751138
1-(Methoxycarbonyl)ethyl benzodithioate
≥97%
Synonyme(s) :
2-[(Phenylthioxomethyl)thio]propanoic acid methyl ester
About This Item
Produits recommandés
Niveau de qualité
Essai
≥97%
Forme
liquid
Indice de réfraction
n20/D 1.6288
pb
275.2-284.4 °C
Densité
1.1777 g/mL at 25 °C
Température de stockage
2-8°C
Chaîne SMILES
S(C(C)C(=O)OC)C(=S)c1ccccc1
InChI
1S/C11H12O2S2/c1-8(10(12)13-2)15-11(14)9-6-4-3-5-7-9/h3-8H,1-2H3
Clé InChI
WPFPXUQEUXJYHU-UHFFFAOYSA-N
Application
Mention d'avertissement
Warning
Mentions de danger
Conseils de prudence
Classification des risques
Acute Tox. 4 Oral - Eye Irrit. 2 - Skin Irrit. 2 - STOT SE 3
Organes cibles
Respiratory system
Code de la classe de stockage
10 - Combustible liquids
Classe de danger pour l'eau (WGK)
WGK 3
Point d'éclair (°F)
Not applicable
Point d'éclair (°C)
Not applicable
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Articles
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We presents an article about a micro review of reversible addition/fragmentation chain transfer (RAFT) polymerization. RAFT (Reversible Addition/Fragmentation Chain Transfer) polymerization is a reversible deactivation radical polymerization (RDRP) and one of the more versatile methods for providing living characteristics to radical polymerization.
Tools for Performing ATRP
We presents an article about Copper(I)-mediated Living Radical Polymerization in the Presence of Pyridylmethanimine Ligands, and the emergence of living radical polymerization mediated by transition metal catalysts in 1995, which was a seminal piece of work in the field of synthetic polymer chemistry.
Protocoles
We presents an article featuring procedures that describe polymerization of methyl methacrylate and vinyl acetate homopolymers and a block copolymer as performed by researchers at CSIRO.
Sigma-Aldrich presents an article about RAFT, or Reversible Addition/Fragmentation Chain Transfer, which is a form of living radical polymerization.
Sigma-Aldrich presents an article about the typical procedures for polymerizing via ATRP, which demonstrates that in the following two procedures describe two ATRP polymerization reactions as performed by Prof. Dave Hadddleton′s research group at the University of Warwick.
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