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About This Item
Linear Formula:
(CH2CF2)n
CAS Number:
NACRES:
NA.23
PubChem Substance ID:
UNSPSC Code:
12162002
MDL number:
Product Name
Poly(vinylidene fluoride), average Mw ~530,000, pellets
InChI
1S/C2H2F2/c1-2(3)4/h1H2
SMILES string
FC(F)=C
InChI key
BQCIDUSAKPWEOX-UHFFFAOYSA-N
vapor pressure
15 mmHg ( 32 °C)
form
pellets
mol wt
average Mw ~530,000
Quality Level
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Related Categories
Application
- A critical analysis of the α, β and γ phases in poly (vinylidene fluoride) using FTIR: This study provides detailed insights into the different crystalline phases of PVDF, which are crucial for applications in sensors and actuators (Cai et al., 2017).
- Properties and applications of the β phase poly (vinylidene fluoride): This research explores the unique properties of the β phase of PVDF, widely used for its piezoelectric and ferroelectric properties, relevant in various technological applications (Ruan et al., 2018).
- Ultrahigh β-phase content poly (vinylidene fluoride) with relaxor-like ferroelectricity for high energy density capacitors: This article discusses the potential of high β-phase PVDF in energy storage applications, which could interest material scientists focusing on energy solutions (Meng et al., 2019).
- Multiscale-structuring of polyvinylidene fluoride for energy harvesting: This study investigates how different scales of structural modification affect the energy harvesting capabilities of PVDF, important for both material science and sustainable energy research (Wan & Bowen, 2017).
- Recent advances in poly (vinylidene fluoride) and its copolymers for lithium-ion battery separators: This review highlights the applications of PVDF in the development of lithium-ion battery separators, essential for advancing energy storage technologies (Barbosa et al., 2018).
Storage Class
11 - Combustible Solids
wgk
WGK 3
flash_point_f
Not applicable
flash_point_c
Not applicable
ppe
Eyeshields, Gloves, type N95 (US)
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Evaluation of a commercially available polyvinylidene fluoride membrane filtration system for water decontamination.
M R Francis et al.
Indian journal of medical microbiology, 31(1), 97-98 (2013-03-20)
Alois K Dexl et al.
Journal of cataract and refractive surgery, 38(10), 1808-1816 (2012-08-28)
To evaluate change in reading performance parameters after monocular Kamra corneal inlay implantation for the surgical correction of presbyopia. University surgical outpatient center. Prospective interventional case series. A corneal inlay was implanted in the nondominant eye. Naturally emmetropic and presbyopic
Xianchun Wang et al.
Protein & cell, 3(9), 661-668 (2012-08-29)
The low abundance and highly hydrophobic nature of most membrane proteins make their analysis more difficult than that for common soluble proteins. Successful membrane protein identification is largely dependent on the sample preparation including the enrichment and dissolution of the
Weijie Dong et al.
Analytical chemistry, 84(20), 8461-8466 (2012-09-07)
The isolation and characterization of mucins are critically important for obtaining insight into the molecular pathology of various diseases, including cancers and cystic fibrosis. Recently, we developed a novel membrane electrophoretic method, supported molecular matrix electrophoresis (SMME), which separates mucins
Christian M Coviello et al.
IEEE transactions on ultrasonics, ferroelectrics, and frequency control, 59(10), 2322-2330 (2012-11-13)
A new 2-D hydrophone array for ultrasound therapy monitoring is presented, along with a novel algorithm for passive acoustic mapping using a sparse weighted aperture. The array is constructed using existing polyvinylidene fluoride (PVDF) ultrasound sensor technology, and is utilized
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