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About This Item
Linear Formula:
[-Si(CH3)2O-]n
CAS Number:
UNSPSC Code:
12352100
NACRES:
NA.21
MDL number:
vapor density
>1 (vs air)
vapor pressure
<5 mmHg ( 25 °C), 5 mmHg ( 20 °C)
manufacturer/tradename
(Xiameter® PMX-200 fluid)
refractive index
n20/D 1.403 (lit.)
viscosity
60,000 cSt(25 °C)
bp
>140 °C/0.002 mmHg (lit.)
density
0.98 g/mL at 25 °C
Quality Level
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General description
Xiameter PMX-200
Application
- Enhanced performance coatings: A study utilized silicone oil to develop regenerative superhydrophobic coatings, aimed at improving the performance and durability of high-voltage electrical insulators in cold climates. This application highlights the material′s effectiveness in environmental protection and infrastructure longevity (Khademsameni et al., 2024).
- Durable super-hydrophobicity: Silicone oil was grafted onto rough thermoplastic polyurethane surfaces to create durable super-hydrophobic properties, demonstrating a significant advancement in materials engineering for creating water-resistant surfaces (Tan et al., 2024).
Legal Information
XIAMETER is a registered trademark of The Dow Chemical Company or an affiliated company of Dow
Storage Class
10 - Combustible liquids
wgk
WGK 1
flash_point_f
214.0 °F - closed cup
flash_point_c
101.1 °C - closed cup
ppe
Eyeshields, Gloves
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Tip-growing cells have the unique property of invading living tissues and abiotic growth matrices. To do so, they exert significant penetrative forces. In plant and fungal cells, these forces are generated by the hydrostatic turgor pressure. Using the TipChip, a
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Caenorhabditis elegans is a leading model organism for studying the basic mechanisms of aging. Progress has been limited, however, by the lack of an automated system for quantitative analysis of longevity and mean lifespan. To address this barrier, we developed
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Conference proceedings : ... Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual Conference, 2012, 6281-6284 (2013-02-01)
This paper demonstrates the potential use of a new microfluidic device embedding thick electrodes for cell lysis and cell separation applications. The system consists of a microfluidic channel featuring conductive walls made of a polydimethylsiloxane (PDMS) matrix mixed with carbon
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