추천 제품
일반 설명
Trimethoxymethylsilane (MTM) is an organosilicon compound widely used as a precursor for the preparation of silica-based materials, which finds the applications in various fields. Particularly in molecular assembly, linking nano building blocks, and selective synthesis oligosiloxane compounds. It can also be utilized as a crosslinker in the synthesis of polysiloxane polymers.
애플리케이션
Trimethoxymethylsilane can be used:
- As a silica source for synthesizing polyethyleneimine-silica (PEI-silica) organic-inorganic hybrid particles.
- To transform hydrophilic ceramic surfaces to hydrophobic by modifying the -OH groups.
- To modify silica aerogels by inducing hydrophobicity and enhancing mechanical properties without affecting transparency.
신호어
Danger
유해 및 위험 성명서
Hazard Classifications
Flam. Liq. 2
Storage Class Code
3 - Flammable liquids
WGK
WGK 3
Flash Point (°F)
48.2 °F
Flash Point (°C)
9 °C
개인 보호 장비
Eyeshields, Faceshields, Gloves, type ABEK (EN14387) respirator filter
시험 성적서(COA)
제품의 로트/배치 번호를 입력하여 시험 성적서(COA)을 검색하십시오. 로트 및 배치 번호는 제품 라벨에 있는 ‘로트’ 또는 ‘배치’라는 용어 뒤에서 찾을 수 있습니다.
이미 열람한 고객
Utilization of alkoxysilyl groups for the creation of structurally controlled siloxane-based nanomaterials
Chemistry of Materials, 26(1), 211-220 (2014)
The formation of polyethyleneimine?trimethoxymethylsilane organic?inorganic hybrid particles.
Colloids and Surfaces. A, Physicochemical and Engineering Aspects, 431, 42-50 (2013)
Organo-modified silica aerogels and implications for material hydrophobicity and mechanical properties.
Journal of Materials Chemistry, 18(2), 207-213 (2008)
Inorganic chemistry, 55(12), 5744-5746 (2016-06-04)
The commercially practiced conversion of trimethoxymethylsilane (MTM) to [OSi(OMe)Me)]n polymers and resins is assumed to proceed via the silanol (MeO)2MeSiOH. Access to this crucial silanol is gained via the synthesis of (MeO)2MeSiONa, the first methoxysilanoate to be crystallographically characterized. Mild
Investigation of Silane Modified Ceramic Surface of Porous Mullite Ceramics.
World Academy of Science, Engineering and Technology, 79(7), 272-276 (2013)
문서
Ultrasonic spray pyrolysis produces scalable nanomaterials like metal oxides and quantum dots for diverse applications.
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