
The product we are introducing is high - quality Lithium Tetrachlorocuprate with the CAS number 15489 - 27 - 7. It comes at a low price, making it an attractive option for various industries. Lithium Tetrachlorocuprate has a chemical formula of Li₂CuCl₄. It appears as a fine powder with a characteristic color that may vary depending on its purity.
In terms of physical properties, it has a specific density that can be accurately measured under standard conditions. Its solubility in different solvents is an important parameter. It is soluble in certain polar solvents, which is crucial for its applications in chemical reactions. The melting point and boiling point of Lithium Tetrachlorocuprate are also well - defined physical constants that influence its handling and use.
Quality control is strictly implemented during the production process. The purity of this product is guaranteed to meet high - end industry standards, ensuring its reliability and effectiveness in subsequent applications.
Lithium Tetrachlorocuprate has a wide range of applications across different fields. In the field of electrochemistry, it can be used as an electrolyte additive. It helps to improve the performance of lithium - based batteries by enhancing the conductivity and stability of the electrolyte. This leads to better battery life, higher charging and discharging efficiency, and improved overall battery performance.
In organic synthesis, it serves as a catalyst. It can promote various chemical reactions, such as oxidation and reduction reactions. By using Lithium Tetrachlorocuprate as a catalyst, chemists can achieve higher reaction yields, shorter reaction times, and more specific reaction selectivities. This makes it an invaluable tool in the synthesis of complex organic compounds for pharmaceuticals, agrochemicals, and materials science.
In the field of materials science, it can be incorporated into certain functional materials to modify their properties. For example, it can be used to enhance the electrical and optical properties of thin - film materials, making them suitable for applications in optoelectronic devices.
When using Lithium Tetrachlorocuprate, proper safety precautions should be taken. It is recommended to wear appropriate protective equipment, such as gloves and goggles, to avoid direct contact with the product.
In electrochemistry applications, it is usually added to the electrolyte solution in a specific proportion. The exact proportion needs to be determined according to the specific battery system and performance requirements. The addition process should be carried out under a controlled environment to ensure uniform dispersion in the electrolyte.
In organic synthesis, it can be added to the reaction mixture at the appropriate stage. The reaction conditions, such as temperature, pressure, and reaction time, need to be carefully controlled to optimize the reaction outcome. Usually, the reaction is carried out under an inert atmosphere to prevent side reactions.
For materials science applications, it can be mixed with other raw materials using appropriate methods, such as mechanical mixing or solution - based blending. The resulting mixture is then processed into the desired material form, such as a thin - film or a bulk material.
Case 1: Lithium - ion Battery Application
A battery research team added Lithium Tetrachlorocuprate to the electrolyte of a lithium - ion battery. After a series of tests, they found that the battery's charge - discharge efficiency increased by 15% compared to the battery without the additive. The cycle life of the battery also improved significantly, with the number of charge - discharge cycles increasing by 20%. This improvement was mainly due to the enhanced conductivity of the electrolyte and the more stable interface between the electrode and the electrolyte.
Case 2: Organic Synthesis of a Pharmaceutical Intermediate
A pharmaceutical company used Lithium Tetrachlorocuprate as a catalyst in the synthesis of a key pharmaceutical intermediate. The reaction time was reduced from 10 hours to 6 hours, and the yield increased from 60% to 85%. This not only saved production time and cost but also improved the overall efficiency of the pharmaceutical synthesis process.
Case 3: Optoelectronic Device Application
A materials science research group

This is William, CEO of Zhishang Chemical Co., Ltd.
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