Organic Chemistry of Explosives

(coco) #1
Primary nitramines as nucleophiles 237

N

N

N

N

N

CH 2 N

NO 2

NO 2 NO 2

NO 2

N
N
N

CH 2 OAc

NO 2

NO 2
197

N

N

N NN

N NO 2

NO 2

NO 2
194

N

N

N

NO 2

NO 2
199

NO 2

CH 2 CH 2 NHNO 2

N

N

N

NN

NO 2

NO 2

N

N

N

NO 2

NO NO^2
2 NO 2

N

N

N

NO 2

NO 2
196

N

N

N

NO 2

NO 2
198

NHNO 2
2

NHNO 2

AcO OAc

NO 2 NO 2

NO 2

NHNO 2

NHNO 2

200, n = 1, 75 %
201, n = 2, 50 %
202, n = 3, 39 %

193

AcOH, Ac 2 O
Heat, 27 %

H 2 SO 4 , NaNO 2

63 %

0.5 eq of
O 2 NHN(CH 2 )nNHNO 2
n = 1, 2 or 3
72 %

NaN 3 , DMF

87 %

CH 2 O, NH 3 ,
acetone

H 2 SO 4 ,
NaNO 2 , 69 %
195

99 % HNO 3
48 %

HNO 3 , Ac 2 O
98 %

77 %

n

1 eq

NO CH 2 N 3

CH 2 N

Figure 5.84

Nitrolysis of the bicycle (193) with absolute nitric acid, followed by quenching with water,


yields 1,3,5-trinitro-1,3,5-triazacycloheptane (194), whereas the same reaction with fuming


nitric acid in acetic anhydride leads to the formation of the linear diacetate (195), a feature


which is consistent with the nitrolysis of hexamine (Section 5.15). Reaction of (193) with a


solution of nitrous acid leads to C–N bond cleavage and yields the nitrosamine (196). Cleavage


of (193) is also seen on treatment with hot acetic anhydride in acetic acid; the product of this


reaction, the acetate (197), readily undergoes displacement of the acetate group with a range of


nucleophiles, of which products the azide (198) is probably the most interesting as a potential


explosive. The acetate (197) reacts with one equivalent of ethylenedinitramine in DMF to


form the tetranitramine (199). The reaction of two equivalents of the acetate (197) with one


equivalent of methylenedinitramine, ethylenedinitramine or 1,3-dinitraminopropane leads to


the formation of the bicycles (200), (201), or (202) respectively.


Some interesting nitramine products are derived from the reaction of ethylenedinitramine (2)


with formaldehyde in the presence of various linear aliphatic diamines; the bicycles (203) and

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