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(Methoxymethyl)(methyl)diphenylsilane
[CAS# 18407-48-2]

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Identification
Classification Chemical reagent >> Organic reagent >> Silane
Name (Methoxymethyl)(methyl)diphenylsilane
Molecular Structure CAS # 18407-48-2, (Methoxymethyl)(methyl)diphenylsilane
Molecular Formula C15H18OSi
Molecular Weight 242.39
CAS Registry Number 18407-48-2
SMILES COC[Si](C)(C1=CC=CC=C1)C2=CC=CC=C2
Properties
Density 1.0±0.1 g/cm3, Calc.*
Index of Refraction 1.541, Calc.*
Boiling Point 295.1±32.0 ºC (760 mmHg), Calc.*
Flash Point 104.8±25.5 ºC, Calc.*
* Calculated using Advanced Chemistry Development (ACD/Labs) Software.
Safety Data
Hazard Symbols symbol   GHS07 Warning    Details
Hazard Statements H315-H319-H335    Details
Precautionary Statements P261-P264-P271-P280-P302+P352-P304+P340-P305+P351+P338-P312-P362-P403+P233-P501    Details
SDS Available
up Discovory and Applicatios
(Methoxymethyl)(methyl)diphenylsilane is an organosilicon compound that combines the functionalities of both methoxymethyl and methyl groups attached to a diphenylsilane backbone. This compound is part of a class of silanes, which are widely used in a variety of chemical applications due to their versatility and reactivity. The structure of (Methoxymethyl)(methyl)diphenylsilane consists of a silicon atom bonded to two phenyl groups, a methyl group, and a methoxymethyl group. This combination of groups imparts unique chemical properties, making the compound useful in diverse fields such as materials science, electronics, and surface chemistry.

The discovery of (Methoxymethyl)(methyl)diphenylsilane is part of the ongoing research into organosilicon chemistry, a field that explores the potential of silicon-based compounds in industrial and technological applications. Silane compounds, particularly those with functional groups like methoxy and methyl groups, have been of significant interest due to their ability to act as coupling agents, adhesion promoters, and intermediates in chemical synthesis. The methoxymethyl group in the structure is reactive, capable of hydrolyzing under certain conditions to form silanols, which can then engage in further reactions, particularly with substrates such as glass, metals, and other materials.

In terms of applications, (Methoxymethyl)(methyl)diphenylsilane plays a role in materials science, especially in the development of coatings and adhesives. The compound can be used as a surface modifier to improve the adhesion of coatings to various substrates. Its ability to form strong bonds with inorganic surfaces, including glass and ceramics, is particularly valuable in industries such as construction, electronics, and automotive manufacturing. The methyl group in the structure also contributes to the compound’s stability, making it suitable for use in environments where resistance to moisture, heat, and chemical degradation is essential.

Another important application of (Methoxymethyl)(methyl)diphenylsilane is in the synthesis of advanced materials, such as functionalized polymers and nanomaterials. The compound’s reactivity makes it an ideal precursor for the preparation of silane-based polymers, which are used in a range of applications, from waterproofing agents to advanced composite materials. Additionally, the compound can serve as an intermediate in the production of silane-functionalized nanoparticles, which have applications in drug delivery, sensors, and electronic devices.

In the field of electronics, (Methoxymethyl)(methyl)diphenylsilane is also of interest for its potential use as a dielectric material in capacitors and semiconductors. The compound’s ability to form thin, uniform films on substrates makes it valuable in microelectronics, where precise control over material properties is crucial. Furthermore, the compound's properties allow it to serve as a key component in the development of protective coatings for electronic components, enhancing their durability and performance.

As research progresses, it is likely that the applications of (Methoxymethyl)(methyl)diphenylsilane will expand further. The compound’s versatility in modifying surface properties, along with its potential in advanced material synthesis and electronic applications, ensures that it will continue to be of interest to both academic researchers and industry professionals.
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