Information
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Patent Application
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20020049348
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Publication Number
20020049348
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Date Filed
June 08, 200123 years ago
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Date Published
April 25, 200222 years ago
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Inventors
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Original Assignees
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CPC
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US Classifications
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International Classifications
- C07C069/94
- C07C069/74
- C07C043/20
Abstract
The invention concerns hydrogenated phenanthrenes of formula I
1
Description
[0001] Phenanthrene derivatives for use in liquid-crystalline mixtures have already been disclosed in DE-A 19500768, Wo 98/27043, WO 98/27035 or WO 99/24385.
[0002] However, since the development of liquid-crystal mixtures can in no way be regarded as complete, display manufacturers are interested in a wide variety of components for mixtures.
[0003] In particular, liquid-crystal mixtures are required which have a very broad operating temperature range, but also a very low threshold voltage, for example for use in automobiles, in which a temperature range from −40 to 100° C. can easily occur, but also for portable devices such as mobile telephones and notebook PCs.
[0004] There is thus a continuing demand for novel, suitable liquid-crystal mixtures and mixture components.
[0005] The present invention thus provides novel components for use in nematic or cholesteric liquid-crystal mixtures which have positive dielectric anisotropy values combined with a favorable viscosity/clearing point ratio. Moreover, the compounds should have a high light and UV stability and thermal stability. They should furthermore be suitable for realizing high voltage holding ratios (VHR). They should also be readily obtainable synthetically and thus potentially inexpensive.
[0006] It has now been found that these requirements are satisfied by hydrogenated phenanthrenes of the formula (I)
2
[0007] in which:
[0008] R1 is H, an alkyl radical having 1 to 12 carbon atoms or an alkenyl radical having 2 to 8 carbon atoms, where, in each case, one (nonterminal) —CH2— group may be replaced by —O—, —C(═O)O—or —OC(═O) and/or one or more H may be replaced by F,
[0009] R2 is H, F, an alkyl or alkoxy radical having 1 to 12 carbon atoms or an alkenyl or alkenyloxy radical having 2 to 8 carbon atoms, where, in each case, one (nonterminal) —CH2— group may be replaced by —O— or —C(═O)O— and/or one or more H may be replaced by F,
[0010] M1 is —C(═O)O—, —OC(═O)—, —CH2O—, —OCH2—, —C≡C—, —CH2CH2 or a single bond,
[0011] m, n are each, independently of one another, zero or 1; m+n being 0 or 1,
[0012] p, q are each, independently of one another, zero or 1; p+q being 1 or 2,
3
[0013] Preference is given to the compounds of the formulae (Ia) to (Im):
4
[0014] When designating the compounds, the letters j and were omitted since they might be confused with i and I.
[0015] Very particular preference is given to those compounds of the formulae (Ia), (Ib), (Ie), (Ig), (Ih), (Ii) and (Ik) in which R2 is:
[0016] a) F,
[0017] b) an alkyl or alkyloxy radical having 1 to 2 carbon atoms in which one or more H are replaced by F, or
[0018] c) an alkenyl or alkenyloxy radical having 2 carbon atoms in which one or more H are replaced by F.
[0019] Special preference is given to the compounds of the formulae (Ii1), (Ig1), (Ib1) and (Ie1)
5
[0020] The compounds of the formula (I) are used in liquid-crystal mixtures, preferably in nematic or cholesteric liquid-crystal mixtures. The liquid-crystal mixtures of the invention comprise at least one compound of the formula (I) , preferably in an amount of 1 to 40% by weight, based on the liquid-crystal mixture. They preferably comprise at least 3 further components. The invention also provides a liquid-crystal display containing these liquid-crystal mixtures.
[0021] Typical liquid crystal mixtures are disclosed in, e.g., U.S. Pat. No. 5,378,395. Typical displays, in which these mixtures are used are AMD displays, e.g., TN-TFT displays, IPS-TFT displays and VAN-TFT displays, among various others.
[0022] The compounds of the invention can be prepared as follows:
6
[0023] a) [similarly to the method of G. Stork, S. Dowd, J. Am. Chem. Soc. 85, 2178 (1963)]
[0024] b) polyphosphoric acid [similarly to the method of R. G. Harvey, M. Halonen, Can. J. Chem. 45, 2630 (1967)]
[0025] c) H2/Pd [similarly to the method of P. N. Rylander, Hydrogenation Methods, Academic Press, London, 1985, p. 53]
[0026] The synthesis according to Scheme 1 as illustrated for a specific compound can be applied broadly to the synthesis of the compounds according to the invention by varying the fluoro compound (II) or the alkyl chains of the cyclohexylamino compounds (III) or by replacing the alkyl substituent in (III) by a 4-alkylcyclohexyl radical.
[0027] For example, replacement of 2-(2,3,4-trifluoro-phenyl)ethyl bromide (prepared similarly to the method of R. P. Houghton, M. Voyle, R. Price, J. Chem. Soc. Perkin Trans 1 (1984), 925) by 2-(2,3-difluoro-phenyl)ethyl bromide [126163-29-9] may lead to compounds of the formula (Id) or (Ih) in which R2 is F; likewise, compounds of the formula (Id) or (Ih) in which R2=H can be obtained by using 2-(2-fluoro-phenyl)ethyl bromide [91319-54-9] as (II). The subsequent ortho metalation reactions described below can be applied to the compounds obtained.
[0028] Process variations for the synthesis of intermediate (X) are described in T. Cuvigny, H. Normant, Organometallics Chem. Synth., 1 (1971) 237, and T. Takeda, H. Taguchi, T. Fujiwara, Tetrahedron Lett. 41 (2000) 65.
[0029] Another possible synthesis route, likewise illustrated for a specific compound, is shown in Scheme 2. However, those skilled in the art will recognize that replacement of the fluorinated tetralone (IV) [1101931-79-8] by 7-fluoro-1-tetralone [2840-44-0] will lead to compounds of the formula (Ik) or (Im), while compounds of the formula (Ih) or (If) can be obtained by using 5-fluoro-1-tetralone [93742-85-9]. It is also known that the substituent R1 of the compounds according to the invention can be varied by varying the alkyl halide in reaction step d).
[0030] Starting from (V), those skilled in the art can introduce the substituent R2 in the form of an alkyl group in accordance with standard ortho metalation methods, e.g. using “Schlosser base”; alternatively, the lithium compound which is initially formed can be converted into the corresponding boronic acid by means of boric esters, and this boronic acid can in turn be oxidized to give the corresponding 2-hydroxyphenanthrene derivative. The latter can be transformed by Williamson ether synthesis into compounds of the formula (Ii) [or, similarly, (Ig)] in which R2 is an alkyloxy group; compounds of the formula (I) in which M1 is —OC(═O)— can be obtained by esterification.
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[0031] a) 1. H2C═CHCH2MgBr 2. H2O 3.H3PO4 [similarly to the method of M. Mohammadi, G. W. Kabalka, R. D. Finn, J. Lab. Compds. Radiopharm. XXIV, 317 (1987)]
[0032] b) thexylborane [similarly to the method of M. Mohammadi, G. W. Kabalka, R. D. Finn, J. Lab. Compds. Radiopharm. XXIV, 317 (1987)]
[0033] c) 1. NaCN 2. TFAA 3. NaOH/H2O2 [similarly to the method of M. Mohammadi, G. W. Kabalka, R. D. Finn, J. Lab. Compds. Radiopharm. XXIV, 317 (1987)]
[0034] d) 1. LDA 2. n-propyl bromide [similarly to the method of M. Mohammadi, G. W. Kabalka, R. D. Finn, J. Lab. Compds. Radiopharm. XXIV, 317 (1987)]
[0035] e) e.g. Et3SiH/TFA Without further elaboration, it is believed that one skilled in the art can, using the preceding description, utilize the present invention to its fullest extent. The following preferred specific embodiments are, therefore, to be construed as merely illustrative, and not limitative of the remainder of the disclosure in any way whatsoever.
[0036] In the foregoing and in the following examples, all temperatures are set forth uncorrected in degrees Celsius; and, unless otherwise indicated, all parts and percentages are by weight.
[0037] The entire disclosure of all applications, patents and publications, cited above or below, and of corresponding German application No. 100 28 451.5, filed Jun. 8, 2000, is hereby incorporated by reference.
[0038] All temperature differences are difference degrees Celsius. All physical properties are given for 20° C., the refractive indices are given for a wavelength of 589 nm, and the dielectric anisotropies are given for a frequency of 1 kHz.
Example 1
[0039] 6,8-Difluoro-7-pentyl-2-propyl-1,2,3,4,4a,9,9a,10-octahydrophenanthrene
[0040] A solution of 5,7-difluoro-1-tetralone [110931-79-8] (prepared in accordance with DE-A 3702039) in tetrahydrofuran is added to an equimolar amount of an allylmagnesium bromide solution in ether at 0° C. The reaction mixture is subjected to conventional aqueous acidic workup (Mohammadi et al., J. Lab. Cpd. Radiopharm. XXIV, 317 (1987)) and distillation. The 5,7-difluoro-1-(1-propen-3-yl)-3,4-dihydronaphthalene obtained is reacted with an equimolar amount of thexylborane in terahydrofuran to give B-thexyl6,8-difluoro-2,3,4,4a,9,9a,10-octahydro-1-boraphenanthrene which is reacted with equimolar amounts of sodium cyanide at room temperature without further characterization. After 2 h, an equimolar amount of trifluoroacetic anhydride (TFAA) is added dropwise at −75°C., and the mixture is brought to room temperature with stirring. 3 equivalents of NaOH are added and the mixture is oxidized with 50% H2O2, finally at 50°C.; extraction and chromatography yield 1-keto6,8-difluoro-1,2,3,4,4a,9,9a,10-octahydrophenanthrene. As described by Mohammadi et al., J. Lab. Cpd. Radiopharm. XXIV, 317 (1987), this product can be converted into 1-keto-6,8-difluoro-2-propyl-1,2,3,4,4a,9,9a,10-octahydrop by reacting with lithium diisopropylamide (LDA) followed by addition of n-propyl bromide. This product can be converted into 6,8-difluoro-1,2,3,4,4a,9,9a,10-octahydrophenanthrene by reducing with triethylsilane in trifluoroacetic acid. 6,8-Di- fluoro-7-pentyl-2-propyl-1,2,3,4,4a,9,9a,10-octahydro-phenanthrene is obtained by ortho metalation using “Schlosser base” (i.e. butyllithium and potassium tertbutylate; see, for example: F. Mongin, M. Schlosser, Tetrahedron Lett. 1996, 37, 6551−6554) at −75°C., quenching with n-pentyl bromide and conventional workup by hydrolysis, extraction, chromatography (silica gel, dichloromethane) and repeated recrystallization (to increase the proportion of the desired isomer, among other things).
Example 2
[0041] A nematic test mixture MLC-9000-100 (from Merck KGaA, Darmstadt, Germany) is admixed with 5% of the compound of Ex. 1; the following improvements are obtained in comparison with the values of the mixture MLC-9000-100 given in parentheses:
[0042] clearing point (T(N,I))=92.5° C. (90.5° C.)
[0043] rotational viscosity (γ1)=196 mPas (201 mPas)
[0044] birefringence (Δn)=0.1105 (0.1137).
Examples 3 to 28
[0045] The following compounds are prepared as depicted in Scheme 1. These compounds have the properties shown in following table.
1|
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8
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No.R1YR2ΔnΔε
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3CH3HF
4C2H5HF
5n-C3H7HF
6n-C4H9HF
7n-C5H11HF
8n-C6H13HF
9n-C7H15HF
10CH3OHF
11C2H5OHF
12n-C3H7OHF
13CH2═CHHF
14CH3—CH═CHHF
15CH3FF
16C2H5FF
17n-C3H7FF0.08114.6
18n-C4H9FF
19n-C5H11FF
20n-C6H13FF
21n-C7H15FF
22CH3OFF
23C2H5OFF
24n-C3H7OFF
25CH2═CHFF
26CH3—CH═CHFF
27n-C3H7FOCF3
28n-C3H7FOCF3
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Examples 29 to 54
[0046] The following compounds are prepared as depicted in Scheme 1. These compounds have the properties shown in following table.
2|
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9
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No.R1YR2ΔnΔε
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29CH3HF
30C2H5HF
31n-C3H7HF
32n-C4H9HF
33n-C5H11HF
34n-C6H13HF
35n-C7H15HF
36CH3OHF
37C2H5OHF
38n-C3H7OHF
39CH2═CHHF
40CH3—CH═CHHF
41CH3FF
42C2H5FF
43n-C3H7FF
44n-C4H9FF
45n-C5H11FF0.13917.3
46n-C6H13FF
47n-C7H15FF
48CH3OFF
49C2H5OFF
50n-C3H7OFF
51CH2═CHFF
52CH3—CH═CHFF
53n-C3H7HOCF3
54n-C3H7FOCF3
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Examples 55 to 83
[0047] The following compounds are prepared as described in Example 3. These compounds have the properties shown in the following table.
3|
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10
No.R1YR2ΔnΔε
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55CH3HF
56C2H5HF
57n-C3H7HF
58n-C4H9HF
59n-C5H11HF
60n-C6H13HF
61n-C7H15HF
62CH3OHF
63C2H5OHF
64n-C3H7OHF
65CH2═OHHF
66CH3—CH═CHHF
67CH3FF
68C2H5FF
69n-C3H7FF
70n-C4H9FF
71n-C5H11FF0.08111.0
72n-C6H13FF
73n-C7H15FF
74CH3OFF
78C2H5OFF
79n-C3H7OFF
80CH2═CHFF
81CH3—CH═CHFF
82n-C3H7FOCF3
83n-C3H7FOCF3
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Examples 84 to 109
[0048] The following compounds are prepared as described in Example 29. These compounds have the properties shown in the following table.
4|
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11
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No.R1YR2ΔnΔε
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84CH3HF
85C2H5HF
86n-C3H7HF
87n-C4H9HF
88n-C5H11HF
89n-C6H13HF
90n-C7H15HF
91CH3OHF
92C2H5OHF
93n-C3H7OHF
94CH2═CHHF
95CH3—CH═CHHF
96CH3FF
97C2H5FF
98n-C3H7FF0.13215.2
99n-C4H9FF
100n-C5H11FF
101n-C6H13FF
102n-C7H15FF
103CH3OFF
104C2H5OFF
105n-C3H7OFF
106CH2═CHFF
107CH3—CH═CHFF
108n-C3H7FOCF3
109n-C3H7FOCF3
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[0049] Unless explicitly stated otherwise, the following conditions apply in the present application. The physical properties were determined as described in Merck Liquid Crystals, Physical Properties of Liquid Crystals, Description of the Measurement Methods, ed. W. Becker (November 1997).
Claims
- 1. A hydrogenated phenanthrene compound of formula I
- 2. A compound according to claim 1, wherein in formula (I), n=0.
- 3. A compound according to claim 1, wherein in formula (I), n=0,
- 4. A compound according to claim 1, of formulae Ia to Im
- 5. A compound according to claim 4, of formula Ia
- 6. A compound according to claim 4, of formula Ib
- 7. A compound according to claim 4, of formula Ic
- 8. A compound according to claim 4, of formula Id
- 9. A compound according to claim 4, of formula Ie
- 10. A compound according to claim 4, of formula If
- 11. A compound according to claim 4, of formula Ig
- 12. A compound according to claim 4, of formula Ih
- 13. A compound according to claim 4, of formula Ii
- 14. A compound according to claim 4, of formula Ik
- 15. A compound according to claim 4, of formula Im
- 16. A liquid-crystal mixture, comprising at least two liquid-cyrstalline compounds, wherein at least one compound is one of formula (I) according to claim 1.
- 17. A liquid-crystal mixture according to claim 5, comprising 1-40% by weight of at least one compound of formula (I), based on the liquid-crystal mixture.
- 18. A liquid-crystal mixture according to claim 5, which is nematic or cholesteric.
- 19. An electrooptical display containing a liquid-crystal mixture according to claim 5.
- 20. A liquid-crystal mixture, comprising at least two liquid-cyrstalline compounds, wherein at least one compound is one of formula (I) according to claim 2.
- 21. A liquid-crystal mixture according to claim 9, which is nematic or cholesteric.
- 22. An electrooptical display containing a liquid-crystal mixture according to claim 9.
- 23. A liquid-crystal mixture, comprising at least two liquid-cyrstalline compounds, wherein at least one compound is one of formula (I) according to claim 3.
- 24. A liquid-crystal mixture according to claim 12, which is nematic or cholesteric.
- 25. An electrooptical display containing a liquid-crystal mixture according to claim 12.
- 26. A liquid-crystal mixture, comprising at least two liquid-cyrstalline compounds, wherein at least one compound is one of formula (I)a to (I)m according to claim 4.
- 27. A liquid-crystal mixture according to claim 15, which is nematic or cholesteric.
- 28. An electrooptical display containing a liquid-crystal mixture according to claim 15.
Priority Claims (1)
Number |
Date |
Country |
Kind |
100 28 451.5 |
Jun 2000 |
DE |
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