Lithium Hydride (LiH) is often recognized in the energy sector for its hydrogen storage potential, but its versatility extends far beyond that.
When the geometry of a molecule determines the entire outcome of a synthesis, chemists turn to reagents that offer precision, not brute strength.
In modern organic synthesis, selectivity often determines whether a reaction sequence succeeds or fails.
When a synthesis demands precision but safety and controllability matter just as much as power, Lithium Borohydride often becomes the chemist’s preferred choice.
When a synthesis demands uncompromising reduction strength, chemists still reach for Lithium Aluminum Hydride.
You can store Calcium Hydride safely in 2025 by following three simple steps:Wear personal protective equipment (PPE) such as a flame-resistant lab coat, gloves, and goggles.Place the material in a cool, dry, and well-ventilated area, away from water and ignition sources.
Lithium hydride stands out in chemistry due to its simple formula, LiH. Scientists recognize its crystal lattice, which forms a strong cubic structure.
You can also use it to open epoxides and carry out chemical processes that other agents cannot handle. Its selectivity sets it apart from sodium borohydride, letting you choose the best method for your reducing needs.
You often find lithium aluminum hydride at the heart of organic synthesis because it acts as a powerful reducing agent. Its unmatched reactivity lets you convert carboxylic acid derivatives to primary alcohols, a transformation that sodium borohydride cannot achieve.
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Product Description
Product Description:
We are honored to introduce our lithium aluminum deuteride product to you. As a professional thin film and semiconductor material, lithium aluminum deuteride plays an important role in multiple fields. It is a high-purity chemical vapor deposition material with excellent physical and chemical properties.
The thin film properties of lithium aluminum deuteride have made it widely used in fields such as optoelectronics, optical coatings, and thin film solar cells. Its excellent conductivity and thermal stability make it an ideal choice for semiconductor materials. In addition, lithium aluminum deuteride also has good corrosion resistance and high-temperature stability, making it suitable for various chemical vapor deposition processes.
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