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概述二甲基甲酰胺简称DMF。为甲酸的羟基被二甲胺基取代而生成的化合物,分子式HCON(CH3)2。是一种无色 透明高沸点液体,具有淡的胺味,相对密度0.9445(25℃)。熔点-61℃。沸点152.8℃。闪点57.78℃。蒸 气密度2.51。蒸气压0.49kpa(3.7mmHg25℃)。自燃点445℃。蒸气与空气混合物爆炸极限2.2~15.2 % 。遇明火、高热可引起燃烧爆炸。能与浓硫酸、发烟硝酸剧烈反应甚至发生爆炸。能和水及大部分有机 溶剂互溶。它是化学反应的常用溶剂。纯二甲基甲酰胺是没有气味的,但工业级或变质的二甲基甲酰胺 则有鱼腥味,因其含有二甲基胺的不纯物。名称来源是由于它是甲酰胺(甲酸的酰胺)的二甲基取代物 ,而二个甲基都位于N(氮)原子上。二甲基甲酰胺是高沸点的极性(亲水性)非质子性溶剂,能促进SN2 反应机构的进行。 二甲基甲酰胺是利用蚁酸和二甲基胺制造的。二甲基甲酰胺在强碱如氢氧化钠或强 酸如盐酸或硫酸的存在下是不稳定的(尤其在高温下),并水解为蚁酸与二甲基胺。 在空气中和加热至沸时均很稳定,当温度高于350℃时即失水,生成一氧化碳和二甲胺。N,N-二甲基甲酰 胺是很好的非质子极性溶剂,能溶解多数有机物和无机物,与水、醇、醚、醛、酮、酯、卤代烃和芳烃 等均能混溶。 N,N-二甲基甲酰胺分子中带正电荷的一端被甲基包围,形成空间阻碍,使负离子不 能接近,而只缔合正离子。裸露的负离子的活性比溶剂化的负离子活性大得多。许多离子型反应在N,N- 二甲基甲酰胺中要比在一般的质子溶剂中更易进行,例如,在室温下羧酸盐与卤代烃在N,N-二甲基甲 酰胺中反应,能生成高产率的酯,特别适合于立体位阻酯的合成。
用途是优良的有机溶剂,用作聚氨酯、聚丙烯腈、聚氯乙烯的溶剂,亦用作萃取剂、医药和农药杀虫脒的原料
用途用作分析试剂和乙烯树脂、乙炔的溶剂
用途二甲基甲酰胺既是一种用途极广的化工原料,也是一种用途很广的优良的溶剂。二甲基甲酰胺对多种高聚物如聚乙烯、聚氯乙烯、聚丙烯腈、聚酰胺等均为良好的溶剂,可用于聚丙烯腈纤维等合成纤维的湿纺丝、聚氨酯的合成;用于塑料制膜;也可作去除油漆的脱漆剂;它还能溶解某些低溶解度的颜料,使颜料带有染料的特点。二甲基甲酰胺用于芳烃抽提以及用于从碳四馏分中分离回收丁二烯和从碳五馏分中分离回收异戊二烯,还可用作从石蜡中分离非烃成分的有效试剂。它对间苯二甲酸和对苯二甲酸的溶解性有良好的选择性:间苯二甲酸在二甲基甲酰胺中的溶解度大于对苯二甲酸,在二甲酸甲酰胺中进行溶剂萃取或部分结晶,可将两者分离。在石油化学工业中,二甲基甲酰胺可作为气体吸收剂,用来分离和精制气体。在有机反应中,二甲基甲酰胺不但广泛用作反应的溶剂,也是有机合成的重要中间体。农药工业中可用来生产杀虫脒;医药工业中可用于合成碘胺嘧啶、强力霉素、可的松、维生素B6、碘苷、驱蛲净、噻嘧啶、N-甲酰溶肉瘤素、抗瘤氨酸、甲氧芳芥、卞氮芥、环己亚硝脲、呋氟脲嘧啶、止血环酸、倍分美松、甲地孕酮、胆维他、扑尔敏等等。二甲基甲酰胺在加氢、脱氢、脱水和脱卤化氢的反应中具有催化作用,使反应温度降低,产品纯度提高。
用途非水溶液滴定溶剂。乙烯树脂和乙炔的溶剂。光度测定。气相色谱固定液(最高使用温度50℃,溶剂为甲醇),分离分析C2~C5烃,并能分离正、异丁烯和顺、反2丁烯。农药残留量分析。有机合成。肽的合成。照相工业用。
REFERENCE
制备N,N-二甲基甲酰胺(DMF)可由CO与(CH3)2NH直接合成,称为一步法,即以甲醇钠作为催化剂,将CO与(CH3)2NH在120℃、1.8MPa下合成而得。
生产方法自从1899年用甲酸与二甲胺反应首次合成二甲基甲酰胺以后,发展了以不同原料合成二甲基甲酰胺的工艺方法,如二甲胺-一氧化碳法、甲酰胺-二甲胺法、氰氢酸-甲醇法、乙腈-甲醇法、甲酸甲酯-二甲胺法、三氯乙醛-二甲胺法等等。但目前国外的工业化生产仍以二甲胺-一氧化碳法为主。1.甲酸甲酯-二甲胺法由甲酸与甲醇酯化生成甲酸甲酯,然后与二甲胺气相反应生成二甲基甲酰胺,再经蒸馏回收甲醇和未反应的甲酸甲酯后进行减压精馏制得成品。2.二甲胺-一氧化碳法由二甲胺与一氧化碳在甲醇钠作用下,直接反应而得。反应条件是1.5-2.5MPa和110-150℃。粗品经精馏制得成品。3.由一氧化碳和甲醇在高压和80-100℃温度下经羰基合成得甲酸甲酯,然后再与二甲胺反应生成二甲基甲酰胺,精馏后得到成品。4.三氯乙醛法由三氯乙醛与二甲胺反应而得。
REFERENCE
化学性质无色透明液体。 为极性惰性溶剂。除卤化烃以外能与水及多数有机溶剂任意混合。
REFERENCE
急性毒性口服- 大鼠 LD50: 2800 毫克/ 公斤; 口服- 小鼠 LD50: 3750 毫克/ 公斤
刺激数据眼- 兔子 100 毫克 重度
职业标准TLV-TWA 10 PPM (30 毫克/ 立方米); STEL 20 PPM (60 毫克/ 立方米)
REFERENCE
爆炸物危险特性与空气混合可爆
可燃性危险特性遇明火、高温、强氧化剂可燃;燃烧排放有毒氮氧化物烟雾
储运特性包装完整、轻装轻卸; 库房通风、远离明火、高温、与氧化剂、酸分开存放
灭火剂泡沫、干粉、二氧化碳、砂土
UPSTREAM / DOWNSTREAM
SUPPLIERS
COMPUTED
PROPERTIES
pH = 6.7 (0.5 molar solution in water)
-1.01
log Kow = -1.01
-1.01
-0.87
Fishy odor
Faint, amine-like odor
0.95 at 68 °F (USCG, 1999) - Less dense than water; will float
0.9445 at 25 °C/4 °C
Relative density (water = 1): 0.95
0.95
0.9455 @25 °C
0.95
0.802 cP at 25 °C
0.85 mm²/s at 25 °C
Colorless to very slightly yellow liquid
Water-white liquid
greater than or equal to 100 mg/mL at 72 °F (NTP, 1992)
1000000
Miscible with water and most common organic solvents
Miscible with ethanol, ethyl ether, acetone, benzene; slightly soluble in ligroin
1000000 mg/L at 25 °C
Solubility in water: miscible
Pure dimethylformamide is essentially noncorrosive to metals. However, copper, tin and their alloys should be avoided.
153 °F (NTP, 1992)
58 °C, closed cup
67 °C (open cup); 58 °C (Closed cup)
136 °F (58 °C)
58 °C c.c.
136 °F
300 to 313 °F at 760 mmHg (NTP, 1992)
153
152.8 °C
BP: 76 °C at 39 mm Hg; 25 °C at 3.7 mm Hg
153 °C
307 °F
When heated to decomposition it emits toxic fumes of /nitrogen oxides/.
Temperatures >350 °C may cause decomposition to form dimethylamine and carbon dioxide, with pressure developing in closed containers.
-78 °F (NTP, 1992)
-60.4
-60.3 °C
-60.4 °C
-61 °C
-78 °F
GHS
Danger
H312: Harmful in contact with skin [Warning Acute toxicity, dermal];H319: Causes serious eye irritation [Warning Serious eye damage/eye irritation];H332: Harmful if inhaled [Warning Acute toxicity, inhalation];H360D ***: May damage the unborn child [Danger Reproductive toxicity]
P203, P261, P264+P265, P271, P280, P302+P352, P304+P340, P305+P351+P338, P317, P318, P321, P337+P317, P362+P364, P405, and P501 (click each P-code to see the statement)
This chemical does not meet GHS hazard criteria for < 0.1% (1 of 1434) of reports.
HAZARDS
Chemical: Formamide, N,N-dimethyl-
Hazard Traits - Carcinogenicity; Dermatotoxicity; Hepatotoxicity and Digestive System Toxicity; Reproductive Toxicity; Respiratory Toxicity;Authoritative List - CA TACs; EC Annex VI CMRs - Cat. 1B; IARC Carcinogens - 2A; OEHHA RELs; Prop 65;Report - regardless of intended function of ingredient in the product
Formamide, N,N-dimethyl- is listed on the EPA's Chemical Data Reporting (CDR) system. Manufacturers and importers of Formamide, N,N-dimethyl- are required to report information about their production and use of this chemical to the EPA under the Toxic Substances Control Act (TSCA). (40 eCFR Part 711)
Status: Active Update: 17-12-2022 https://echa.europa.eu/registration-dossier/-/registered-dossier/15093;Status: Cease Manufacture Update: 13-08-2013 https://echa.europa.eu/registration-dossier/-/registered-dossier/6164
Restricted substance: N,N-dimethylformamide;EC: 200-679-5;Restriction condition document: PDF link
Substance: N,N-dimethylformamide;EC: 200-679-5;Date of inclusion: >19-Dec-2012;Reason for inclusion: Toxic for reproduction (Article 57c)
IMAP assessments - Formamide, N,N-dimethyl-: Human health tier II assessment;IMAP assessments - Formamide, N,N-dimethyl-: Environment tier I assessment
Flammable Liquid
Special Hazards of Combustion Products: Vapors are irritating (USCG, 1999)
· HIGHLY FLAMMABLE: Will be easily ignited by heat, sparks or flames.;· Vapors may form explosive mixtures with air.;· Vapors may travel to source of ignition and flash back.;· Most vapors are heavier than air. They will spread along the ground and collect in low or confined areas (sewers, basements, tanks, etc.).;· Vapor explosion hazard indoors, outdoors or in sewers.;· Those substances designated with a (P) may polymerize explosively when heated or involved in a fire.;· Runoff to sewer may create fire or explosion hazard.;· Containers may explode when heated.;· Many liquids will float on water.
Flammable. Gives off irritating or toxic fumes (or gases) in a fire. Above 58 °C explosive vapour/air mixtures may be formed.
Combustible
Flammable liquid when exposed to heat or flame.
Irritation of eyes, skin and nose. May cause nausea. (USCG, 1999)
· May cause toxic effects if inhaled or absorbed through skin.;· Inhalation or contact with material may irritate or burn skin and eyes.;· Fire will produce irritating, corrosive and/or toxic gases.;· Vapors may cause dizziness or asphyxiation, especially when in closed or confined areas.;· Runoff from fire control or dilution water may cause environmental contamination.
Dimethylformamide is used as an industrial solvent and in the production of fibers, films, and surface coatings. Acute (short-term) exposure to dimethylformamide has been observed to damage the liver in animals and in humans. Symptoms of acute exposure in humans include abdominal pain, nausea, vomiting, jaundice, alcohol intolerance, and rashes. Chronic (long-term) occupational exposure to dimethylformamide by inhalation has resulted in effects on the liver and digestive disturbances in workers. Human studies suggested a possible association between dimethylformamide exposure and testicular cancer, but further studies failed to confirm this relationship. EPA has not classified dimethylformamide with respect to its carcinogenicity.
Liquid causes first degree burns on short exposure; [CHRIS] Contact dermatitis reported in epoxy resin handler; Also can provoke alcohol-induced flushing; [Kanerva, p. 1786] DMF is toxic to the liver. [Reference #1] May cause liver injury and jaundice; [ICSC] Animals exposed to single lethal doses have CNS depression, anesthesia, convulsions, and coma. [HSDB] In the list of 15 chemicals classified as potentially fetotoxic even if MAK value observed; [Reference #2] Detailed reviews of these data indicate adverse effects on reproductive and teratogenic endpoints, but only at maternal toxicity. [ACGIH] See Carcinogenicity of some industrial chemicals, Volume 115. [IARC, News Release, 23 February 2016] The BEI for Total N-methylformamide (NMF), which represents the sum of N-methylformamide (NMF) and N-(hydroxymethyl)-N-methylformamide (HMMF), is intended to protect almost all workers from liver damage due to exposure to N,N-dimethylformamide (DMF) by all routes of exposure. [ACGIH: BEI Documentation]
2265 129
2265 129
Dimethylformamide is an indirect food additive for use only as a component of adhesives.
Amides and Imides
Symbol: T; R: 61-20/21-36; S: 53-45; Note: E
UN Hazard Class: 3; UN Pack Group: III
SAFETY
Excerpt from ERG Guide 129 [Flammable Liquids (Water-Miscible / Noxious)]:;CAUTION: The majority of these products have a very low flash point. Use of water spray when fighting fire may be inefficient.;SMALL FIRE: Dry chemical, CO2, water spray or alcohol-resistant foam. Do not use dry chemical extinguishers to control fires involving nitromethane (UN1261) or nitroethane (UN2842).;LARGE FIRE: Water spray, fog or alcohol-resistant foam. Avoid aiming straight or solid streams directly onto the product. If it can be done safely, move undamaged containers away from the area around the fire.;FIRE INVOLVING TANKS, RAIL TANK CARS OR HIGHWAY TANKS: Fight fire from maximum distance or use unmanned master stream devices or monitor nozzles. Cool containers with flooding quantities of water until well after fire is out. Withdraw immediately in case of rising sound from venting safety devices or discoloration of tank. ALWAYS stay away from tanks in direct contact with flames. For massive fire, use unmanned master stream devices or monitor nozzles; if this is impossible, withdraw from area and let fire burn. (ERG, 2024)
Use water spray, powder, alcohol-resistant foam, carbon dioxide. In case of fire: keep drums, etc., cool by spraying with water.
Fresh air, rest. Refer for medical attention.
Remove contaminated clothes. Rinse and then wash skin with water and soap. Refer for medical attention .
First rinse with plenty of water for several minutes (remove contact lenses if easily possible), then refer for medical attention.
Rinse mouth. Do NOT induce vomiting. Refer for medical attention .
· CALL 911. Then call emergency response telephone number on shipping paper. If shipping paper not available or no answer, refer to appropriate telephone number listed on the inside back cover.;· Keep unauthorized personnel away.;· Stay upwind, uphill and/or upstream.;· Ventilate closed spaces before entering, but only if properly trained and equipped.
· ELIMINATE all ignition sources (no smoking, flares, sparks or flames) from immediate area.;· All equipment used when handling the product must be grounded.;· Do not touch or walk through spilled material.;· Stop leak if you can do it without risk.;· Prevent entry into waterways, sewers, basements or confined areas.;· A vapor-suppressing foam may be used to reduce vapors.;· Absorb or cover with dry earth, sand or other non-combustible material and transfer to containers.;· Use clean, non-sparking tools to collect absorbed material.;Large Spill;· Dike far ahead of liquid spill for later disposal.;· Water spray may reduce vapor, but may not prevent ignition in closed spaces.
EYES: First check the victim for contact lenses and remove if present. Flush victim's eyes with water or normal saline solution for 20 to 30 minutes while simultaneously calling a hospital or poison control center. Do not put any ointments, oils, or medication in the victim's eyes without specific instructions from a physician. IMMEDIATELY transport the victim after flushing eyes to a hospital even if no symptoms (such as redness or irritation) develop.;SKIN: IMMEDIATELY flood affected skin with water while removing and isolating all contaminated clothing. Gently wash all affected skin areas thoroughly with soap and water. If symptoms such as redness or irritation develop, IMMEDIATELY call a physician and be prepared to transport the victim to a hospital for treatment.;INHALATION: IMMEDIATELY leave the contaminated area; take deep breaths of fresh air. If symptoms (such as wheezing, coughing, shortness of breath, or burning in the mouth, throat, or chest) develop, call a physician and be prepared to transport the victim to a hospital. Provide proper respiratory protection to rescuers entering an unknown atmosphere. Whenever possible, Self-Contained Breathing Apparatus (SCBA) should be used; if not available, use a level of protection greater than or equal to that advised under Protective Clothing.;INGESTION: DO NOT INDUCE VOMITING. If the victim is conscious and not convulsing, give 1 or 2 glasses of water to dilute the chemical and IMMEDIATELY call a hospital or poison control center. Be prepared to transport the victim to a hospital if advised by a physician. If the victim is convulsing or unconscious, do not give anything by mouth, ensure that the victim's airway is open and lay the victim on his/her side with the head lower than the body. DO NOT INDUCE VOMITING. IMMEDIATELY transport the victim to a hospital. (NTP, 1992)
General First Aid:;· Call 911 or emergency medical service.;· Ensure that medical personnel are aware of the material(s) involved, take precautions to protect themselves and avoid contamination.;· Move victim to fresh air if it can be done safely.;· Administer oxygen if breathing is difficult.;· If victim is not breathing:;-- DO NOT perform mouth-to-mouth resuscitation; the victim may have ingested or inhaled the substance.;-- If equipped and pulse detected, wash face and mouth, then give artificial respiration using a proper respiratory medical device (bag-valve mask, pocket mask equipped with a one-way valve or other device).;-- If no pulse detected or no respiratory medical device available, provide continuous compressions. Conduct a pulse check every two minutes or monitor for any signs of spontaneous respirations.;· Remove and isolate contaminated clothing and shoes.;· For minor skin contact, avoid spreading material on unaffected skin.;· In case of contact with substance, remove immediately by flushing skin or eyes with running water for at least 20 minutes.;· For severe burns, immediate medical attention is required.;· Effects of exposure (inhalation, ingestion, or skin contact) to substance may be delayed.;· Keep victim calm and warm.;· Keep victim under observation.;· For further assistance, contact your local Poison Control Center.;· Note: Basic Life Support (BLS) and Advanced Life Support (ALS) should be done by trained professionals.;Specific First Aid:;· Wash skin with soap and water.
(General first aid procedures);Eye: Irrigate immediately - If this chemical contacts the eyes, immediately wash (irrigate) the eyes with large amounts of water, occasionally lifting the lower and upper lids. Get medical attention immediately.;Skin: Water flush promptly - If this chemical contacts the skin, flush the contaminated skin with water promptly. If this chemical penetrates the clothing, immediately remove the clothing and flush the skin with water promptly. If irritation persists after washing, get medical attention.;Breathing: Respiratory support;Swallow: Medical attention immediately - If this chemical has been swallowed, get medical attention immediately.
Separated from incompatible materials. See Chemical Dangers.
· Wear positive pressure self-contained breathing apparatus (SCBA).;· Structural firefighters' protective clothing provides thermal protection but only limited chemical protection.
Biological Exposure Indices (BEI) [ACGIH] - N-Methylformamide in urine = 30 mg/L at end of shift; N-Acetyl-S-(N-methylcarbamoyl)cysteine in urine = 30 mg/L at end of shift at end of workweek; [TLVs and BEIs]
5.0 [ppm]
Wear self contained breathing apparatus for fire fighting if necessary.
Suitable extinguishing media: Use water spray, alcohol-resistant foam, dry chemical or carbon dioxide.
Use water spray to cool unopened containers.
If material on fire or involved in fire: Use water in flooding quantities as fog. Solid streams of water may be ineffective. Use "alcohol" foam, dry chemical or carbon dioxide. Apply water from as far a distance as possible. Keep run-off water out of sewers and water sources.
Keep container tightly closed in a dry and well-ventilated place. Containers which are opened must be carefully resealed and kept upright to prevent leakage. Handle and store under inert gas.
Ideal materials for ... storage are nonalloy (carbon) steels, austenitic chromium nickel steels ... and aluminum. Seals ... should be made of polytetrafluoroethylene, polyethylene or polypropylene of high molecular weight. Ethylene-propylene rubber may also be used. Graphite can be used for lubricating moving parts in contact with DMF ... Since dimethylformamide (DMF) is hygroscopic, it should be kept under a blanket of dry nitrogen. High purity DMF, as required for acrylic fibers, is best stored in aluminum tanks.
Use personal protective equipment. Avoid breathing vapors, mist or gas. Ensure adequate ventilation. Remove all sources of ignition. Evacuate personnel to safe areas. Beware of vapors accumulating to form explosive concentrations. Vapors can accumulate in low areas.
Prevent further leakage or spillage if safe to do so. Do not let product enter drains.
Contain spillage, and then collect with an electrically protected vacuum cleaner or by wet-brushing and place in container for disposal according to local regulations.
Excerpt from ERG Guide 129 [Flammable Liquids (Water-Miscible / Noxious)]:;ELIMINATE all ignition sources (no smoking, flares, sparks or flames) from immediate area. All equipment used when handling the product must be grounded. Do not touch or walk through spilled material. Stop leak if you can do it without risk. Prevent entry into waterways, sewers, basements or confined areas. A vapor-suppressing foam may be used to reduce vapors. Absorb or cover with dry earth, sand or other non-combustible material and transfer to containers. Use clean, non-sparking tools to collect absorbed material.;LARGE SPILL: Dike far ahead of liquid spill for later disposal. Water spray may reduce vapor, but may not prevent ignition in closed spaces. (ERG, 2024)
SRP: The most favorable course of action is to use an alternative chemical product with less inherent propensity for occupational harm/injury/toxicity or environmental contamination. Recycle any unused portion of the material for its approved use or return it to the manufacturer or supplier. Ultimate disposal of the chemical must consider: the material's impact on air quality; potential migration in soil or water; effects on animal and plant life; and conformance with environmental and public health regulations.
SRP: Wastewater from contaminant suppression, cleaning of protective clothing/equipment, or contaminated sites should be contained and evaluated for subject chemical or decomposition product concentrations. Concentrations shall be lower than applicable environmental discharge or disposal criteria. Alternatively, pretreatment and/or discharge to a permitted wastewater treatment facility is acceptable only after review by the governing authority and assurance that "pass through" violations will not occur. Due consideration shall be given to remediation worker exposure (inhalation, dermal and ingestion) as well as fate during treatment, transfer and disposal. If it is not practicable to manage the chemical in this fashion, it must be evaluated in accordance with EPA 40 CFR Part 261, specifically Subpart B, in order to determine the appropriate local, state and federal requirements for disposal.
Recovering: Burn in soln in flammable solvent in furnace equipped with alkali scrubber. Recovery and recycle is an alternative to disposal for dimethyl formamide (DMF) from fiber spin baths and from PVC /polyvinyl chloride/ reactor cleaning solvents. Recommendable method: Incineration.
Product: Burn in a chemical incinerator equipped with an afterburner and scrubber but exert extra care in igniting as this material is highly flammable. Offer surplus and non-recyclable solutions to a licensed disposal company. Contact a licensed professional waste disposal service to dispose of this material.
Contaminated packaging: Dispose of as unused product.
Personal protection: complete protective clothing including self-contained breathing apparatus. Ventilation. Remove all ignition sources. Collect leaking and spilled liquid in sealable containers as far as possible. Absorb remaining liquid in sand or inert absorbent. Then store and dispose of according to local regulations.
TOXICITY
N,N-Dimethylformamide was detected in the urine of synthetic leather factory workers(1); the ave and range of concentrations at the end of shift were 449 ug/L and 100-990 ug/L, respectively, for workers exposed to N,N-dimethylformamide in the workplace(1). Urinary levels of N,N-dimethylformamide (detected as N-monomethylformamide) for workers at leather, polyurethane, and shoe-sole production facilities were 19.7 ppm, 7.8 ppm, and 2.6 ppm, respectively(2).
As there is no antidote for dimethyl formamide poisoning, treatment is mainly supportive and symptomatic. (T36)
In acetone pretreated male CD 1 mice, dimethy1formamide, given as a single ip dose of 1000 mg/kg bw, resulted in liver necrosis and a strong incr in serum alanine aminotransferase activity. In contrast, no signs of hepatotoxicity were found in non pretreated mice given the same dose or in pretreated or nonpretreated male Sprague Dawley rats given up to 2000 mg/kg bw as a single ip dose. These differences are probably related to the highly different substrate affinities of CYP2EI in rats and mice.
In a study of 102 workers, 19 had experienced manifestation of alcohol intolerance, among them facial flushing, sweating, dizziness, and palpitation, mainly within 24 hr of exposure /to DMF/. Of the 34 episodes recorded, 26 occurred after the workers had consumed alcoholic drinks.
Among the work population that included a total of 13 workers, seven had abdominal colic which was sustained for more than 3 days, three had abnormal liver function, and two had facial flushing. /DMF (Dimethylformamide) exposure/
A veterinary euthanasia drug containing embutramide, mebezonium, tetracaine, and dimethylformamide (DMF; T-61 or Tanax) may cause serious manifestations or even fatalities after self-poisoning. Immediate toxicity is mainly due to a general anesthetic and due to a neuromuscular blocking agent, while delayed hepatotoxicity seems related to the solvent DMF. The protective role of N-acetylcysteine (NAC) administration remains debatable. Two male veterinarians (50- and 44-year-old) attempted suicide by injecting T-61 in the precordial area for the first one, and by ingesting 50 mL for the second. Both received NAC (for 14 days in the first case and only for 20 hr in the second). Urine was collected for the serial determination of DMF, N-methylformamide (NMF), and N-acetyl-S-(N-methylcarbamoyl)cysteine (AMCC). Both patients developed only mild signs of liver injury. The metabolite of DMF, NMF, appeared rapidly in the urine, while a further delay was necessary for AMCC excretion. The kinetics of elimination of DMF and DMF metabolites were slightly slower than those reported in exposed workers. While both patients had a favorable outcome, there is no clear evidence that NAC could directly influence NMF and AMCC excretion...
For more Interactions (Complete) data for N,N-DIMETHYLFORMAMIDE (12 total), please visit the HSDB record page.
Hepatic
Eyes, skin, respiratory system, liver, kidneys, cardiovascular system
Dimethyl formamide is a known hepatatotoxin. It may also cause birth defects, kidney damage, and temporary alcohol intolerance. (L1658)
LC50; Species: /Oncorhynchus mykiss/ (rainbow trout) weight 0.8 g; Conditions: static bioassay; Concentration: 12,000 mg/L for 96 hr (95% confidence limits 10,000-13,000 mg/L)
LC50; Species: Pimephales promelas (fathead minnow) weight 0.12 g; Conditions: flow through bioassay, water hardness 45.5 mg/L CaCO3, 25 +/- 1 °C, pH 7.5, dissolved oxygen >60% of saturation; Concentration: 1430 mg/L for 96 hr
EC50; Species: Anabaena inaequalis (Blue-Green Algae) 1X10+6 cells/mL; Conditions: freshwater, static; Concentration: 0.6% for 10-14 days (95% confidence interval: 0.36-0.84%); Effect: growth, general /formulation/
EC50; Species: Daphnia magna (Water flea) age <24 hr; Conditions: freshwater, static, 20.5 °C, pH 7.04-7.97, hardness 46.4 (40.4-56.3) mg/L CaCO3, alkalinity 41.7 (30.0-46.0) mg/L CaCO3, dissolved oxygen 85.5 (77.5-90.8) mg/L; Concentration: 26300000 ug/L for 24 hr (95% confidence interval: 23400000-29600000 ug/L); Effect: intoxication, immobilization
For more Ecotoxicity Values (Complete) data for N,N-DIMETHYLFORMAMIDE (28 total), please visit the HSDB record page.
TERRESTRIAL FATE: Based on a classification scheme(1), an estimated Koc value of 1(SRC), determined from a structure estimation method(2), indicates that N,N-dimethylformamide is expected to have very high mobility in soil(SRC). Volatilization of N,N-dimethylformamide from moist soil surfaces is not expected to be an important fate process(SRC) given a Henry's Law constant of 7.39X10-8 atm-cu m/mole(3). N,N-Dimethylformamide is expected to volatilize from dry soil surfaces(SRC) based upon a vapor pressure of 3.87 mm Hg at 25 °C(4). N,N-Dimethylformamide may biodegrade in soil based upon river die-away tests (100% in 6 days)(5), however, utilizing the Japanese MITI test, only 4.4% of the theoretical BOD was reached in 2 weeks(6).
AQUATIC FATE: Based on a classification scheme(1), an estimated Koc value of 1(SRC), determined from a structure estimation method(2), indicates that N,N-dimethylformamide is not expected to adsorb to suspended solids and sediment(SRC). Volatilization from water surfaces is not expected(3) based upon a Henry's Law constant of 7.39X10-8 atm-cu m/mole(4). According to a classification scheme(5), BCFs of 0.3-1.2(6), suggest bioconcentration in aquatic organisms is low(SRC). Hydrolysis is not expected to be an important environmental fate process since neutral hydrolysis rate constants for amides are <10-9/sec under environmental conditions (pH 5 to 9)(7). N,N-Dimethylformamide may biodegrade in the aqueous environment based on river die-away tests (100% in 6 days)(8); however, utilizing the Japanese MITI test, only 4.4% of the theoretical BOD was reached in 2 weeks(6).
ATMOSPHERIC FATE: According to a model of gas/particle partitioning of semivolatile organic compounds in the atmosphere(1), N,N-dimethylformamide, which has a vapor pressure of 3.87 mm Hg at 25 °C(2), is expected to exist solely as a vapor in the ambient atmosphere. Vapor-phase N,N-dimethylformamide is degraded in the atmosphere by reaction with photochemically-produced hydroxyl radicals(SRC); the half-life for this reaction in air is estimated to be 20 hours(SRC), calculated from its rate constant of 1.8X10-11 cu cm/molecule-sec at 25 °C(SRC) that was derived using a structure estimation method(3). N,N-Dimethylformamide contains chromophores that absorb at wavelengths >290 nm(4) and, therefore, may be susceptible to direct photolysis by sunlight(SRC).
Neurotoxin - Acute solvent syndrome;Occupational hepatotoxin - Primary hepatotoxins: the toxic effect to the liver is the principal adverse effect of the chemical.;Dermatotoxin - Skin burns.;IARC Carcinogen - Class 2: International Agency for Research on Cancer classifies chemicals as probable (2a), or possible (2b) human carcinogens.;ACGIH Carcinogen - Confirmed Animal.
The substance can be absorbed into the body by inhalation and through the skin.
inhalation, skin absorption, ingestion, skin and/or eye contact
Oral ; inhalation ; dermal
Dimethylformamide ... is an organic solvent produced in large quantities through-out the world. It is used in the chemical industry as a solvent, an intermediate & an additive. Dimethylformamide is a colorless liquid with an unpleasant slight odor that ... has poor warning properties & individuals may be exposed through the inhalation of vapor. Occupational exposure occurs via skin contact with dimethylformamide liquid & vapors. ... Toxic amounts of dimethylformamide may be absorbed by inhalation & through the skin. Absorbed dimethylformamide is distributed uniformily. The /metabolism/ of dimethylformamide takes place mainly in the liver, with the aid of microsomal enzyme systems. In animals & humans, the main product of dimethylformamide biotransformation is N-hydroxymethyl-N-methylformamide. This metabolite is converted during gas chromatographic analysis to N-methylformamide, which itself (together with N-hydroxymethylformamide & formamide) a minor metabolite. ... In metabolic studies & biological monitoring, urinary concentration are expressed as N-hydroxymethylformamide. ... The determination of the /metabolites/ ... in the urine may be a suitable biological indicator of total dimethylformamide exposure. In experimental animals, it has been demonstrated that dimethylformamide metabolism is saturated at high levels &, at very high levels, dimethylformamide inhibits its own metabolism. Metabolic interaction occurs between dimethylformamide & ethanol. ... The effects of dimethylformamide on the environment have not been well studied. The toxicity for aquatic organisms appears to be low ... The acute toxicity of dimethylformamide in a variety of species is low ... . It is a slight to moderate skin & eye irritant. One study on guinea pigs indicated no sensitization potential. Dimethylformamide can facilitate the absorption of other chemical substances through the skin. Exposure of experimental animals to dimethylformamide via all routes of exposure may cause dose re
While the mechanism of action of dimethyl formamide has not bee fully elucidated, thiocarbamate pesticides have been shown to inhibit aldehyde dehydrogenases. (A2459)
Sore throat. Abdominal pain. Diarrhoea. Vomiting. Symptoms may be delayed.
MAY BE ABSORBED! See Inhalation.
Redness. Pain.
Aspiration hazard! Abdominal pain. Jaundice.
irritation eyes, skin, respiratory system; nausea, vomiting, colic; liver damage, enlarged liver; high blood pressure; face flush; dermatitis; In Animals: kidney, heart damage
Symptoms of dimethyl formamide exposure may include abdominal pain, nausea, vomiting, dizziness, fatigue, headache, loss of appetite, and temporary alcohol intolerance. (L1658)
Chemical: DIMETHYL FORMAMIDE
REGULATORY
Chemical: Formamide, N,N-dimethyl-
Hazard Traits - Carcinogenicity; Dermatotoxicity; Hepatotoxicity and Digestive System Toxicity; Reproductive Toxicity; Respiratory Toxicity;Authoritative List - CA TACs; EC Annex VI CMRs - Cat. 1B; IARC Carcinogens - 2A; OEHHA RELs; Prop 65;Report - regardless of intended function of ingredient in the product
Formamide, N,N-dimethyl- is listed on the EPA's Chemical Data Reporting (CDR) system. Manufacturers and importers of Formamide, N,N-dimethyl- are required to report information about their production and use of this chemical to the EPA under the Toxic Substances Control Act (TSCA). (40 eCFR Part 711)
Status: Active Update: 17-12-2022 https://echa.europa.eu/registration-dossier/-/registered-dossier/15093;Status: Cease Manufacture Update: 13-08-2013 https://echa.europa.eu/registration-dossier/-/registered-dossier/6164
Restricted substance: N,N-dimethylformamide;EC: 200-679-5;Restriction condition document: PDF link
Substance: N,N-dimethylformamide;EC: 200-679-5;Date of inclusion: >19-Dec-2012;Reason for inclusion: Toxic for reproduction (Article 57c)
Dimethylformamide is an indirect food additive for use only as a component of adhesives.
Pursuant to section 8(d) of TSCA, EPA promulgated a model Health and Safety Data Reporting Rule. The section 8(d) model rule requires manufacturers, importers, and processors of listed chemical substances and mixtures to submit to EPA copies and lists of unpublished health and safety studies. N,N,-Dimethylformamide is included on this list. Effective date: 4/13/89; Sunset date: 12/19/95.
This action promulgates standards of performance for equipment leaks of Volatile Organic Compounds (VOC) in the Synthetic Organic Chemical Manufacturing Industry (SOCMI). The intended effect of these standards is to require all newly constructed, modified, and reconstructed SOCMI process units to use the best demonstrated system of continuous emission reduction for equipment leaks of VOC, considering costs, non air quality health and environmental impact and energy requirements. N,N,-Dimethylformamide is produced, as an intermediate or a final product, by process units covered under this subpart.
Listed as a hazardous air pollutant (HAP) generally known or suspected to cause serious health problems. The Clean Air Act, as amended in 1990, directs EPA to set standards requiring major sources to sharply reduce routine emissions of toxic pollutants. EPA is required to establish and phase in specific performance based standards for all air emission sources that emit one or more of the listed pollutants. N,N-Dimethyl formamide is included on this list.
Persons in charge of vessels or facilities are required to notify the National Response Center (NRC) immediately, when there is a release of this designated hazardous substance, in an amount equal to or greater than its reportable quantity of 100 lb or 45.4 kg. The toll free number of the NRC is (800) 424-8802. The rule for determining when notification is required is stated in 40 CFR 302.4 (section IV.D.3.b).
(FL) FLORIDA 700 ug/L
(ME) MAINE 700 ug/L
PHARMACOLOGY
N,N-Dimethylformamide (DMF) is an organic solvent extensively used in industries such as synthetic leather, fibers and films, and induces liver toxicity and carcinogenesis. Despite a series of experimental and clinical reports on DMF-induced liver failure, the mechanism of toxicity is yet unclear. This study investigated whether DMF in combination with a low dose of hepatotoxicant enhances hepatotoxicity, and if so, on what mechanistic basis. Treatment of rats with either DMF (50-500 mg/kg/day, for 3 days) or a single low dose of CCl(4) (0.2mL/kg) alone caused small increases in plasma transaminases and lactate dehydrogenase activities. However, combinatorial treatment of DMF with CCl(4) markedly increased blood biochemical changes. Histopathology confirmed the synergism in hepatotoxicity. Moreover, DMF+CCl(4) caused PARP cleavage and caspase-3 activation, but decreased the level of Bcl-xL, all of which confirmed apoptosis of hepatocytes. Consistently, DMF+CCl(4) treatment markedly increased lipid peroxidation. By contrast, treatment of DMF in combination with lipopolysaccharide, acetaminophen or d-galactosamine caused no enhanced hepatotoxicity. Given the link between endoplasmic reticulum (ER) dysfunction and cell death, ER stress response was monitored after DMF and/or CCl(4) treatment. Whereas either DMF or CCl(4) treatment alone marginally changed the expression levels of glucose-regulated protein 78 and 94 and phosphorylated PKR-like ER-localized eIF2alpha kinase, concomitant treatment with DMF and CCl(4) synergistically induced them with increases in glucose-regulated protein 78 and C/EBP homologous protein mRNAs. /These/ results demonstrate that DMF treatment in combination with CCl(4) synergistically increases hepatocyte death, which may be associated with the induction of severe ER stress.
Whole body: 4 hours; [TDR, p. 551]
N,N-dimethylformamide (DMF) is metabolized by the microsomal cytochrome p-450 into mainly N-hydroxymethyl- N-methylformamide (HMMF), which further breaks down to N-methyformamide (NMF). However, the detailed mechanism of its toxicity remains unclear. We investigated the metabolism and the toxicity of DMF using the isolated perfused liver model. DMF was added to the recirculating perfusate of the isolated perfused rat liver at concentrations of 0, 10 and 25 mM. Samples were collected from the inferior vena cava at 0, 30, 45, 60, 75, and 90 minutes following addition of the DMF. The metabolites of DMF were analyzed using Gas-chromatography (GC). The changes in the rate of oxygen consumption by the DMF were monitored during perfusion. The enzyme activities (aspartic aminotransferase:AST, alanine aminotransferase:ALT, and lactic dehydrogenase:LDH)) in the perfusate were monitored to see if DMF caused hepatotoxicity. As the perfusion progressed, the DMF concentration in the perfusate decreased, but the level of NMF increased to a maximum of 1.16 mM. The rate of oxygen consumption increased at DMF concentrations of 10 mM and 25 mM. However, when a known inhibitor of cytochrome P-450, SKF 525A (300 uM), was used to pretreat the perfusate prior to the addition of the DMF, the rate of oxygen consumption was significantly inhibited, indicating the cytochrome P-450 system was responsible for the conversion of DMF to NMF. On addition of the DMF, the activities of the enzymes AST, ALT and LDH were significantly increased a time and dose dependent manner. However, following pretreatment with SKF 525A, their releases were inhibited.
... Two groups of workers investigated metab of DMF on volunteers. ... Both found that majority of absorbed substance is eliminated within 24 hr and that main urinary metabolite is n-methyl formamide. Its concn was related to intensity of exposure.
It is known that dimethylformamide is metabolized in man by sequential N-demethylation to methylformamide and formamide, which are largely eliminated in the urine.
Blood and urine samples of rats and dogs which had been exposed to DMF were examined by GLC analysis and N-methylformamide(NMF) and formamide were detected in addition to DMF. These metabolites were eliminated faster in rats than in dogs. It has been suggested recently that the major metabolite of DMF which has been characterized an NMF by GLC is no NMF but N-hydroxymethyl-N-methylformamide (HMMF). HMMF is the immediate product of methyl C-hydroxylation of DMF and is a relatively stable carbinolamide in aqueous soln. It is, however thermally labile so that it decomposes quantitatively to NMF and presumably formaldehyde on the GLC column. The evidence that the metabolite which has been characterized as NMF is really HMMF is based on three studies. /One study/ found a formaldehyde precursor in the urine of mice which had received DMF. This metabolite liberated formaldehyde only after alkaline hydrolysis. In aqueous soln, authentic HMMF also decomposed to formaldehyde only on alkaline hydrolysis. /Another study/ isolated a urinary metabolite of DMF in rats by HPLC and subjected it to mass spectrometric analysis. The observed fragmentation pattern suggested the presence of HMMF, even though the mass fragments, including the one corresponding to the molecular ion, were also detected in control urine samples. Unequivocal evidence for the contention that HMMF and not NMF is the major metabolite of DMF was recently obtained by high-field proton NMF spectroscopy of urine samples of mice which had received DMF. HMMF exists in 2 rotameric forms and the methyl and formyl protons in the two rotamers are not equivalent. The resonance frequencies corresponding to the methyl and formyl protons of both rotamers were prominent signals in the NMR spectrum of the urine. However, at the resonance frequency of the methyl protons of NMF only a minute signal was observed. In this study dimethylamine and methylamine were found to be minor urinary metabolites of DMF in mice.
For more Metabolism/Metabolites (Complete) data for N,N-DIMETHYLFORMAMIDE (14 total), please visit the HSDB record page.
Dimethyl formamide may be absorbed following ingestion, inhalation, and dermal exposure, and is distributed evenly throughout the body. Metabolism takes place in the liver via microsomal enzyme systems, producing N-hydroxymethyl- N-methylformamide (DMF-OH) as the main urinary metabolite.
The solvent can pass through the intact skin or can be absorbed through the lungs.
Dimethylformamide reached an average level of 2.8 ug/L in the blood of subjects exposed to 21 ppm of the vapor for 4 hr, and was undetectable at 4 hr after the exposure; the metabolite, methylformamide, averaged between 1 and 2 mg/L in the blood and this level was maintained for at least 4 hr after exposure. Maximal blood levels of about 14 and 8 ug/L were observed for dimethylformamide and methylformamide, respectively, at 0 and 3 hr, after a 4 hr exposure to 87 ppm of the vapor. Repeated daily exposures to 21 ppm of dimethylformamide did not result in accumulation of the chemical or its metabolite in blood. /Dimethylformamide and methylformamide/
Eight healthy male subjects were exposed to dimethylformamide (DMF) vapor at a concn of 8.79 + or - 0.33 ppm for 6 hr daily for 5 consecutive days. All urine voided by the subjects was collected from the beginning of the first exposure to 24 hr past the end of the last exposure and each sample was analyzed for monomethylformamide. Monomethylformamide was rapidly eliminated from the body with urine values peaking within a few hours following the end of each exposure period. The mean for the 7 hr (end of exposure) sample was 4.74 mg/mL.
The amount of N-methylformamide recovered in the urine represents only 2-6% of the dose of dimethylformamide inhaled. A substantial portion of an absorbed dose of DMF is excreted unchanged in the expired breath. The urinary concn of N-methylformamide is probably the best index of worker exponent dimethylformamide.
For more Absorption, Distribution and Excretion (Complete) data for N,N-DIMETHYLFORMAMIDE (12 total), please visit the HSDB record page.
USES
Dimethylformamide is primarily used as an industrial solvent. Dimethylformamide solutions are used to process polymer fibers, films, and surface coatings; to permit easy spinning of acrylic fibers; to produce wire enamels, and as a crystallization medium in the pharmaceutical industry.
Used as a solvent in acrylic fiber spinning, textile dyeing, and paint stripping; also used in coating, printing, gluing, and pharmaceutical manufacturing; [http://www.cdc.gov/niosh/90-105.html] Used as a solvent for vinyl resins; [Kanerva, p. 1786] Used in synthetic leather manufacturing; [JOEM 2004;46:729-736]
Semiconductor Manufacturing [Category: Industry];Textiles (Fiber & Fabric Manufacturing) [Category: Industry];Painting (Solvents) [Category: Paint];Working with Glues and Adhesives [Category: Other];Plastic Composites Manufacturing [Category: Industry];Textiles (Printing, Dyeing, or Finishing) [Category: Industry]
For N,N-Dimethylformamide (USEPA/OPP Pesticide Code: 366200) there are 0 labels match. /SRP: Not registered for current use in the U.S., but approved pesticide uses may change periodically and so federal, state and local authorities must be consulted for currently approved uses./
The most important use of DMF as a solvent for polymers is in the preparation of polyacrylonitrile solutions for the manufacture of fibrous polyacrylonitrile ... In addition DMF is used as a solvent in the preparation of high quality surfaces based on polyurethanes, which are otherwise difficult to solubilize, and it is employed as a solvent for coating surfaces with polyamides.
Solvent for liquids and gases. ... Solvent for Orlon and similar polyacrylic fibers. ... /Used/ wherever a solvent with a slow rate of evaporation is needed.
Water (0.05%), dimethylamine (15 ppm), formic acid (20 ppm), iron (0.05 ppm)
2023: 85,000,000 - <100,000,000 lb;2022: 70,000,000 - <85,000,000 lb;2021: 55,000,000 - <70,000,000 lb;2020: 40,000,000 - <55,000,000 lb
(1972) PROBABLY GREATER THAN 4.54X10+5 G
(1991) 25,000 tons
N,N-Dimethyformmide is listed as a High Production Volume (HPV) chemical (65FR81686). Chemicals listed as HPV were produced in or imported into the U.S. in >1 million pounds in 1990 and/or 1994. The HPV list is based on the 1990 Inventory Update Rule. (IUR) (40 CFR part 710 subpart B; 51FR21438).
Production volumes for non-confidential chemicals reported under the Inventory Update Rule.[Table#218]
For more U.S. Production (Complete) data for N,N-DIMETHYLFORMAMIDE (7 total), please visit the HSDB record page.
Cleaning agent;Solvent
pH regulating agent;Fuel agents;Semiconductor and photovoltaic agent;Tanning agents not otherwise specified;Solvent;Intermediate;Not Known or Reasonably Ascertainable;Catalyst;Soil amendments (fertilizers);Stabilizing agent;Cleaning agent
The direct or one-step synthesis of DMF begins with either pure carbon monoxide or a gas stream containing carbon monoxide. This is reacted in a continuous process with N,N-dimethylamine, by using a solution of alkali alkoxide (usually sodium methoxide) in methanol as catalyst. Methyl formate is presumably formed as an intermediate. The reaction mixture passes over an external heat exchanger to remove the excess heat generated and to ensure thorough mixing of the components. The reaction is conducted between 0.5 and 11 MPa at 50 - 200 °C. The reaction mixture exits the reactor through a decompression chamber. In addition to N,N-dimethylformamide, the crude product contains methanol, a certain amount of unreacted N,N-dimethylamine, dissolved carbon monoxide, and residual catalyst. The addition of acid or water deactivates any catalyst present, resulting in the formation of sodium formate. Dissolved carbon monoxide, together with inert gases, escapes from the mixture during decompression, and the off-gases are removed by combustion. Preliminary distillation is followed by a second distillation in a separate column; here, dimethylformamide is separated from methanol which contains traces of N,N-dimethylamine. Further distillation results in a product of 99.9%purity.
The two-step process for the synthesis of N,N-dimethylformamide differs from direct synthesis because methyl formate is prepared separately and introduced in the form of ca. 96% pure (commercial-grade) material. Equimolar amounts of methyl formate and N, N-dimethylamine are subjected to a continuous reaction at 60 - 100 °C and 0.1 - 0.3 MPa. The resulting product is a mixture of N,N-dimethylformamide and methanol. The purification process involves distillation ... No separation of salts is required because no catalysts are involved in the process. According to the corrosive properties of both starting materials and products, stainless steel has to be used as material of construction for production facilities.
Reaction of methyl formate with dimethylamine.
Manufactured by the reaction of CO and dimethylamine. The reaction is carried out in the liquid phase using a sodium methoxide catalyst at 110-120 °C and 350 kPa (3.5 atm).
SOLVENTS
Pharmaceutical and Medicine Manufacturing;Utilities;Agriculture, Forestry, Fishing and Hunting;Wholesale and Retail Trade;Electrical Equipment, Appliance, and Component Manufacturing;Plastics Material and Resin Manufacturing;Paint and Coating Manufacturing;Other (requires additional information);All Other Basic Organic Chemical Manufacturing;Textiles, apparel, and leather manufacturing
Formamide, N,N-dimethyl-: ACTIVE
Has been termed the universal solvent
TESTED AS A PARENTERAL DRUG VEHICLE
ALIASES
REACTIONS