Why Choose Us

Our History

Established in 1970, Zhejiang Haizhou Pharmaceutical Co., Ltd., is a leading pharmaceutical company focusing on specialized pharmaceuticals and fine chemicals

Our Company

The company, located in Yanhai Industrial Zone, one of the largest pharmaceutical industrial zones in China, covers an area of 35 acres

 

Honor

Haizhou Pharma is ISO9001/14001 and OHSAS18001 approved, and ISO/OHSAS management philosophy deeps into whole process of the company

Production

Moreover, its API production is in line with cGMP standard and approved by NMPA (China FDA), US-FDA and EDQM respectively

 

 
Other Intermediates

 

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What is Hexamethyldisilane?

Hexamethyldisilane (TMS2) is an organosilicon compound with the chemical formula Si2(CH3)6, and is also known as Si2Me6. It is a colorless liquid that dissolves in organic solvents. Hexamethyldisilane can be solid, liquid, a solidified melt, or a supercooled melt due to its specific melting range.

 

Uses of Hexamethyldisilane

Semiconductor Industry:

HDMS is used as a surface treatment agent in this particular industry. It can be applied to silicon wafers to improve adhesion between photoresist materials and water surfaces.

 

Analytical Chemistry:

HMDS is used to derivatise polar compounds like alcohol, phenols, and carboxylic acids. This makes them more manageable for gas chromatography and mass spectrometry analysis.

 

Laboratory Reagent:

It is used as a reagent in a wide range of chemical reactions and synthesis processes.

 

Adhesion:

HMDS is used to improve adhesion in adhesive applications to ensure better bonding.

Waterproofing

HMDS can also be used to create hydrophobic surfaces to repel water and protect the material against moisture damage.

Release Agent

It can also be used as a release agent which helps in the prevention of adhesion between moulded parts.

semiconductor

When hmds chemical used in semiconductor acts as primer agent in coating semiconductor

 

Properties Of Hexamethyldisilane

 

Hexamethyldisilane, also known as Hexamethyldisilane in English, is a colorless and transparent liquid at room temperature and pressure. It is insoluble in water and soluble in alcohol organic solvents and acetone. Hexamethyldisilane is a silane type organic compound commonly used as a silane protector in organic synthetic chemistry.

 

It can be used in the preparation of drug molecules and bioactive molecules, and has a wide range of applications in basic chemical research. In addition, hexamethyldisilane is also a terminating agent for the polysilane chain and has certain applications in the preparation of polymer materials.

 

Growth Drivers Of Hexamethyldisilane Market
 

Increasing Urbanization

 

The rising urban population is driving the demand for Hexamethyldisilane, particularly in urban centers where there is a greater need for specific aspect provided by Hexamethyldisilane.

Demand for Sustainable Solutions

Growing environmental concerns and regulations have led to a shift towards sustainable alternatives, boosting the demand for eco-friendly Hexamethyldisilane products and services.

Digital Transformation

 

The ongoing digital transformation across industries is fueling the demand for Hexamethyldisilane solutions that can integrate seamlessly with digital platforms, enhancing efficiency and productivity.

Shift towards Remote Work

The pandemic-induced shift towards remote work has increased the demand for Hexamethyldisilane solutions that facilitate collaboration, communication, and remote access to specific features.

 

The Role Of Hexamethyldisilazane In Semiconductor Manufacturing
 

Understanding Semiconductor Manufacturing:
Semiconductors are the backbone of modern electronics, powering everything from smartphones to advanced computing systems. The manufacturing process involves intricate steps to ensure the performance and reliability of the final products.

 

Surface Preparation:
One key aspect of semiconductor manufacturing is the preparation of surfaces for subsequent processing. HMDS, with its unique chemical properties, serves as a valuable surface treatment agent. It is commonly used to promote adhesion between photoresists and substrates.

 

Adhesion Promotion:
HMDS acts as a coupling agent, facilitating a strong bond between the silicon substrate and the photoresist layer. This adhesion is crucial for the precise patterning of circuits during photolithography, a fundamental step in semiconductor fabrication.

 

Enhancing Photoresist Performance:
The use of HMDS contributes to the improvement of photoresist performance. By ensuring proper adhesion, it helps create sharper, more defined patterns, which is essential for the production of high-quality semiconductor devices.

 

Preventing Defects:
In semiconductor manufacturing, defects can have significant consequences on the functionality of the final product. HMDS application aids in preventing common defects such as residue, delamination, and poor adhesion, thereby enhancing the overall yield and reliability of the manufacturing process.

 

Advanced Applications:
As semiconductor technology advances, so does the need for precise and reliable processes. HMDS continues to find new applications in emerging technologies, including the production of smaller and more efficient semiconductor devices.

 

Challenges and Considerations:
While HMDS offers numerous advantages, it’s essential to address challenges associated with its use, such as proper handling, safety measures, and environmental considerations. This section provides insights into best practices to ensure responsible usage.

 

Future Trends:
The semiconductor industry is dynamic, with constant innovations shaping its landscape. Explore the potential future trends and developments in the role of HMDS, considering advancements in semiconductor manufacturing technologies.

 

Risk Factors Of Hexamethyldisilane Market

Commodity Price Volatility

 

Fluctuations in raw material prices, such as specific commodities, can impact profit margins and operational costs, exposing companies in Hexamethyldisilane Market to financial risks.

Hexamethyldisilane Market Saturation

The market may become saturated with similar products or services, intensifying competition and putting pressure on pricing and profitability, especially for companies with undifferentiated offerings.

Supply Chain Disruptions

 

Disruptions in the supply chain, whether due to natural disasters, geopolitical tensions, or other factors, can disrupt production and distribution, leading to delays, increased costs, and potential loss of Hexamethyldisilane market share.

Changing Consumer Preferences

Shifts in consumer preferences, trends, or buying behaviors can pose risks to companies that fail to adapt quickly, leading to decreased demand for their products or services and loss of Hexamethyldisilane market relevance.

 

 

What is Iodotrimethylsilane?

Iodotrimethylsilane, also known as trimethylsilyl iodide (TMSI) or TMS-I, is a colorless, volatile organosilicon compound with the chemical formula (CH3)3SiI. It's a versatile reagent with many applications in organic synthesis, including: Nucleophilic reagent, Trimethylsilylating agent, Lewis acid catalyst, Reducing agent, and Dehydrating agent.

碘代三甲基硅烷

 

Iodotrimethylsilane: Applications as Reactive Ligand and its Preparation Method
 

General Description

Iodotrimethylsilane is a versatile chemical compound that acts as both a synthetic reagent and silylating agent. Its importance extends to surface etching and passivation of perovskite nanocrystals for LED applications, ensuring efficiency and stability. Iodotrimethylsilane is prepared using eco-friendly methods, guaranteeing high purity and conversion rates. With its ability to enhance ligand interactions and surface passivation, Iodotrimethylsilane is a valuable asset in industrial and laboratory settings, driving advancements in the chemical industry. Its multifaceted utility highlights its potential to propel technological progress, offering innovation and efficacy across various applications.

Applications as Reactive Ligand

Iodotrimethylsilane serves as a reactive ligand in surface etching and passivation of perovskite nanocrystals (NCs), crucial for efficient pure-red to deep-red LEDs. Resurfacing NCs with conductive ligands addresses dynamic ligands-surface interaction, a fundamental issue in perovskite light-emitting diodes. Previous ligands had drawbacks like weak interactions or dependence on polar solvents. TMIS resolves these by offering good solubility in non-polar solvents and reacting with oleate ligands to produce HI for surface etching and passivation, facilitating strong-binding ligands on NCs. Red perovskite light-emitting diodes using Iodotrimethylsilane exhibit an external quantum efficiency (EQE) of ≈23%, 11.2-fold higher than controls, among the highest for CsPbI3 perovskite light-emitting diodes. This ligand strategy extends to CsPbBr3 systems, yielding EQE of ≈20% at various wavelengths from 640 to 664 nm. This marks the first use of a chemically reactive ligand strategy across different systems, proving effective for red perovskite light-emitting diodes across a range of emissions. Iodotrimethylsilane offers a promising avenue for enhancing the efficiency and stability of perovskite light-emitting diodes through improved ligand interactions and surface passivation.

Preparation Method

The method for preparing Iodotrimethylsilane involves several steps to achieve a high conversion rate of 99% and a purity exceeding 99%. Firstly, anhydrous lithium iodide is prepared by adding anhydrous sodium iodide to an organic solvent containing anhydrous lithium chloride, followed by filtration to obtain anhydrous lithium iodide. Secondly, this anhydrous lithium iodide is reacted with trimethylchlorosilane, catalyzed by a quaternary ammonium salt catalyst or without a catalyst, at a temperature range of 20-80°C for 8-10 hours. Toluene, cyclohexane, chloroform, dichloromethane, ethyl acetate, acetone, ethanol, or a mixture thereof can be used as the organic solvent. The method offers several advantages: it is simple, safe, and environmentally friendly, with mild reaction conditions. It avoids the use of hazardous chemicals like metallic potassium or sodium and eliminates the challenge of high-temperature iodination. Furthermore, it allows for the recycling of materials: the organic solvent can be reused, lithium chloride remains intact throughout the reaction, and trimethylchlorosilane vaporized during distillation can be reused in subsequent reactions. This recycling reduces production costs and minimizes waste generation. Overall, this method provides a straightforward and safe synthesis route for Iodotrimethylsilane, with high conversion rates and purity, while ensuring environmental sustainability.

 

Iodotrimethylsilane: A Key Component In Organic Synthesis

 

Synthesis Of Silyl Enol Ethers

One of the key applications of iodotrimethylsilane is in the synthesis of silyl enol ethers, which are used as intermediates in the synthesis of a wide range of organic compounds. Silyl enol ethers are formed by the reaction between a carbonyl compound and a silylating reagent, such as iodotrimethylsilane.


Other Applications Of Iodotrimethylsilane

Apart from its use in the synthesis of silyl enol ethers, iodotrimethylsilane has several other applications in organic synthesis. It is used as a reagent for the conversion of carboxylic acids to their corresponding methyl esters. It is also used in the synthesis of alkyl and aryl iodides, which are important intermediates in the production of pharmaceuticals, agrochemicals, and fine chemicals.


Safety Considerations

Iodotrimethylsilane is a highly reactive and corrosive compound that should be handled with extreme care. It is flammable and can react violently with water and air, releasing toxic fumes of hydrogen iodide. It should be stored in a cool, dry place, away from sources of ignition and oxidizing agents.

 

What Factors Drive Iodotrimethylsilane Market Growth?

Technological Advancements: Continuous innovation and advancements in technology play a crucial role in expanding the Iodotrimethylsilane Market. New technologies often lead to improved products, increased efficiency, and enhanced customer experiences, driving demand and market growth.

 

Increasing Consumer Demand: Growing consumer awareness and demand for Iodotrimethylsilane products/services contribute significantly to market expansion. As consumers seek more sustainable, efficient, or advanced solutions, companies respond by innovating and expanding their offerings.

 

Regulatory Support and Initiatives: Supportive regulatory frameworks and government initiatives can catalyze market growth by promoting investments, reducing barriers to entry, and fostering innovation in the Iodotrimethylsilane sector.

 

Emerging Markets and Opportunities: Expansion into new geographical markets or tapping into emerging sectors within the Iodotrimethylsilane industry provides opportunities for growth. Companies that identify and capitalize on these emerging trends can gain a competitive edge and expand their market presence.

 

Strategic Partnerships and Collaborations: Collaborations and partnerships between industry players, research institutions, and technology providers can drive innovation and accelerate market growth. These partnerships often enable companies to leverage complementary strengths and resources to develop new products or enter new markets.

 

 
Our Factory

 

The company, located in Yanhai Industrial Park, one of the largest pharmaceutical industrial zones in China, covers an area of 35 acres. Through its three product segments - Guaiacol derivatives, Epichlorohydrin derivatives and Iodine contrast media - Haizhou Pharm offers a portfolio of products and services globally, including Active Pharmaceutical Ingredients (API), Intermediates, fine chemicals and Customs manufacturing service.

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FAQ
 

Q: What is the CAS number of trimethyl silyl iodide?

A: Trimethylsilyl Iodide 16029-98-4 | Tokyo Chemical Industry (India) Pvt. Ltd.

Q: What is the use of trimethylsilyl iodide?

A: Applications. Trimethylsilyl iodide is used to introduce the trimethylsilyl group onto alcohols (ROH): R-OH + TMSI → R-OTMS + HI. This type of reaction may be useful for gas chromatography analysis; the resultant silyl ether is more volatile than the underivatized original materials.

Q: What is trimethylsilyl chloride used for?

A: Trimethylsilylation can also be used to increase the volatility of a compound, enabling gas chromatography of normally nonvolatile substances such as glucose. Trimethylsilyl chloride also reacts with carbanions to give trimethylsilyl derivatives.

Q: What is the role of iodide in the thyroid?

A: Iodine is a micronutrient needed for the production of thyroid hormones, which regulate metabolism, growth, and development. Iodine deficiency or excess may alter the thyroid hormone synthesis.

Q: What is the application of trimethylsilyl iodide?

A: They usually are cleaved by saponification with base but also the application of trimethylsilyl iodide is efficient. This reaction belongs to the mildest methods for ester cleavage, which generally consist in the treatment with nucleophiles effecting an SN2 displacement of the carboxylate (Scheme 61).

Q: What is the role of the trimethylsilyl group?

A: Trimethylsilyl groups are used as protecting groups for organic compounds with hydroxyl groups. There must first be a reaction in order to use trimethylsilyl as a protecting group for an organic compound. This reaction is between the organic compound and trimethylsilyl chloride (TMSCl) in the presence of a base.

Q: What is trimethylsilyl boron used for?

A: In order to overcome severe capacity fading of LiMn2O4 cathode lithium-ion battery, tris(trimethylsilyl) borate (TMSB) is used as an electrolyte additive.

Q: How to remove trimethylsilyl group?

A: Trimethylsilyl ethers, like most other ethers, are relatively unreactive towards many reagents such as oxidizing agents, reducing agents, or Grignard reagents. However, the TMS ether protecting group can be removed by reaction with an aqueous acid or the fluoride ion (F-) to regenerate the alcohol.

Q: What is trimethylsilane used for?

A: Trimethylsilane is used in the semiconductor industry as precursor to deposit dielectrics and barrier layers via plasma-enhanced chemical vapor deposition (PE-CVD). It is also used a source gas to deposit TiSiCN hard coatings via plasma-enhanced magnetron sputtering (PEMS).

Q: How do I remove a trityl protecting group?

A: S-Trityl protecting groups may also be removed under these conditions.
Dissolve the protected peptide in methanol (1.25 mL/ mmol).
Add 0.4 M methanolic iodine solution (2.5 equivalents per acetamidomethyl group). ...
Add 1 M aqueous ascorbic acid or sodium thiosulfate solution (100 mL/mmol peptide).

Q: What is the use of hexamethyldisilazane?

A: HMDS is used in the lithography process to treat the surface of a Si wafer (silane coupling agent). HMDS, reacting (silane coupling reaction) with the surface of metals and ceramics, forms hydrophilic trimethylsilanol (TMSiOH) on the surface. This makes it easier to coat a Si wafer surface with photoresist.

Q: What is the shelf life of hexamethyldisilazane?

A: Hexamethyldisilazane Storage
When stored in a strictly sealed and unopened container, CFS-973 has a shelf life of 12months.

Q: What is the use of hexamethyldisiloxane?

A: Hexamethyldisiloxane (HMDSO or MM) is an organosilicon compound with the formula O[Si(CH3)3]2. This volatile colourless liquid is used as a solvent and as a reagent in organic synthesis. It is prepared by the hydrolysis of trimethylsilyl chloride.

Q: What is hexamethyldisilazane HMDS used for?

A: It serves as a hydrophobic adhesion promoter, facilitating the deposition of photoresist materials during photolithography. In analytical laboratories, HMDS is employed as a derivatization reagent for enhancing the volatility of polar compounds prior to gas chromatography (GC) analysis.

Q: Is hexamethyldisiloxane volatile?

A: Hexamethyldisiloxane. MM has a molecular weight of 164 Daltons and a Newtonian viscosity of 0.65 cSt. As might be expected from its very low molecular weight, MM is a highly volatile substance!

Q: What is the vapor pressure of hexamethyldisiloxane?

A: Hexamethyldisiloxane (HMDS) is a colorless or yellowish transparent liquid with a measured melting point of -68.2°C and a measured boiling point of 100.5°C at 1013 hPa. The measured vapor pressure is 44.51 hPa at 20 oC.

Q: What is the structure of hexamethyldisiloxane?

A: Hexamethyldisiloxane is an organosiloxane consisting of two trimethylsilyl groups covalently bound to a central oxygen. See also: Vinyltrimethylsilyloxy silicate (monomer of).

Q: What is another name for hexamethyldisilazane?

A: Bis(trimethylsilyl)amine (also known as hexamethyldisilazane and HMDS) is an organosilicon compound with the molecular formula [(CH3)3Si]2NH. The molecule is a derivative of ammonia with trimethylsilyl groups in place of two hydrogen atoms.

Q: What is the solubility of hexamethyldisiloxane in water?

A: The hydrolysis half-life of hexamethyldisiloxane (HMDS, L2, CAS 107-46-0) is 116 hours (5 days) at pH7 and 25˚C. The water solubility of the substance is low (0.93 mg/l) and the log K is high (5.1).

Q: What is the HS code for hexamethyldisiloxane?

A: Hexamethyldisiloxane Organic Chemical Imports Under HS Code 29319090.

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