BMK glütsidaadi (naatriumsoola) süntees bensaldehüüdist

G.Patton

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Introduction

This synthesis is a good option in case you have unavailable phenylacetone for further amphetamine or methamphetamine synthesis. BMK glycidate can be easily turn into P2P by hydrolysis. This reaction have some pros and cons. The main disadvantage that reaction is very sensitive to water. You have to use absolutely dry glassware and reagents. Make sure that your reagents was dried and purified before synthesis. Water traces decline the yield. Also, it is worth to carry out this reaction in an inert atmosphere (N2) to increase its yield. There are advantages such as quite high yield, short reaction time. Moreover, the reaction doesn't take any solvents.

Equipment and glassware:

  • 2 L batch reactor (or flask) with a reflux condenser, top stirrer and water jacket (water bath) in a set-up;
  • Retort stand and clamp for securing apparatus;
  • 1 L Drip funnel;
  • Conventional funnel;
  • Laboratory grade thermometer (up to -10 - 100 °С);
  • Glass rod;
  • Silicone hoses;
  • Measuring cylinder for 1 L;
  • Vacuum source;
  • Laboratory scale (1-200 g is suitable);
  • Cold water bath sours for reflux condenser and water pump (in case of chiller absense);
  • Buchner flask and funnel;
  • 2 L; 1 L x2; 500 ml x2 Beakers;
  • Plastic spoon or spatula;
  • Freezer;
  • Circulating pump chiller (optional);
  • Pyrex dishes for product (or other containers);

Reagents:

  • Benzaldehyde 200 g (cas 100-52-7);
  • Methyl 2-chloropropionate 350 g (cas 17639-93-9);
  • Anhydrous sodium sulfate (Na2SO4);
  • Sodium hydroxide (NaOH) 200 g or potassium hydroxide (KOH) 265 g;
  • Distilled water ~2 L;
  • Sodium ethylate 200 g (EtONa);

Synthesis

Substitution nucleophilic reaction between benzaldehyde and methyl 2-chloropropionate.

The glass reactor is equipped with a jacket connected to a circulating pump chiller with the 0°С coolant temperature set. If you use a flask or a single layer reactor, you have to use an ice-water cooling bath. The reaction flask (reactor) must be perfectly dry inside, without water drops and condensate.
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1. Pour benzaldehyde 200 g into a beaker.

2. Add methyl 2-chloropropionate 350 g. The benzaldehyde and methyl methyl 2-chloropropionate mixture is stirred.


Note: If the reagents are fresh and stored in suitable conditions, use them directly by loading into the reactor. If not or for the prevention purpose (to be sure), you may additionally dry the benzaldehyde and methyl 2-chloropropionate mixture with a desiccant. In this case, anhydrous sodium sulfate (Na2SO4) is used.

3. Anhydrous Na2SO4 is added to the mixture so that it completely covers the glass bottom (approximate amount). The mixture is stirred.


Note: Na2SO4 collecting the remaining water, forming crystalline hydrates and settling onto the vessel bottom without stirring. Water adsorption occurs quite quickly. Visually it looks as a transparent reagents mixture formation.

4. The settled, dehydrated by sodium sulfate, mixture is decanted into the reaction vessel. Make sure that the sediment (crystalline hydrates) does not get into the reactor.


Note: The all formed sodium sulfate crystalline hydrates and unreacted sodium sulfate precipitates are settled onto the vessel bottom. It is decanted quite easy. You can use additional filtration or install a pre-filter in the reactor funnel in order to be sure.

5. The sodium sulfate crystalline hydrates precipitate is easily separated. Then, it is disposed off. Prepare sodium ethoxide for an addition.The stirrer is turned on.

Note: Set the stirring speed so that the mixture is well stirred, but at the same time, it isn’t splashed too much on the reactor (flask) walls.

6. The reaction mixture (RM) is cooled to 0-10°С by the cooled reactor jacket. The temperature is maintained at the same level and checked with a temperature probe during the reaction. The temperature is measured by a temperature probe immersion. An immersion thermometer or IR thermometer for the flask can be used.

7. An aqueous solution of alkali (sodium or potassium hydroxide) is prepared in advance. Sodium hydroxide 200 g (or potassium hydroxide 265 g) is poured into a beaker. Distilled cold water 0.8-1 l is added. The mixture is stirred until a NaOH is dissolved completely. The solution gets very hot. Then, alkali solution is left in a cold place so that the mixture is cooled to room temperature. After that, alkali solution can be put into a refrigerator.

8. When RM is cooled down to 0°С inside the reactor, dry sodium ethylate 200 g (EtONa) addition is started. The addition have to be carried out in small portions with breaks in order to maintain the reaction temperature below 10°С. A too fast addition and large portions of EtONa may cause a sharp mixture heat up and even RM boiling, the reaction yield will be reduced in this case. EtONa have to be dosed with a plastic or silicone spoon; metal spoon cannot be used.


Note: Other metal alcoholates such as sodium methoxide, potassium tert-butoxide, sodium isopropoxide, etc. can be used. In addition, sodium hydride, sodium amide can be used as well. RM is heated up and thickened a little during the EtONa addition, an external cooling is applied.

The mixture is thickened, color is turned yellow, then brick red and brown subsequently. The temperature have to be always maintained in the range of 0-10°С. The more sodium ethylate is added, the thicker the mixture is become. The stirring is maintained by an adjustment of the stering speed.


Note: If the reaction is carried out in a reaction flask on a magnetic stirrer, then one anchor may not be enough. A hand stirrer or an overhead stirrer should be used.

9. RM is stirred and maintained in the range of 0-10°С for 1 h after complete EtONa addition.

10. Then, external cooling is removed and RM is stirred at room temperature for 12 h.

Optional: As an option, an external gradual heating is set up to 60°С. With this method, the reaction yield will be reduced. A reflux condenser is installed on the reactor. RM is stirred at 60°С for additional 1 h. A heating is carried out with help of a reactor jacket and a thermostat.

11. After 1 h, the external heating is turned off. The mixture is slowly cooled to room temperature with constant stirring.

12. A drip funnel with 1 l cold distilled water is installed onto the reactor. Water is added dropwise with a vigorous stirring. The thick RM is turned liquid.

13. The stirrer is turned off. RM is separated into two layers. The top layer is methyl glycidic ester (BMK methyl glycidate), the lower layer is water with unnecessary reaction salts, which are dissolved in it. The lower layer is discarded, the top glycidic ester layer is used in the further reactions.

14. BMK-glycidate methyl ester is left in the reactor. It can be vacuum distilled to produce the purer ester in case you want to sale it as a product. Approximate ester amount is around 400 g. As an option, the ester is used in the next reaction to obtain the sodium or potassium salt of glycidic acid.

Alkaline hydrolysis to BMK sodium glycidate

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15. An alkali solution, which was prepared in advance, is poured into a drip funnel. The stirrer is turned on. A dropwise addition of cooled NaOH (or KOH) aqueous solution at room temperature is started.

In our case, self-heating of the mixture is allowed. After the alkaline addition, the thermostat is set to 60°С in order to speed up the salt obtaining process. The mixture is stirred for addition 2 h.


Note: If you want to get a higher yield of the product, then add the alkaline solution with external cooling. Further, RM is stirred for additional 12 h at room temperature. The mixture is thickened rather quickly (glycidic acid sodium salt precipitates) during alkaline addition without cooling. In case the mixture is thickened too much, stirring speed is increased.

Caution! Methyl alcohol is obtained in this reaction from the BMK methyl glycidate.

16. The mixture is turned transparent during a heating. The resulting glycidic acid sodium salt is soluble in water. Shortly thereafter, the reactor is prepared for cooling to crystallize the glycidic salt. As an option, the thermostat can be turned off and the mixture is gradually cooled to room temperature.

The mixture is started to crystallize during gradual cooling. It becomes more cloudy, glycidic salt is precipitated, the mixture is thickened. A mixture of BMK glycidic acid sodium salt is obtained.

17. The mixture is vacuum filtered on a Buchner flask and funnel. The dry product 300 g 79% yield (cas 5449-12-7) is obtained.
 
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Sciencenutz

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Nii et kui teie lihtsalt üritate saada bmk võite jätta selle bmk metüülglütsidaadi ja lihtsalt teha 1Kg bmk metüülglütsidaadi 1L vett 1L HCl 1 tunni jooksul 80c juures, et muuta see puhtaks p2p?
 

w2x3f5

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Hüdrolüüs soolhappes ei ole parim variant.
 

w2x3f5

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hüdrolüüs puhtas fosforhappes, glütsidaat ei pruugi muutuda naatriumsoolaks
 

G.Patton

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Tere, seal on link selle meetodi suunas.
 
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LoneChemist

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Tänan teid. Paneb selle kindlasti õigeaegselt tööle ja ajakohastab tulemusi.
 

marywin

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Tänan teid, härra Patton, selline hea platvorm meile
 

Sciencenutz

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Kas keegi on seda juba p2p-le teinud? Jah?
 

Re186

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Kas ma võin küsida, kas toodetud naatriumsool (5449-12-7) rikneb kergesti, kui see paigutatakse õhku? Kas niisket naatriumsoola (5449-12-7) võib panna mitmeks päevaks õhku kuivama, ilma et see rikneks? Ja kas seda ainet saab tavatingimustes kaua ladustada?
 

G.Patton

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Ma arvan, et see on üsna hügroskoopiline. Seda tasub hoida suletud pakendis. Kuivatamise korral soovitan kasutada lihtsat või vaakumeksikaatorit.
 

Re186

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Sellise epoksüstruktuuriga ühendi puhul põhjustab kuumutamine ja kuivatamine tõenäoliselt struktuurikahjustusi. Klaaskuivati kasutamine on lahendus, kuid seda ei ole masstootmise korral lihtne kasutada ja see tarbib palju kuivatusainet, nii et ma arvan, et see sobib selle jaoks Parim viis seda tüüpi aine kuivatamiseks on kasutada vaakumkülmkuivatit. Ainus puudus on see, et vaakumkülmkuivati hind on suhteliselt kallis. Mida te arvate?
 

G.Patton

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Ülalpool ütlesin teile minu arvamust, et vaakumeksikaatorid on parim valik. See on mõistliku hinnaga ja piisavalt tõhus.
 

Re186

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Ma puutusin kokku probleemiga. Jälgisin artiklit. Pärast naatriumetoksiidi lisamist segasin tund aega ranges veevabas keskkonnas alla 10 °C. Pärast seda hakkasin temperatuuri tõstma 60°C-ni, et valmistada ette tund aega segamise võimalus. Kuid pärast väikest kuumutamist tõusis temperatuur seadmes spontaanselt ja kiiresti kontrollimatult ning juba mõne minuti pärast näitas minu termomeeter 130°C läbimurret, mistõttu tahan küsida, kas see on normaalne? Kas keegi on sellega kokku puutunud?" Esimene pilt on protsess, mille käigus segatakse 1 tund aega alla 10°C pärast naatriumetoksiidi lisamist. Panin seadmele veevaba magneesiumsulfaadiga täidetud kuivatustoru, et säilitada veevabad tingimused. Kuna minu ringlusseade saab ainult jahutada, siis kandsin teise kuumutusetapi kolbi. Kuumutusmeetodiks on õlivanni kuumutamine, kuid ma kasutasin vaid mõne minuti jooksul temperatuuri 65 °C ja temperatuur kolvis oli kontrolli alt väljas. Kui see tõuseb, näitab termomeeter, et see ületab 130 ℃ väga kiiresti, nii kiiresti, et mul ei ole isegi aega käivitada kondensaatvee tsüklit kondensaatoritorus, ja siis muutub see teise pildi seisundiks.

FS0m89Nsyu
Acri0RXHgt
 
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G.Patton

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Tere, kas isekuumenemine toimub vägivaldselt või aeglaselt? See on üsna huvitav.
 
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Re186

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Selleks, et säästa aega, mis kulub reaktsioonitemperatuurini jõudmiseks, soojendasin õlivanni eelnevalt konstantsele temperatuurile 70 °C. Minu idee on paigaldada seade ja oodata, kuni kolvi temperatuur tõuseb umbes 50°C-ni, enne kui vahetan õlivanni 60°C-ni, et saavutada tõhus ja sujuv sisenemisreaktsioon. Seega viisin reaktsioonisegu kiirelt umbes 9°C kuni 10°C kolbi ja paigaldasin seadme õlivanni. Sel ajal kastsin kolvi õlivanni. Olin just seadet kinnitanud ning ma ei olnud veel alustanud segamist ja vee ringlust kondensaatoritorus. Täheldasin, et kolvis hakkas äkki kiiresti tekkima valge udu ja mulli, nagu õhuniisutajal. Sel ajal märkasin, et kolvis olev termomeeter näitas, et temperatuur oli ületanud 130 °C. Kuna kondensaatoritoru ei töötanud, siis aur pääses kiiresti välja, nii et see on muutunud joonisel 2 kujutatud pragunenud olekuks. See reaktsioon näib järsku väljuvat kontrolli alt, kui temperatuur ületab teatava kriitilise punkti. Temperatuur tõuseb väga kiiresti ja see põhjustab parandamatuid ja katastroofilisi tagajärgi umbes 3-4 minuti jooksul.
 

Re186

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Tegin seda eile uuesti, seekord on reaktsioon normaalne, kuid ma arvan, et saagis jääb protsessi osas madalaks. Lõpuks, pärast jäävee lisamist ja tund aega seismist ei ole ilmset kihistumist, seega kasutan diklorometaani Segu ekstraheeriti ja ma analüüsin seda ekstrakti täna ja postitan tulemused hiljem. Lisaks ostsin just selle protsessi jaoks patendi. Tingimused ja toimingud tunduvad olevat lihtsamad ja optimaalsemad kui teie artiklis. See näitab, et bensaldehüüdi (CAS 100-52-7) ja metüül-2-kloropropionaadi (CAS 17639- 93-9) puhastatud P2P kogusaagis on koguni 82,9%. Olen juba ostnud seotud reaktiivid ja proovin seda mõne päeva pärast.
 

Re186

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Olen avaldanud patendiprotsessi ja -praktika.
 
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