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ing in the cold before then adding 25 ml of diethylamine.
Stir for an additional 10 minutes, then pour the batch into a 2000
ml sep funnel. Now to the sep funnel add 800 ml of water. Mix this in
thoroughly, then add 400 ml of saturated salt solution in water. Mix
this in, then extract out the LSD by repeated extraction with 250 ml
portions of ethylene dichloride. Check with a blacklight for complete
6 LSD From Lysergic Acid And SO3
The combined ethylene dichloride extracts should be evaporated
under a vacuum as above, and the residue of LSD and iso-LSD should be
separated and treated as above.
LSD From Lysergic Acid And
LSD From Lysergic Acid
And Trifluoroacetic Anhydride
This method is a little bit lame, but it may be the method of choice if
trifluoroacetic anhydride or trifluoroacetic acid should happen to fall
from the sky into one's hands. The reason why this method is a bit lame
is threefold. Anhydrous lysergic acid is required for this reaction. To
obtain anhydrous lysergic acid, the lysergic acid hydrate yielded by the
methods in Chapter 5 must be baked under high vacuum for a
couple hours. This is obviously not good for such a delicate molecule.
The water molecule will be shed by a baking temperature of 120° C at a
vacuum of 1 mm Hg, 140° C at 2 mm Hg, and still higher
temperatures at less perfect vacuums. A MacLeod gauge is the only
instrument that I know of which is capable of accurately measuring
such high vacuums.
Another reason why this method is lacking is that the yields are
not so good as those achieved by the other synthetic routes presented in
this book. It is possible to recover the unreacted lysergic acid at the end
of the process, but this does not make up for the initial lower yield,
not to mention the added hassle of recovering and redrying the lysergic
Strike number three for this route is its propensity to give byproducts
that are difficult to separate from the desired product. I am
Practical LSD Manufacture
not talking here about the large amount of iso-LSD that this method
makes. That molecular jumbling is inconsequential, because the
lysergic acid used is itself an isomeric mixture. Rather, what can
occur here is the production of LSD and other by-products.
The mechanics of this reaction are similar to the reaction with
SOs, in that two molecules of the anhydride react with the lysergic
acid molecule to form the mixed anhydride. In this reaction, there is
no need to first react the lysergic acid with hydroxide to form the
metal salt. Also, the need to follow exact stoichiometric quantities of
reactants is not as pressing as in the SO$ method.
To do the reaction, into a 1000 ml flask (carefully dried and
equipped with a magnetic stirring bar) place 16 grams of lysergic acid
and 375 ml of acetonitrile. The lysergic acid will not dissolve. Stopper
the flask and place it in the freezer to cool the contents to -20f
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sacred places where peyote grows in search of that sacrement. They believe that
if a person is has not been properly purified the spirits will lead him to the False
Peyote and if he partakes of it, he will suffer madness or at least a bad trip. The
plant is known among some tribes as Chautle or Chaute. These names are also
used for other Ariocarpus species. This cactus contains hordenine, Nmethyltryamine
in fairly small amounts (about 0.02 percent) and traces of Nmethyl-
3,4-dimethoxy-B-phenethylamine, and N-methyl-4-B-phenethylamine.
Aside from these alkaloids it also contains a flavone called retusin (3,3',4',7-
tetramethoxy-5-hydroxyflavone). Although alkaloid content may very some at
different seasons or stages of growth, from the scientific point of view the
amounts present in this plant appear insufficient to produce any
SUNAMI: This plant, ARIOCARPUS FISSURATUS, has been used in folkoric
medicine of Mexico and southwestern USA. It is believed to be more potent than
peyote and is used in the same manner as that cactus or made into an
intoxicating drink. Among some tribes it is known as Chaute (a generic term for
Ariocarpus species), living rock, or dry whiskey. The latter name, however, is
often used for peyote and other psychoactive cacti. There are two varieties of A.
fissuratus: var. lloydii and var. fissuratus. Both have about the same
phytochemical makeup. The plant contains mostly hordenine, less N-methyltyramine
and some N-methyl-3,4-dimethoxy-B-phenethylamine. Two other
species, A. kotschoubeyanus also known as Pata De Venado or Pezuna De
Venado, and A. trigonus also contain these alkaloids.
DOÑANA: This small cactus, CORYPHANTHA MACROMERIS, from northern
Mexico has been found to contain macromerine, a phenethylamine drug reputed
to have about 1/5 the potency of mescaline. It also contains normacromerine, Nformylnor-
macromerin, tyramine, N-methyltramine, hordenine, N-methyl-3,4-
dimethoxy-B-phenethylamine, metanephrine, and synephrine (a macromerine
precursor). Other coryphantha species which contain macromerine with most of
these other alkaloids include: C. pectinada, C. elephantideus, C. runyonii and C.
cornifera var. echinus. Most of these alkaloids with the exception of macromerine
have also been found in other varieties of C. conifera and in C. durangensis, C.
ottonis, C. poselgeriana and C. ramillosa. Considering that there is usually no
more than 0.1 percent macromerine in Doñana and that a gram or more of this
alkaloid may be needed to produce a psychotropic effect, one would have to
consume more than a kilo of the dried cactus or 20 pounds of the fresh plant.
Clearly this is not possible for most humans. If one wishes to experiment with the
hallucinogenic properties of Doñana, is is necessary first to make an extraction of
the mixed alkaloids. Methods for this are given latter in this guide.
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@Friday, July 20, 2018 7:06:05 AM