw materials for synthetic drug, there are other important applications in the field of medicine. For example, it can be used to prepare substances such as N, N ` - dimethyl-4-imino violet urea acid. These substances have a wide range of applications in the pharmaceutical field, such as antibacterial, anti-inflammatory, anti-tumor, etc.
In addition, it can also be used to prepare pharmaceutical materials with special functions, such as drug carriers, sustained-release agents, and controlled release agents. These materials can improve the solubility, stability, and bioavailability of drug, thereby enhancing their efficacy and safety.

As a surfactant
It can also be used as a surfactant. Surfactants are a type of substance that can reduce the surface tension and interfacial tension of liquids, and have functions such as wetting, dispersing, emulsifying, foaming, and defoaming. Due to its unique chemical structure, it has excellent surface activity and dispersibility.
In the application of surfactants, they can be used to prepare various detergents, emulsifiers, dispersants, and wetting agents. These products are widely used in daily life and industrial production, such as washing clothes, cleaning surfaces, preparing lotion and dispersion systems.
Other applications
In addition to the aforementioned applications, there are also other applications in the chemical industry. For example, it can be used to prepare some special chemicals such as flame retardants, plasticizers, and anti-static agents. These chemicals have a wide range of applications in fields such as plastics, rubber, coatings, and textiles.
In addition, 1,3-dimethylurea can also be used to prepare some functional materials, such as photosensitive materials, electrically sensitive materials, and thermosensitive materials. These materials have potential application value in fields such as electronics, optoelectronics, and sensing.
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