Lithium hydride: essential compound for aerospace and battery industries, stands at the forefront of modern technology. Its lightweight nature and strong neutron shielding make it vital for advanced applications, including mobile nuclear reactors and space missions.
You can achieve high selectivity in organic reactions by understanding how L-selectride improves reaction selectivity in organic chemistry. This reagent stands out because of its large size and unique electronic properties, which contribute to exceptional chemoselectivity.
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Lithium aluminum hydride poses severe risks in the laboratory. Fires and explosions have resulted from improper handling, especially when moisture or oxygen contacts the material. Essential safety rules include strict avoidance of water, use of proper PPE, and storage under an inert atmosphere.
IntroductionLithium borohydride (LiBH4) is a highly valued compound in the field of chemistry and materials science due to its exceptional properties as a reducing agent and hydrogen storage material.
IntroductionIn the realm of chemical compounds, Lithium Borohydride and Sodium Borohydride stand out as significant reducing agents with diverse industrial applications.
IntroductionLithium borohydride is rapidly emerging as a crucial compound in various industrial applications, thanks to its unique chemical properties and the growing demand for efficient energy solutions.
IntroductionLithium borohydride is a versatile reagent in organic chemistry, known for its powerful reducing properties. Handling this compound requires a thorough understanding of its chemical behavior, safety protocols, and applications.
IntroductionLithium borohydride is a fascinating compound that has garnered significant attention in scientific research and industrial applications. As a powerful reducing agent, it plays a crucial role in organic synthesis and various industrial processes.
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Product Description
Lithium chloride is an inorganic substance with the molecular formula LiCl and a molecular weight of 42.39. It is a white crystal with deliquescence. Salty in taste, easily soluble in water, organic solvents such as ethanol, acetone, pyridine, but difficult to dissolve in ether. It belongs to the low toxicity category, but has strong irritating and corrosive effects on the eyes and mucous membranes.
Molecular formula | LiCl | |
CAS No. | 7447-41-8 | |
Appearance | Solid | White or almost white powder |
Purity | Solid | ≥98% |
Specification | Solid | 100g/can; 500g/listen; 1000g/listen |
Advantages
Lithium chloride has product advantages and characteristics such as excellent thermal performance, efficient moisture absorption, outstanding chemical stability, excellent conductivity, and environmental sustainability. These characteristics have led to the widespread application of lithium chloride in numerous industries, promoting the development and progress of related fields. In addition, lithium chloride is a relatively environmentally friendly chemical substance that can reduce environmental pollution and resource consumption during its production and use. Lithium chloride also has the characteristic of being recyclable and meets the requirements of sustainable development. Our company produces lithium chloride at a low price and with high quality. At the same time, our company also places great emphasis on customer satisfaction. Welcome to consult and purchase.
Characteristics
Unlike other alkali metal chlorides, lithium chloride can form crystalline hydrates, such as monohydrate, trihydrate, and pentahydrate. Heating hydrates can regenerate anhydrous salts. Like any other ionic chloride, lithium chloride solution can serve as a source of chloride ions.
Application Scenarios
Lithium chloride can be used as a solvent or reactant in the synthesis and crystal growth processes. It can be used for preparing lithium chloride salts, synthesizing metal chloride compounds, or for laboratory operations such as crystal growth and nanomaterial preparation.
Lithium chloride can be used for research and evaluation of metal corrosion processes in the laboratory. It can be used to simulate chloride ions in corrosive environments and provide experimental conditions to understand the behavior and performance of metals in different corrosive media.
3. The single crystal of lithium chloride has good transparency and can be used as an infrared window material.
Lithium chloride can be used as a dopant for semiconductor materials. In semiconductor technology, lithium chloride can introduce lithium element to adjust the electrical properties of semiconductor materials, such as increasing conductivity or changing the energy band structure of the material.
Lithium chloride is used as an electrolyte or catalyst in some special battery systems to improve the energy density and performance of batteries.
6. Lithium chloride is also used as a dehumidifier in air conditioning systems, as a good flux in the electrolysis of metals or in the preparation of powders, as a precipitator for RNA, and as an additive in Still reactions.
Storage And Transportation
1. Storage precautions: Lithium chloride should be stored at room temperature to avoid high or low temperatures. Room temperature generally refers to between 15 and 30 degrees Celsius. Lithium chloride is sensitive to humidity and should be stored in an environment with a relative humidity below 60% to avoid moisture absorption. Lithium chloride should be stored in a dark environment to prevent changes in quality caused by sunlight exposure. Lithium chloride should be stored in well sealed containers to prevent it from reacting with moisture in the air or absorbing moisture, leading to changes in quality.
2. Transportation matters: Lithium chloride should be packaged with suitable packaging materials to prevent leakage and fragmentation. There should be obvious markings on the transportation container, indicating that it is lithium chloride, to remind staff to pay attention to safety. Try to avoid severe vibration of lithium chloride during transportation to prevent container damage. Avoid exposing lithium chloride to high-temperature environments during transportation to prevent container deformation or changes in the properties of lithium chloride. Please note that to ensure safety, it is recommended to follow relevant laws, regulations, and transportation guidelines for the correct storage and transportation of lithium chloride.