In today's world, Dimethyl methylphosphonate is a relevant issue that impacts a large number of people in different aspects of their lives. Whether on an individual, societal or global level, Dimethyl methylphosphonate has gained significant importance and has generated a wide range of opinions and debates. In this article, we will delve into the world of Dimethyl methylphosphonate to analyze its origin, evolution and consequences. We will discover how Dimethyl methylphosphonate has marked a before and after in today's society and we will explore possible solutions and alternatives to address this issue effectively. Join us on this journey to better understand the importance of Dimethyl methylphosphonate in our world today.
![]() | |
![]() | |
Names | |
---|---|
Preferred IUPAC name
Dimethyl methylphosphonate | |
Other names
| |
Identifiers | |
3D model (JSmol)
|
|
ChEMBL | |
ChemSpider | |
ECHA InfoCard | 100.010.957 |
EC Number |
|
PubChem CID
|
|
UNII | |
UN number | 1993 |
CompTox Dashboard (EPA)
|
|
| |
| |
Properties | |
C3H9O3P | |
Molar mass | 124.076 g·mol−1 |
Appearance | colourless liquid |
Density | 1.145 g/mL at 25 °C |
Melting point | −50 °C (−58 °F; 223 K) |
Boiling point | 181 °C (358 °F; 454 K) |
slowly hydrolyses | |
Hazards[1] | |
Occupational safety and health (OHS/OSH): | |
Main hazards
|
Toxic |
GHS labelling: | |
![]() ![]() | |
Warning | |
H319, H340, H361f | |
P201, P305+P351+P338, P308+P310 | |
Flash point | 69 °C (156 °F; 342 K) closed cup |
Lethal dose or concentration (LD, LC): | |
LD50 (median dose)
|
|
Except where otherwise noted, data are given for materials in their standard state (at 25 °C , 100 kPa).
|
Dimethyl methylphosphonate is an organophosphorus compound with the chemical formula CH3PO(OCH3)2. It is a colourless liquid, which is primarily used as a flame retardant.
Dimethyl methylphosphonate can be prepared from trimethyl phosphite and a halomethane (e.g. iodomethane) via the Michaelis–Arbuzov reaction.[2]
Dimethyl methylphosphonate is a schedule 2 chemical as it may be used in the production of chemical weapons. It will react with thionyl chloride to produce methylphosphonic acid dichloride, which is used in the production of sarin and soman nerve agents. Various amines can be used to catalyse this process.[3] It can be used as a sarin-simulant for the calibration of organophosphorus detectors.
The primary commercial use of dimethyl methylphosphonate is as a flame retardant. Other commercial uses are a preignition additive for gasoline, anti-foaming agent, plasticizer, stabilizer, textile conditioner, antistatic agent, and an additive for solvents and low-temperature hydraulic fluids.[4] It can be used as a catalyst and a reagent in organic synthesis, as it can generate a highly reactive ylide. The yearly production in the United States varies between 100 and 1,000 short tons (91 and 907 t).[citation needed]
About 190 liters of dimethyl methylphosphonate, together with other chemicals, were released during the crash of El Al Flight 1862 at Bijlmer in Amsterdam in 1992.[5][6]