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What is the chemical structure of Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate)?
This is the chemical name "ethane-1,2-diyl bis (oxyethane-2,1-diyl) bis (4-methylbenzenesulfonate) ", and its chemical structure is: based on ethane, an oxyethane-2,1-diyl is attached to each of the 1,2 positions of ethane, and the end of this oxethane-2,1-diyl is connected to a 4-methylbenzenesulfonate group. That is, it shows an ethane core, and the two sides are connected to 4-methylbenzenesulfonate by oxyethane-2,1-diyl. Among them, 4-methylbenzenesulfonate is composed of phenyl ring, methyl group and sulfonate group. In this compound structure, the atoms are connected to each other through chemical bonds, and its spatial structure has various conformations because of the single bond rotation. This structure endows it with specific chemical properties and reactivity, and has corresponding applications in organic synthesis and other fields.
What are the main uses of Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate)?
Ethane - 1,2 - Diylbis (Oxyethane - 2,1 - Diyl) Bis (4 - Methylbenzenesulfonate), its main use is as follows? This is a very important compound in the field of organic synthesis.
In the field of pharmaceutical chemistry, it is often used as an intermediate. Due to its unique molecular structure, it can participate in a variety of chemical reactions to build more complex drug molecular structures. For example, in the development and synthesis process of some new anti-cancer drugs, Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate) can be used as a key link. Through specific reaction steps, the target drug is given the desired active group and spatial configuration, which in turn affects the ability of the drug to bind to biological targets and enhances the efficacy of the drug.
In the field of materials science, it also has its uses. Because of its certain reactivity and stability, it can be used as a modifier to participate in the synthesis of polymer materials. By reacting with polymer monomers, the properties of polymer materials can be improved, such as enhancing the mechanical strength and thermal stability of the material. For example, in the preparation of high-performance engineering plastics, the addition of this substance in an appropriate amount can optimize the comprehensive properties of plastics and expand their applications in aerospace, automotive manufacturing and other fields that require strict material properties.
Furthermore, in the field of organic catalysis, it can be used as a ligand or cocatalyst to affect the rate and selectivity of catalytic reactions. In some metal-catalyzed organic reactions, Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate) can coordinate with metal catalysts to adjust the electron cloud density and spatial environment of the metal active center, so as to precisely control the reaction path and promote the reaction to proceed efficiently in the direction of the desired product.
How safe is Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate)?
Ethane - 1,2 - Diylbis (Oxyethane - 2,1 - Diyl) Bis (4 - Methylbenzenesulfonate), this substance is often referred to as bis (p-toluenesulfonic acid) diethylene glycol ester. Regarding its safety, it needs to be viewed from many aspects.
First, in terms of its chemical properties, the substance structure contains a benzenesulfonate group, which may react under certain conditions. For example, when exposed to strong oxidants, or cause violent reactions, there is a certain risk of fire and explosion. When stored and used, if mixed with strong oxidants, accidental contact is prone to danger, so it needs to be strictly separated.
Secondly, from the perspective of toxicity, although there is no conclusive study showing that it has high acute toxicity, long-term or repeated exposure may still cause potential harm to the human body. For example, after skin contact, or cause skin irritation, redness, swelling, itching and other symptoms. If not carefully entered the eye, it will cause strong irritation to the eye and damage the eye tissue. Inhalation of its dust or vapor may also irritate the respiratory tract, causing cough, asthma and other discomfort.
Furthermore, in terms of environmental impact, if the substance enters the environment, its structure is relatively stable, or it is difficult to degrade rapidly. Its accumulation in soil and water bodies may affect the ecosystem, interfere with the normal physiological activities of organisms, and then destroy the ecological balance.
Therefore, strict safety procedures must be followed when using Ethane - 1,2 - Diylbis (Oxyethane - 2,1 - Diyl) Bis (4 - Methylbenzenesulfonate). Operators should take protective measures, such as wearing protective gloves, goggles and masks. Store in a cool, well-ventilated place away from fire, heat and strong oxidizers. In the event of a leak, proper cleaning measures should be taken in a timely manner to avoid harm to the environment and people.
What are the synthesis methods of Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate)
Ethane - 1,2 - Diylbis (Oxyethane - 2,1 - Diyl) Bis (4 - Methylbenzenesulfonate), Chinese name or ethane - 1,2 - diyl bis (oxyethane - 2,1 - diyl) bis (4 - methylbenzenesulfonate), the synthesis method is as follows:
To prepare this product, you can first take an appropriate amount of ethylene glycol and place it in a clean reactor. Add an appropriate amount of alkali as a catalyst, heat up to a suitable temperature, and stir well. Then slowly add ethylene oxide dropwise. This process requires strict temperature control to make it react smoothly. Ethylene oxide reacts with ethylene glycol to obtain polyethylene glycol.
Take out the polyethylene glycol, place it in another reaction vessel, and cool it to a certain temperature. Slowly add p-toluenesulfonyl chloride, and add an appropriate amount of organic base to promote the reaction. During the reaction, close attention should be paid to the reaction process and temperature changes to ensure a smooth reaction. The p-toluenesulfonyl chloride reacts with polyethylene glycol, and the p-toluenesulfonate ester groups are introduced at both ends of the polyethylene glycol to obtain Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate).
After the reaction is completed, the product needs to be separated and purified. The method of vacuum distillation can be used first to remove low-boiling impurities in the reaction system. Subsequently, the crystals were recrystallized with a suitable organic solvent and washed several times to obtain pure Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate). The whole synthesis process should pay attention to safety, strictly abide by the experimental specifications, and ensure the precise control of the reaction conditions to obtain the ideal product.
What is the market outlook for Ethane-1,2-Diylbis (Oxyethane-2,1-Diyl) Bis (4-Methylbenzenesulfonate)?
Ethane - 1,2 - Diylbis (Oxyethane - 2,1 - Diyl) Bis (4 - Methylbenzenesulfonate), this is the name of the chemical substance, which is rarely heard of by ordinary people, and its market prospects are profound and difficult to fathom.
Watching this product, the chemical structure is exquisite and complex, and the preparation must require superb skills and precise processes. Or used in special fields, such as fine chemicals, scientific research experiments, etc. If used in fine chemicals, in high-end material synthesis, it can play a key role in helping materials with outstanding performance. In scientific research experiments, it may be an important reagent to promote scientific research and exploration step by step.
However, its market expansion, there are also many obstacles. First and foremost, the difficulty of synthesis is high, and the cost may remain high, limiting large-scale production and application. Furthermore, although there is demand in special fields, the audience is narrow, and the market size is difficult to expand rapidly.
However, with the progress of science and technology over time, if the synthesis cost is controllable and the application field expands, there will also be opportunities to emerge. Or in the emerging technology industry, find a broad world and add a bright color to the market. But at the moment, its market prospect is still cloudy, and it will only be clear and clear when all factors are cleared up.