Nitroethane Synthesis

G.Patton

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Nitroethane Simplest Syntheses

Introduction

I present to you the three simplest syntheses of nitroethane:
  1. From sodium ethyl sulfate and a metal nitrite.
  2. From ethyl halide and silver nitrite.
  3. From ethyl bromide (iodide) and sodium nitrite.
This list allows to select a suitable reagent that can be purchased in your country. According to local prices for reagents, prices for final product and reagents availability, you can choose a more reasonable synthesis way.
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  • Appearance: oily liquid, fruity odor
  • Boiling Point: 112.0 to 116.0 °C/760 mmHg
  • Melting Point: -90 °C
  • Molecular Weight: 75.067 g/mol
  • Density: 1.054 g/ml (20° C)
  • Refractive Index: 1.3917 at 20 °C/D; 1.39007 at 24.3 °C/D

Nitroethane Synthesis From Sodium Ethyl Sulfate and Metal Nitrite
To synthesize nitroethane, combine 1.5 moles of sodium nitrite (103.5 g) with 1 mole of sodium ethyl sulfate (158 g) and 0.0625 moles of potassium carbonate (8.6 g). Heat the mixture steadily to a temperature range of 125–130 °C. As the reaction proceeds, nitroethane will begin to distill off immediately upon formation. Once the rate of distillation decreases significantly, stop the heating process. The collected crude nitroethane should then be washed with an equal volume of water, dried over calcium chloride (CaCl₂), and, if necessary, treated with a small amount of activated carbon for decolorization. Finally, purify the product by re-distillation, isolating the fraction that boils between 114–116 °C. This method typically yields 42–46% based on theoretical values.
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A more comprehensive procedure for this synthesis is available elsewhere, originally intended for nitromethane production. However, it can be easily adapted for nitroethane synthesis by replacing dimethyl sulfate with diethyl sulfate. Be sure to recalculate the quantities of all reagents accordingly to match the chemical differences and ensure proper reaction stoichiometry.


Nitroethane Synthesis From Ethyl Halide and Silver Nitrite

Begin by cooling 100 grams (0.65 mol) of silver nitrite in 150 ml of anhydrous ether to 0 °C using a 500 ml three-neck flask. Perform this step under low-light conditions—preferably in a dark room or under yellow lighting—to avoid light-sensitive reactions. Slowly add 0.5 moles of ethyl halide (either 78 g of ethyl iodide or 55 g of ethyl bromide) dropwise over a span of two hours, maintaining constant stirring and a stable temperature of 0 °C throughout the addition. After the addition is complete, continue stirring the reaction mixture for 24 hours at 0 °C. Then, if ethyl bromide is used, allow the mixture to stir for an additional 24–48 hours at room temperature to ensure full conversion to nitroethane.
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To determine whether the nitroethane reaction has reached completion, perform a halogen test by adding a few drops of the reaction mixture to a test tube containing an alcoholic silver nitrate solution. The appearance of a precipitate indicates that unreacted halide is still present, meaning the reaction is incomplete. Alternatively, the Beilstein test may be used: heat a copper wire loop, dip it into the reaction mixture, and place it back into the flame. A visible reaction suggests residual halogenated compounds. During the process, silver iodide or silver bromide will form as a precipitate. Filter out the resulting silver salt and wash it thoroughly with dry ether. Remove the ether by evaporation at room temperature—or optionally by distilling it using a water bath under atmospheric pressure with a 2×45 cm column filled with 4 mm Pyrex helices. A more efficient column is avoided due to the potential instability of ethyl nitrite, a by-product of the reaction. Ensure the system remains completely anhydrous to prevent hydrolysis of ethyl nitrite into ethanol, which can complicate purification. After ether removal, subject the remaining mixture to vacuum distillation at around 5 mm Hg. The fractions will come off in sequence: first ethyl nitrite, then an intermediate fraction, followed by the final product—nitroethane. Using atmospheric pressure distillation instead of vacuum may lower the yield, which typically reaches around 83% of theoretical.


Nitroethane Synthesis From Ethyl Bromide (Iodide) and Sodium Nitrite (DMF)

To carry out this nitroethane synthesis, add 32.5 grams of ethyl bromide (0.3 mol) to a well-stirred solution of 36 grams of dry sodium nitrite (0.52 mol) dissolved in 600 ml of dimethylformamide (DMF). Maintain the reaction vessel in a water bath at room temperature, as the reaction is mildly exothermic. It is important to keep the entire setup away from direct sunlight to prevent decomposition or side reactions. Stir the mixture continuously for six hours. Once the reaction is complete, pour the mixture into a large container (approximately 2.5 liters in volume) containing 1500 ml of ice-cold water and 100 ml of petroleum ether. Separate the upper petroleum ether layer and save it. Then, extract the aqueous phase four more times with 100 ml portions of petroleum ether. Combine all organic extracts and wash them with four portions of 75 ml water each. Dry the resulting organic layer over anhydrous magnesium sulfate, filter it, and carefully remove the petroleum ether via distillation under reduced pressure on a water bath, gradually increasing the bath temperature to around 65 °C. The remaining crude nitroethane is then purified by distillation under atmospheric pressure using a small distillation column. Collect the fraction boiling at 114–116 °C, which represents a 60% yield of the target product.
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The ethyl bromide reacts with NaNO2, forming nitroethane and ethyl nitrite.

This nitroethane synthesis method offers flexibility through several useful modifications. For example, dimethylformamide (DMF) can be replaced with dimethyl sulfoxide (DMSO) as the solvent without significantly affecting the outcome. Ethylene glycol is another alternative, though the reaction rate in this medium is slower and more prone to side reactions—such as the formation of unwanted compounds like R-(NO)NO₂ and alcohol (R-OH) via RH-NO₂ + R-ONO. Additionally, potassium nitrite (KNO₂) may be used in place of sodium nitrite (NaNO₂). If NaNO₂ is used in DMF, incorporating 30 grams (0.5 mol) of urea can improve the process by acting as a nitrite scavenger. This reduces side reactions and simultaneously increases NaNO₂ solubility, which greatly accelerates the reaction.

Substituting ethyl bromide with ethyl iodide also affects the process: the reaction time drops from 6 hours to just 2.5 hours. However, when using ethyl iodide, a slight adjustment to the post-reaction workup is necessary. Instead of washing the pooled petroleum ether extracts with four portions of water, wash them with two 75 ml portions of 10% sodium thiosulfate solution followed by two 75 ml water rinses. This extra step effectively removes any residual free iodine that may be present.

Conclusion

To sum up, nitroethane can be prepared using several simple methods, each offering different benefits based on reagent availability, cost, and yield. The synthesis from sodium ethyl sulfate and a metal nitrite is easy to perform, while the method using silver nitrite and ethyl halide provides a higher yield but requires more care and expensive materials. The process using sodium nitrite in DMF or DMSO offers a good balance between simplicity and effectiveness, with optional adjustments like urea addition to improve results. Depending on your local access to chemicals and equipment, you can choose the most suitable method for producing nitroethane efficiently and reliably.

Sources

  1. Audley, Gary J., Donald L. Baulch, and Ian M. Campbell. "A new method for the synthesis of nitroethane, ethyl nitrite, and ethyl nitrate." Journal of the Chemical Society, Chemical Communications 18 (1982): 1053-1055. https://pubs.rsc.org/en/content/articlelanding/1982/c3/c39820001053/unauth
  2. Kabalka, George W., and Rajender S. Varma. "Syntheses and selected reductions of conjugated nitroalkenes. A review." Organic Preparations and Procedures International 19.4-5 (1987): 283-328.
 
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HIGGS BOSSON

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O nitroetano é certamente um reagente geral na síntese de todas as anfetaminas, como a anfetamina, MDA, TMA, DOM, DOB, 4-FA e muitas outras descritas por Alexander Shulgin. Mas, recentemente, a circulação deste reagente está limitada a muitos países e, por isso, os fabricantes de cerveja estão a ter dificuldades em adquiri-lo de forma segura e fácil, como acontecia há alguns anos. Este desafio pode criar uma nova direção no negócio das drogas - a síntese de substâncias limitadas por lei para posterior venda em laboratórios que se dedicam à síntese final de drogas. A síntese de nitroetano num laboratório doméstico é uma ação bastante segura por parte da lei. Pode dedicar o tempo necessário para uma síntese e purificação de alta qualidade, investindo fundos mínimos no custo. O preço no mercado negro pode chegar a 300 dólares por um quilograma de nitroetano, com o aumento da procura, e o negócio em si pode ser condicionalmente legal e não punível (dependendo da legislação do seu país). Mas vale a pena notar que a polícia quer controlar os fornecedores cinzentos e, em qualquer caso, é necessário observar todas as medidas de sigilo.
 

Never to sleep

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A guerra na Ucrânia parece estar na origem desta situação. Quase todo o fornecimento mundial de nitroetano era originário da Ucrânia, tendo cessado quando as fronteiras foram fechadas e as entidades industriais interromperam as operações.

Este facto expôs que mesmo os fornecedores de produtos químicos bem reconhecidos subcontratam certos produtos químicos que revendem com a sua marca conhecida. O nitroetano era um desses produtos químicos e é por isso que, ao contrário do que acontecia antigamente, era possível comprar uma tonelada desta merda sem fazer perguntas a um fornecedor de produtos químicos, mesmo essas fontes já não a têm.

Pessoalmente, acho impressionante o facto de a produção industrial deste composto ser tão fechada, mas os químicos clandestinos sintetizarem este composto com poucos ou nenhuns recursos.
 

nitro

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A Ucrânia não produz nitroetano e nunca produziu. A impossibilidade de o obter é o resultado de muitos anos de guerra internacional contra a droga, incluindo a legislação internacional de controlo e proibição do nitroetano. Existem 17 empresas relacionadas com a produção de nitroetano de apenas 5 países: EUA, Alemanha, Espanha, China e Índia.
 

MadHatter

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O problema aqui é o nitrito de sódio. Precursor difícil. A síntese é uma merda. Não está disponível para compra no mercado de balcão.
 

Pussy_Kurt

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Muito bem! Uma rota contínua, penso eu, era melhor para grande escala. O que é que se passa com a nitração em fase gasosa do propano? No fórum sciencemadnes havia um químico que estava a trabalhar num processo semelhante...
 

edy's

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Otto Snow tem alguns desenhos sobre isso num dos seus livros, creio eu
 

G.Patton

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Este processo é bastante complicado. Penso que este método é mais adequado para os químicos que não têm muitas competências laboratoriais.
 
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a_king

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ola gays quero um metodo para grande escala alguem pode me dizer como fazer grande escala
Obrigado a todos.
 

Needtolearn

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Se a minha matemática estiver correcta, é preciso a lista ridícula abaixo para fazer 1 kg. Por favor, digam-me que isto não está correto. Alguém sabe a matemática para calcular o rendimento do resultado?

6437g de nitrito de sódio
9875g Sulfato de Sódio e Etilo
531g Carbonato de Potássio
+ 66 horas de trabalho com um aparelho simples de 2L.
para fazer 1000g de Nitroetano
 

candymanspieler

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I wonder if Potassium Nitrite could be used instead of Sodium Nitrite? It seems to be relatively more simple to prepare.
 

The-Hive

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  1. All water soluble nitrate salts
  2. KNO3 and NH4NO3 are both fertlizers K & N in NPK
  3. NH4NO3 is a strong oxidant and used as explosive with diesel accelator. Lots of O2 and H2 gas released
  4. KNO3 and NaNO3 are both alikali metal nitrates and types of saltpeter. KNO3 is Indian saltpeter while NaNO3 is Chilean saltpeter
 

BalkanBoys

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This method is not viable at scale that's what im certain of.
 

G.Patton

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Tem experiência com uma síntese em pequena escala?
 
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edy's

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O que é mais importante para o nitroetano do que o nitrito. Se isso for bom, os resultados serão aceitáveis, mas ainda assim serão baixos.
 

edy's

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Nunca tive a coragem de aumentar a escala
 

Saul

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porque é que podemos editar mensagens?
 

Saul

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As sínteses mais simples do nitroetano

http://linx4f75phtm63mxalb2wtspofcodku5lwofiyoupda4n4uc6cfjuzid.onion/nitroethanesynthesis.mp4
 

diogenes

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T0R, a ligação já não funciona, pode partilhar este vídeo novamente?
 

yin-yang

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Dada a popularidade e a escassez de nitroetano, surpreende-me que os químicos chineses não tenham inventado algo novo que possa ser transformado em nitroetano com uma reação ou algo do género. Não acredito que uma molécula tão simples esteja a causar problemas tão grandes. Porque é que todos os anos há um novo precursor, mas há décadas que não há nada para o nitroetano?
 

G.Patton

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Estes métodos são a sua "reação única" para produzir nitroetano
 

SpectreOfCommunism

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Relativamente à via do brometo/iodeto de etilo, "60% do produto" significa 60% dos 32,5 g de idodeto/brometo de etilo mais os 36 g de nitrito de sódio ou...?
 

G.Patton

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O rendimento é calculado de acordo com a falta de reagente (32,5 gramas de brometo de etilo (0,3 moles)).
 

Mclssmxxl

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Alguém consegue identificar algum perigo importante na rota do bromoetano? Estou ciente da toxicidade do EtBr e do NaNO2. Se for efectuado no exterior com os devidos EPI e etiqueta de laboratório, há mais alguma coisa a que devo estar atento?
 

Mclssmxxl

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Além disso, o solvente pode ser recuperado aqui?
 

G.Patton

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Peço desculpa pela resposta longa.
Utilize EPI adequados e não respire os seus vapores, evite o contacto com a pele e os olhos.
Claro, recuperação de solventes
 
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yin-yang

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Os métodos fornecidos são todos comprovados e testados, mas não são realmente escaláveis. Isto chamou-me a atenção e perguntei-me como se poderia fazer isto. Claro que o custo inicial seria maior, mas é um bom investimento para quem precisa de uma quantidade decente.

Método 14: Nitração do propano na fase de vapor.

O propano é borbulhado através de ácido nítrico aquecido a 108°C e conduzido a um reator a 420°C. O produto é então condensado e fraccionado (forma-se 26% de nitroetano).

Industrial and Engineering Chemistry, Vol 28, Mar, 1936. Pg 339-344.
JOC, Vol 17, pg 906-944

Mesmo procedimento com etano com 80% de rendimento.

Alguma história de sucesso na montagem do equipamento e na execução da reação?
 

Mclssmxxl

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Além disso, obtém-se uma mistura de 4 nitroalcenos por este processo, o que não vale a pena em pequena escala. Há uma razão para o nitroetano ser caro, para além de regulamentos idiotas
 
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