Document ZB5nEpOQ3nQ19ekwRaBmaYX07
E. I. DU PONT DE NEMOURS & COMPANY
256 VANDERPOOL STREET NEWARK, MEW JERSEY
Uo. 71-7
Copy Mo, 17
r et ur n t o
JACKSON LABORATORY FILE ROOM
NEWARK PLANT PIGMENT COLOR RESEARCH REPORT
Derivatives of Squaric Acid
Period Covered (part Time) October 1969 - January 1971
FILE: 223 DATE, 3/12/71
N42409
KN-71-7 Copy NO. 17
1. 2. 3. 4. 5.
6.
7. 8. 9. 10. 11. 12.
13. 14. 15. 16. 17. 18.
Numerical File
Research Office File
223
Newark Library File
223
M.Hunt/E.Gonick, Pigments, Wilmington
W.S.Struve/J.Jackson/A.R.Hanke
R.H.Wetzel, Newport (Circ. and File)
e .F.Klenke/B.H.Perkins/Library P.j.Monahan, Newark (Vital Records)
N.G.Fisher, central Research Dept., Wilmington
Newark Library for central Report Index
Newark Library - for Central Report Index
Lawrence R. Lemer
E;E:Jaffe
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Extra
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NEWARK PLANT
PIGMENT COLOR RESEARCH REPORT
SUBJECT: Derivatives of Squaric Acid
PERIOD COVERED: (Part Time) October 1969 - January 1971
SUBMITTED BY: Lawrence j r . Lemer
Date Submitted: 1/18/71
APPROVED BY:
Date Released: 3/12/71
ABSTRACT
Squaric Acid has been substituted in the 1,3<-positions with a variety of nucleophilic reagents. Many of the products are characterized by extremely high extinction coefficients (mostly blues) and generally poor lightfastness. Others in the yellow to orange range show less strength but promising lightfastness.
r et ur n t o JACKSON LABORATORY
FILE ROOM
DUP050082608
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I. ,,XhtrodUction
Sguaric Acid (3,4-dihydroJcycyclobutenedione), 1, a colorless, strongly acidic material (pic- =2,pfc ^1), was first"prepared in 19591. It has been suggested2 that the dianion has considerable aromatic character., and this aromaticity provides the driving force for ionization.
Squaric Acid was originally prepared1'3 from chlorotrifluoroethylene (2) as fellows?
P cl
Fp 2
Zxx s,
Pa Fa
|
j
F
Fa
1 ii
Fa
More recently a German firm has reported4 a commercial synthesis starting with hexachlorobutadiene (). The reaction is carried out in one step (route B) without isolation of the intermediates.
DUP050082609
Squaric Acid undergoes many reactions, but this report will be limited, in general, to products formed by reaction with nucleophilic reagents to produce 1,3-substituted "squarates", 4,(eyelobutenedione diolates or cyclobutenediylium diolates) with pigmentary potential.
4 45
The interested reader can consult recent review articles ' ,or additional information, II Summary and Conclusions 1, 48 different derivatives of Squaric Acid have been prepared and evaluated in the Fadeometer.2 2. Only two made, thus far, warranted further testing and are out on Florida exposure in TAE-3
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-3 a. The orange product derived from barbituric acid. b. The orange product derived from 2-amino fluorenone. h i . Patent Status As none of these compounds is of commercial interest at this time, no work has been done toward establishing novelty and utility for a patent application, IV, Discussion Substituted Benzene Derivatives These compounds are, generally, blues of extreme strength (some having molar extinction coefficients of greater than 200,000 in solution), They also show some solubility in polar solvents and relatively poor lightfastness. They are easily prepared by reacting stoichiometric amounts of the activated aromatic compound with squaric acid in acetic acid or amixture of 1-butanol and benzene (azeotropic removal of water). None of these compounds seemed to be of further interest due to the color (blue) and relatively poor lightfastness. Table I summarizes the results found with each compound.
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-4 TABLE I SUBSTITUTED BENZENE DERIVATIVE OF SQUARIC ACID
0
AROMATIC COMPOUND
CH3 c 6K
EXP.NO, 1921/27
COLOR Blue
FADEOMETER
Tint sfade 24 hrs. Maas: dark ens
COMMENTS
Purchased from Aldrich Chemical Co.
1937/7
Blue
Tint s fade 72 hrs. Mass j dark ens
OH group may improve lightfastness
1921/56 1921/60
Violet Tint sfade
EtOH
100 hrs.
/max..573 Mass:dark-
(200,000)ens
Violet DMSO /max. 583
Soluble but relatively good lightfastness poor yield in prep.
Very poor yield, not fully characterized? appears to fluoresce
1921/48
Blue
Tint s fade
CHCl3 200 hrs.
/max,586 Mass sdark-
(153,000)ens
Soluble but relatively good 1ight fastness
Blue
Tint:fade
DMSO
200 hrs.
-i Max. 586 Mass: dark-
(132,000)ens
Relatively soluble; relatively lightfast
1937/46
Blue
Tint s fade 24 hrs. Masssslight change
Conjugation does not aid 1ight fastnes s
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AROMATIC COMPOUND
EXP. NO 1921/51
-5TABLE I CONTINUED
COLOR
FADEOMETER
COMMENTS
No reaction?not sufficiently nucleo philic
1921/52
1921/53 1921/61 1921/71
1921/79
Products From Activated Methylene Compounds
These compounds are hypsochromically shifted relative to the benzene derivatives (less conjugation). They also show decreased strength, but in some cases, lower solubility and enhanced lightfastness .
The procedures for preparing these compounds are the same as those previously discussed. One compound of particular interest is the insoluble orange product formed from barbituric acid (>) which has been mentioned briefly in the literature*. In ZnO extension, it shows
0"
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a slight change initially (24 hrs.) but. after 300 hrs, still retains most of its color. It looks fair after 508 hrs,/ hut the masstone shows only a slight change. Though it does not have the strength of the benzene substituted compounds/ it is still quite strong
DMF (A max 492)60/000).
A sample is out on Florida exposure in thermosetting acrylic enamel (t a e -3). Table II summarizes the results found with these compounds.
TABLE II
PRODUCTS FROM ACTIVATED METHYLENE COMPOUNDS AND SQUARIC ACID
1921/32 1921/69 1937/57
Orange DMF Amax 492 (60/000
Orange DMSO Amax 499 (94/000)
Orange
1937/47
Orange
1937/14
Purple
Tint and
Turns brown upon
masstone:
dispersion milling.
good 300 hrs . See discussion
section for further
information
T int and masstone: severe fade 24 hrs.
Soluble and very
poor lightfastness. Both due to lack of intermolecular H-bonding?
Tint and masstone: slow fade
24 hrs. and up
Fair elemental analysis intermediate solubi1ity/inter-
mediate lightfastness.
Tint and masstone: fade in 24 hrs,,
Ehirly soluble poor lightfastness
Tint-fades 24 hrs.
Soluble
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TABLE XI CONTINUED
X
EXP. NO. COLOR
FADEOMBTER
COMMENTS
1937/8 1937/37
Dull Orange Tint and Mass:
Fade 24 hrs.
Soluble in reaction medium; orange solution
1937/35
Violet
Tint and Mass; severe fade 24 hrs.
Brown Colorless
p-nitroAAA
1921/50
yellow Ochre Tintsfade 24 hrs * Mass s darkens
Pale Yellow
Soluble in reaction medium; dark red solution
Poor yield; not further character ised
Get off 2x theoretical amtt of water. Very insoluble, structure unknown
Unknown structure
Poor yield unknown structure
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-8 TABLE tt (COH'T)
X______________F.XP HO.
COLOR
FAPEOMBTSR COMMENTS
0NHCOCHCONH0 1937/61 I
Pale gold
Mass and
Gives good elements'
tint:
analysis for 2:1
fade 24 hrs . adduct
No reaction in AcOH or butanol/ benzene
No reaction under a variety of conditions
No reaction
Products soluble in reaction medium; at least 4 major products (TLC)
Substituted Aniline Derivatives
The third class of compounds prepared can be considered
derivatives of aniline* where the amino group behaves as the nucleophile upon reaction with squarie acid5'6,7
These compounds range in color from pale yellow to orange. (with notable exceptions) are relatively soluble and show poor lightfastness There was one unusual 1 si adduct found in this series which will be discussed first.
Most
It has been reported5 that 3- aminopyridine forms a 1:1 adduct (6) instead of the usual 2:1 product.
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6 This compound was found to he insoluble (1921/43) and high melting (> 320c) , but has most of its absorption in the UVi DMP (2 max 400 (14,000). A few quinoline derivatives were prepared, but either were not strong enough or showed poor lightfastness. Table III summarises these results.
X -NHa'
- NO. 1937/2
niche1 chelate
of above
1937/15
NHCOCHa
1937/9
rphOF Red-yellow
FADKOMETER COMMENTS
Tint s fade
DMF insoluble
72 hrs.
tint and mass:
Masssdarkens show some color
96 hrs.
after 168 hrs.
Green-yellow Tint:fades
24 hrs. Mass:darkens 24 hrs.
Pale yellow Mass:fades 90 hrs.
Relatively poor
elemental analysis
OH
1937/12
Pale green-
yellow
Pot "rubbed" out
The*results found with the "normal" 2:1 anilihe derivatives, with the exception of the "keto" compounds are shown n table IV.
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- .10 TABLE IV ARYLAMINO SUBSTITUTED SQUARIC ACl
R
X_______
EXP, NO. 1921/34
1921/37
1921/38 NH 1921/39
1937/52
FADEOMETER .mm.RESETS.-.
O range
d mf
Anvar 497 (64,000)
.COMMENTS
Very soluble and high melting (368-370t decomp:)
Pale green" yellow
Tint:fades 24 hrs. Mass t darkens
Fairly soluble
Green-yellow Tintsfades 24 hrs. Mass i darkens
P ed~ye1low
Tintifades 24 hrs. Mass: darkens
polymeric m.p.> 470 (darkens 350)
polymeric m.p. > 470 (darkens 270*)
Green-yellow Tintsfades 24 hrs. Mass t slight change
Green-ye1low t int:fades 24 hrs. Mass * darkens
Yellow
DMF soluble m.p.210-220 (decomp)
Blue-gray
$ints fade 24 hrs. Mass? no apparent change
Polymeric m.p.> 450
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TABLE IV CONTINUED
y
EXP NO
COLOR
FADEOMETER
"
RESULTS
COMMENTS
1937/6
Dull violet
Tint:fade Polymeric
24 bra.
m.p. 450
Mass: slight
fade
1949/15
Brown
Not further investigated
1949/8
--
-
No reaction
1949/16
Dull yellow
Tint:fades
24 hrs. Mass: fades 24 hrs.
Poor analysis
A series of acetophenone/benzophenone and fluorenone derivatives were prepared and showed interesting physical properties, summarized on Table V.
TABLE V KETO ARYLAMINO DERIVATIVES OF SOUARIC ACID
I.R.
Carbonyl
10-best
NB Frequency
1-color gone
No
1= lowest Color
24 hrs.
Comments
1937/78
Orange
10 Very in soluble fairly good lightfast ness 407 hrs.
Orange IMF max. 483 (38,000)
Yellow
7 2
Still some color after 407 hrs. in Fadeometer
Recrystallized from DMF
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TABLE V CONTINUED 1 Red-yellow
S
Greenyellow
1
1949/10 1
/
1949/9
2
1949/19 3
Redyellow solid DMF
/max. 450(40,000)
4
Green-yellow solid DMF hmax. 442(35,000)
3
Greenyellow
1
Recrystal lized from DMF. Some color after 147 hrs. in Fadsometer
Hot recrystal*lized lout. showed good elemental analysis
Fairly soluble DMF recrystal lized
Soluble DMF recrystal lized
Soluble DMF recrystal lized
It should he noted that within each group (excluding, for the moment, 2-aminofluorenone), the compound with the lowest frequency I.R. carbonyl band (lowest energy) is the one having the carbonyl adjacent to the nitrogen. These correspond, as well, to the more photo stable compounds. This behavior is analogous to that found in classical solution photochemistry. in solution, it has been shown that reversible hydrogen transfer helps prevent photoreduction (intramolecular H-bonding; also leads to lowering of carbonyl frequency) and a similar mechanism might be postulated here. The para-substituted materials can be stabilized via electron donation from nitrogen to the carbonyl, with which it is conjugated. This explanation also has precedent in classical solution photochemistry. The meta--substituted compounds cannot he stabilized in either way and in all but one case show the poorest photostability.
The compound which appears to be anomalous is the product from 2-aminofluorenone (call 2AF). A clue to its enhanced photostability may lie in its bathochromically shifted color vs. the other metasubstituted fluorenone (4-aminofluorenone) derivative? orange, as
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- 13 opposed to yellow.
Though in 2AF direct conjugation between the nitrogen and the carbonyl is absent, conjugation can occur via the other fused benzene ring as showni
This extended conjugation might account for the orange color and possibly a less energetic (less reactive?) excited state. The acetoand benzophenones cannot have this type of conjugation, and thus, photostabilization. Another mode of stabilization, instead of, or in addition to, the first is intermolecular hydrogenbonding. Compound 2AF may be able to pack in the crystal lattice in such a way as to maximize intermolecular H-bonding and thus maximize photostability via reversible intermolecular hydrogen transfer.
A large sample of 2AF is out on Florida exposure in thermosetting acrylic enamel (TAB-3),
V, Experimental Experimental details can Ire found in the references included in
the tables.
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REFERENCES
1. s. Cohen. J.R.Lacher, and J.D.Park, j.Amer.Chem.SOc. .81/3480(1959).
2. S.W.Tobey, and R.West, Tetrahedron Letters, 1179(1963).
3. J.D. Park and 8.Cohen, 3M, 0.9. 3,059,030.
4. chetnlsche Werlke Huls Ag.See: G. Machs and P. Hegenberg Angew.Chem. (Xnt.Ed.), , 888(1966).
5. H.-E. Sorenger and W. Ziegenbein, Angew.Chem.(Int.Ed.), 7,
530 (1968).
~~
6. G. ManecVe and J. Gauger,-Tetrahedron Letters, 3507(1967); 1339 (1968).
7. J. Gauger and G. Maneefce, Chew.Ear..103, 2696(1970).
8. For example sees ft. Turro, "Molecular Photochemistry", w.A.Benjamin Inc., New York, 1967, pp 137-154.
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