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Home > Organic Chemistry > Organometalate (Find 289 items)

Organometalate

Disodium zinc EDTA

(14025-21-9)
Scope of application: EDTA.ZnNa2 is a stable water-soluble metal chelate. Zinc exists in a chelated state.As a trace element nutrient, it is used in agriculture.

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Tin tetrachloride

(7646-78-8)
Tin(IV) chloride is a mordant for dying fabrics; a stabilizer for perfume in soap; used in weighting silk; in ceramic coatings; in manufacturing blue print papers; and to produce fuchsin. Also, tin(IV) chloride is used in preparing many organotin compounds. Electroconductive and electroluminescent coatings, mordant in dyeing textiles, perfume stabilization, manufacture of fuchsin, color lakes, ceramic coatings, bleaching agent for sugar, stabilizer for certain resins, manufacture of blueprint

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ZINC CARBONATE BASIC

(5970-47-8)
Zinc bicarbonate, a compound that has been garnering increasing attention in the scientific community, is emerging as a game-changer in the realms of pharmaceuticals and environmental protection. This compound, with its unique green chemistry characteristics, is poised to revolutionize the way we approach sustainable practices in the chemical industry. The foundation of green chemistry lies in minimizing the environmental impact of chemical processes, and zinc bicarbonate exemplifies this principle. Its by-products have a relatively minor effect on the environment, making it a promising candidate for the realization of green chemistry concepts. By integrating this catalyst into chemical processes, the industry can effectively decrease harmful emissions and reduce energy consumption, fostering a more sustainable production model. However, the journey to fully harness the potential of zinc bicarbonate is not without its challenges. Researchers are actively engaged in developing innovative synthetic strategies to enhance its preparation process, aiming to increase yields and purity. The complexity of its molecular structure offers a wealth of opportunities for exploration. By meticulously tuning its crystal structure, scientists aspire to uncover new catalytically active sites, which could potentially enhance its catalytic efficiency and specificity. Moreover, addressing practical concerns is equally crucial. Balancing catalytic activity with the reduction of unwanted side reactions and enhancing reaction safety are key areas of research. The transition from laboratory-scale to large-scale production necessitates cost reduction and improved economic feasibility. These challenges, though daunting, have not deterred the scientific community from seeking viable solutions. Zinc bicarbonates, as a class of organometallic compounds, hold a prominent position in the chemical landscape due to their intricate properties and broad application potential. Their versatility spans across various industries, from pharmaceuticals, where they could aid in the development of more eco-friendly drugs, to environmental remediation, where they might contribute to the detoxification of contaminated sites. With the relentless advancement of science and technology, the future of zinc bicarbonate research appears promising. More groundbreaking discoveries and technological innovations are anticipated, which will further unravel the intricacies of this compound and unlock its untapped potential. These advancements will not only deepen our understanding of zinc bicarbonate but also contribute significantly to the progression of human society and the pursuit of sustainable development.

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Sodium triacetoxyborohydride

(56553-60-7)
Sodium Triacetoxyborohydride(STAB) is a hydride reagent used in stereoselective reductive amination. It is able to replace toxic sodium cyanoborohydride under most conditions. It is selective in reducing aldehydes to alcohols in the presence of ketones. STAB is also stable in anhydrous acids, which enables reductive amination of aldehydes and ketones. It  used in reductive amination of ketones and aldehydes and reductive amination/lactamization of carbonyl compounds with amines. Reagent for the

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Diammonium tartrate

(3164-29-2)
Masking agents for the determination of lead, nickel, phosphorus and niobium. As analytical reagents and organic synthesis intermediates.

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Chromium(III) acetate

(1066-30-4)
1. Organic synthesis as catalyst and manufacture of chromium catalyst; mordant for printing and dyeing wool, cotton and silk man-made fiber in printing and dyeing industry; impact screening for film photographic film and tanning agent; chromium reagent for trivalent chromium electroplating. 2. Used as a mordant catalyst for analytical reagents.

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Sodium methylparaben

(5026-62-0)
This product is a water-soluble preservative. The main features are safety, high efficiency, and broad-spectrum antibacterial. Widely used in the pharmaceutical industry (preparation of Chinese herbal medicines, Chinese medicines; disinfection); food industry (dairy products, pickled products, beverages, juices, jellies, cakes, etc.); textile industry (textiles, cotton yarn, chemical fiber) antiseptic. And other antiseptics such as cosmetics, feed, and daily-use industrial products.

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Organometalate, also known as organic conductor, is a type of conductive organic charge transfer compound. Such complexes are composed of electron donors and electron acceptors. Typical examples are TTF-TCNQ, TTF-TNAF complex. According to the degree of charge transfer, it can be divided into molecular crystals and charge transfer crystals.

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Frequently Asked Questions

What is an Organometalate?

An organometalate is a type of coordination compound that contains at least one direct bond between a metal atom and a carbon atom of an organic group. These compounds are widely used in catalysis, materials science, and pharmaceutical synthesis due to their unique reactivity and structural properties. Organometalates play a critical role in modern organic chemistry, especially in cross-coupling reactions and polymerization processes.

What are common applications of Organometalates in industry?

Organometalates are commonly used in several industrial applications, including:1. Catalysis—particularly in hydrogenation, hydroformylation, and C–C bond-forming reactions like Suzuki or Heck couplings.2. Pharmaceutical manufacturing—as intermediates or catalysts in the synthesis of active pharmaceutical ingredients (APIs).3. Materials science—for developing conductive polymers, OLEDs, and other advanced functional materials.4. Agrochemical production—to enable efficient synthesis of complex organic molecules.Their versatility makes them indispensable in high-value chemical processes.

How do I choose a reliable supplier for Organometalate compounds?

When selecting a supplier for organometalate compounds, consider the following criteria:1. Regulatory compliance—ensure the supplier adheres to ISO, GMP, or REACH standards where applicable.2. Purity and analytical documentation—reputable suppliers provide certificates of analysis (CoA), NMR, HPLC, or GC data.3. Technical support—look for vendors with in-house chemists who can assist with application-specific guidance.4. Scalability and consistency—verify they can reliably supply both R&D quantities and bulk production volumes.5. Safety and handling protocols—especially important for air- or moisture-sensitive organometalates.Choosing a qualified supplier ensures product quality and process reliability.

Are Organometalates hazardous to handle?

Many organometalate compounds can be hazardous due to their reactivity, toxicity, or sensitivity to air and moisture. For example, organolithium or Grignard reagents are pyrophoric, while some transition metal complexes may pose environmental or health risks. Always consult the Safety Data Sheet (SDS) before handling. Use appropriate personal protective equipment (PPE), work under inert atmosphere when required, and follow institutional safety guidelines. Proper storage and disposal procedures are essential to ensure laboratory and workplace safety.

What factors affect the stability of Organometalate reagents?

The stability of organometalate reagents depends on several key factors:1. Metal identity—heavy metals often form more stable complexes than alkali metals.2. Ligand structure—bulky or electron-donating ligands can enhance stability.3. Solvent compatibility—some organometalates decompose in protic solvents but remain stable in dry, aprotic media like THF or toluene.4. Exposure to air or moisture—many are highly sensitive and require handling under nitrogen or argon.5. Temperature—storage at low temperatures (e.g., –20°C) often prolongs shelf life.Understanding these variables helps maintain reagent integrity during storage and use.

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