WO2011146820A2 - Process for cis-1,1,1,4,4,4,-hexafluoro-2-butene - Google Patents

Process for cis-1,1,1,4,4,4,-hexafluoro-2-butene Download PDF

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WO2011146820A2
WO2011146820A2 PCT/US2011/037310 US2011037310W WO2011146820A2 WO 2011146820 A2 WO2011146820 A2 WO 2011146820A2 US 2011037310 W US2011037310 W US 2011037310W WO 2011146820 A2 WO2011146820 A2 WO 2011146820A2
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compound
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cis
cfh
reaction
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WO2011146820A3 (en
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Andrew Joseph Poss
David Nalewajek
Haridasan K. Nair
Michael Van Der Puy
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Honeywell International Inc
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Priority to JP2013511381A priority patent/JP5833108B2/en
Priority to CN201180024991.1A priority patent/CN102892739B/en
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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/26Preparation of halogenated hydrocarbons by reactions involving an increase in the number of carbon atoms in the skeleton
    • C07C17/272Preparation of halogenated hydrocarbons by reactions involving an increase in the number of carbon atoms in the skeleton by addition reactions
    • C07C17/278Preparation of halogenated hydrocarbons by reactions involving an increase in the number of carbon atoms in the skeleton by addition reactions of only halogenated hydrocarbons
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/013Preparation of halogenated hydrocarbons by addition of halogens
    • C07C17/04Preparation of halogenated hydrocarbons by addition of halogens to unsaturated halogenated hydrocarbons
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/093Preparation of halogenated hydrocarbons by replacement by halogens
    • C07C17/20Preparation of halogenated hydrocarbons by replacement by halogens of halogen atoms by other halogen atoms
    • C07C17/202Preparation of halogenated hydrocarbons by replacement by halogens of halogen atoms by other halogen atoms two or more compounds being involved in the reaction
    • C07C17/206Preparation of halogenated hydrocarbons by replacement by halogens of halogen atoms by other halogen atoms two or more compounds being involved in the reaction the other compound being HX
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/23Preparation of halogenated hydrocarbons by dehalogenation
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/25Preparation of halogenated hydrocarbons by splitting-off hydrogen halides from halogenated hydrocarbons
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07CACYCLIC OR CARBOCYCLIC COMPOUNDS
    • C07C17/00Preparation of halogenated hydrocarbons
    • C07C17/35Preparation of halogenated hydrocarbons by reactions not affecting the number of carbon or of halogen atoms in the reaction
    • C07C17/354Preparation of halogenated hydrocarbons by reactions not affecting the number of carbon or of halogen atoms in the reaction by hydrogenation

Definitions

  • Fluorocarbon based fluids have found widespread use in industry in a number of applications, including as refrigerants, aerosol propellants, blowing agents, heat transfer media, and gaseous dielectrics. Because of the suspected environmental problems associated with the use of some of these fluids, including the relatively high global warming potentials (GWP) associated therewith, it is desirable to use fluids having the lowest possible greenhouse warming potential in addition to zero ozone depletion potential (ODP). Thus there is considerable interest in developing environmentally friendlier materials for the applications mentioned above.
  • GWP global warming potentials
  • ODP ozone depletion potential
  • Fluorinated butenes having zero ozone depletion and low global warming potential have been identified as potentially filling this need.
  • the toxicity, boiling point, and other physical properties in this class of chemicals vary greatly from isomer to isomer.
  • Catalysts that have been used for the selective reduction of non-fluorinated alkynes to alkenes include Pd/C, Pd/BaS0 4 , Pd/BaC0 3 , and Pd/CaC0 3 .
  • the use of quinoline as a catalyst modifier has been recommended whether the catalyst is Pd/C, Pd/BaS0 4 , or Lindlar catalyst, Pd/CaC0 3 /Pb. See, M. Hudlicky, Reductions in Organic Chemistry, 2nd Ed., ACS Monograph 188, 1996, p 8.
  • the Lindlar catalyst is probably the most common one used for the reduction of hydrocarbon alkynes to cis-alkenes, modified further by the addition of an aromatic amine such as quinoline or pyridine.
  • the amines while often useful in improving reaction selectivity, are not desirable from the standpoint of their toxicity.
  • the quality of the quinoline used may also affect the outcome.
  • the Pd/CaC0 3 /Pb catalyst, modified with pyridine was successfully used in the reduction of an alkyne bearing a single fluorine on the carbon adjacent to the triple bond to give the corresponding cis-alkene. See, M. Prakesch, D. Gree, and R. Gree, J. Org. Chem., 66 (2001) 3146.
  • selective hydrogenation catalyst such as NanoSelect LF catalyst (obtained from
  • Strem/BASF may be used to reduce the hexafluorobutyne to the desired cis hexafluoro- 2-butene.
  • One embodiment of the present invention is a process for preparing cis- 1,1,1,4,4,4-hexafluoropropene comprising the steps:
  • step (b) fluorinating the compound of the formed in step (a) to form a compound having the formula:
  • step (c) converting the compound formed in step (b) by a reaction selected from the group consisting of dehydrohalogenation, dehalogenation and both reactions, to form a compound having the formula:
  • the first step of the process involves the addition of CC1 4 across the double bond of fluoroolefin of Formula I:
  • CC1 4 to the olefin of Formula I can be conducted in acetonitrile with CuCl 2 at an elevated temperature of from 100°C to 150°C for a period of about 15 hours as described in J. Fluorine Chem., 1992, 56, 153.
  • the solvent can be evaporated and the residue containing the saturated product of Formula II extracted in a solvent washed with water and dried. Further purification can be accomplished by distillation.
  • the saturated compound is fluorinated with HF as shown below in Reaction No. 2:
  • the fluorination in Reaction No. 2 can be accomplished by procedures in liquid or vapor phase by many reported procedures; see, for example, U.S. Patent Nos. 6,689,924, 6,023,004, or 7,071,368. Although some amounts of over fluorinated compounds such as CF 3 CXFCXHCF 3 or CF 3 CF 2 CXHCF 3 can be formed, reaction conditions are optimized such that the major compound formed on fluorination is as depicted in Reaction No. 2. By-products formation can be reduced by judicious selection of recants ratio and conditions.
  • the liquid phase dehydrohalogenation can be conducted with a base such as aqueous NaOH, KOH and the like, preferably in the presence of a phase transfer catalyst such as tetralkylammonium chloride, crown ethers and the like, as described in U.S. Patent No. 6,548,719.
  • a base such as aqueous NaOH, KOH and the like
  • a phase transfer catalyst such as tetralkylammonium chloride, crown ethers and the like, as described in U.S. Patent No. 6,548,719.
  • Dehalogenation can be conducted by a heating halo compound with Zn metal in a solvent such as acetic anhydride or dioxane at elevated temperature. See, J. Amer. Chem. Soc. 1949, 71, 298; and J. Am. Chem. Soc. 1961, 83, 3424.
  • CF 3 CC1 2 CHC1CC1 3 (200 g, 0.63 mol) under a nitrogen atmosphere.
  • the reactor was cooled to 0°C and anhydrous HF (120 g) was condensed and added to the reactor.
  • the contents of the autoclave were heated to and maintained at a temperature of from 90°C to 100°C with agitation for 1 hour. As the reaction proceeded an increase in pressure was observed.
  • the reactor was cooled to about 20°C and vented to cold traps.
  • the product in the autoclave was washed with water and caustic solution to afford CF 3 CC1 2 CHC1CF 3 (119 g, 70% yield).
  • CF 3 CC1 2 CFHCC1 3 was used instead of CF 3 CC1 2 CHC1CC1 3 as the starting material to afford 75% yield of CF 3 CHC1CFHCF 3 .
  • Vapor phase fluorination of CF 3 CC1 2 CHC1CC1 3 with Cr 2 0 3 /Al 2 0 3 catalyst was conducted in a similar manner as described in Examples 3-6 of WO 9711043 Al . A 60% to 80% conversion of CF 3 CC1 2 CHC1CC1 3 to CF 3 CC1 2 CHC1CF 3 was observed.

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  • Chemical & Material Sciences (AREA)
  • Organic Chemistry (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Organic Low-Molecular-Weight Compounds And Preparation Thereof (AREA)
  • Low-Molecular Organic Synthesis Reactions Using Catalysts (AREA)
  • Heterocyclic Carbon Compounds Containing A Hetero Ring Having Oxygen Or Sulfur (AREA)

Abstract

Disclosed is a process for preparing cis-1,1,1,4,4,4-hexafluoropropene comprising the steps of (a) reacting CCl4 with a compound having the formula CF3CX=CXH, where each X is independently halogen or hydrogen, to form a compound having the formula CF3CXClCXHCCl3; (b) fluorinating the compound formed in step (a) to form a compound having the formula CF3CXHCXHCF3; (c) converting the compound formed in step (b) by a reaction selected from the group consisting of dehydrohalogenation, dehalogenation and both reactions, to form a compound having the formula CF3C=CCF3; and (d) catalytically reducing the compound formed in step (c) with hydrogen to form the compound having the formula (I).

Description

PROCESS FOR CIS l,l,l,4,4,4-HEXAFLUORO-2-BUTENE
CROSS-REFERENCE TO RELATED APPLICATION
This application claims domestic priority from commonly owned, copending, U.S. Provisional Patent Application Serial No. 61/347,134, filed 21 May 2010, the disclosure of which is hereby incorporated herein by reference.
BACKGROUND OF THE INVENTION
Fluorocarbon based fluids have found widespread use in industry in a number of applications, including as refrigerants, aerosol propellants, blowing agents, heat transfer media, and gaseous dielectrics. Because of the suspected environmental problems associated with the use of some of these fluids, including the relatively high global warming potentials (GWP) associated therewith, it is desirable to use fluids having the lowest possible greenhouse warming potential in addition to zero ozone depletion potential (ODP). Thus there is considerable interest in developing environmentally friendlier materials for the applications mentioned above.
Fluorinated butenes having zero ozone depletion and low global warming potential have been identified as potentially filling this need. However, the toxicity, boiling point, and other physical properties in this class of chemicals vary greatly from isomer to isomer.
One fluorobutene having valuable properties is cis-l,l,l,4,4,4-hexafluorobutene. Thus, there is a need for new manufacturing processes for the production of
hexafluorobutenes and in particular cis-l,l,l,4,4,4-hexafluorobutene:
Figure imgf000003_0001
There are several methods for producing hexafluoro-2-butene, but such processes may give exclusively the trans-isomer. See, for example, the zinc reduction of l,l,l,4,4,4-hexafluoro-2-iodobutene; K. Leedham and R. N. Hazeldine, J. Chem. Soc, 1954, 1634.
Processes that give a mixture of cis- and trans-isomers are likewise undesirable if a substantial proportion of the trans-isomer is formed. One reason is that the difference in boiling points for the two isomers is large (the trans-isomer boiling at about 9°C and the cis-isomer boiling at about 32°C). For applications that depend in large part on the boiling point of the fluorocarbon, the large difference in boiling points may mean that only one isomer is suitable and the other isomer therefore represents a yield loss. Another reason such a mixture is undesirable is that a good means for recycling the undesired trans-isomer is lacking. Ideally, a suitable process will provide the cis:trans isomers in a ratio of 10: 1 or better.
Still other processes for cis-olefins suffer from co-production of the
corresponding alkane. In the present case, this means the co-production of 1,1, 1,4,4,4- hexafluorobutane. This is likewise undesirable because it does not posses the low GWP that the corresponding butene does. Furthermore, like the trans-isomer, there is no convenient way to recycle this by-product.
One prior art method for making cis-l,l,l,4,4,4-hexafluorobutene (J. Am. Chem. Soc, 1949, 71, 298) involves reduction of hexafluoro-2-butyne with hydrogen (100 atmospheres) using Raney nickel catalyst at room temperature. Not only does this pressure require specialized equipment, but the conversion was only 82% and the product was a mixture of cis-hexafluoro-2 -butene (41% yield) and hexafluorobutane (25% yield). Ideally the amount of over-reduced material should be less than 10%. Still more preferably, the total amount of trans-isomer and butane are together less than 10%.
R.N. Hazeldine, J. Chem. Soc, 1952, pp. 2504, also reported the reduction of hexafluorobutyne with Raney nickel at 60°C and 15 atmospheres of hydrogen pressure to give cis-hexafluorobutene. Although some over-reduction to hexafluorobutane was mentioned, the yield of 91% is substantially better than the yield given in the reference cited above.
A few methods exist for the exclusive preparation of non-fluorinated cis-olefins to the exclusion of the corresponding trans-isomer. The most common of these is the catalytic reduction of alkynes. A number of catalysts may be employed for this transformation but they can, unfortunately, give a wide range of results and undesirable side reactions such as over-reduction to alkanes, formation of trans-olefins, and isomerization of cis to trans olefins. In addition, a wide range of variables can alter the results, such as temperature, mixing rate, solvent, and added reagents which may intentionally or unintentionally alter the reactivity of the catalyst.
For a general discussion of this chemistry see, P. N. Rylander, Catalytic
Hydrogenation over Platinum Metals, Chapter 4, Academic Press, 1967. For example, depending on the temperature, the reduction of acetylene dicarboxylic acid using Pd on BaS04 can give either succinic acid (no double bond) at -18°C or maleic acid (cis double bond) at 100°C, while the ratios of cis to trans products for the reduction of p-methoxy- phenylacetylene carboxylic acid with the same catalyst were similar (20% ± 5% trans isomer) over a wide temperature range. See, S. Takei and M. Ono, Nippon Nogei Kagaku Kaisi 18 (1942b) 119.
Catalysts that have been used for the selective reduction of non-fluorinated alkynes to alkenes include Pd/C, Pd/BaS04, Pd/BaC03, and Pd/CaC03. In order to achieve high selectivity, however, the use of quinoline as a catalyst modifier has been recommended whether the catalyst is Pd/C, Pd/BaS04, or Lindlar catalyst, Pd/CaC03/Pb. See, M. Hudlicky, Reductions in Organic Chemistry, 2nd Ed., ACS Monograph 188, 1996, p 8.
The Lindlar catalyst is probably the most common one used for the reduction of hydrocarbon alkynes to cis-alkenes, modified further by the addition of an aromatic amine such as quinoline or pyridine. The amines, while often useful in improving reaction selectivity, are not desirable from the standpoint of their toxicity. The quality of the quinoline used may also affect the outcome. The Pd/CaC03/Pb catalyst, modified with pyridine, was successfully used in the reduction of an alkyne bearing a single fluorine on the carbon adjacent to the triple bond to give the corresponding cis-alkene. See, M. Prakesch, D. Gree, and R. Gree, J. Org. Chem., 66 (2001) 3146. In addition, selective hydrogenation catalyst, such as NanoSelect LF catalyst (obtained from
Strem/BASF) may be used to reduce the hexafluorobutyne to the desired cis hexafluoro- 2-butene.
As is well known in the art, however, fluorocarbons often behave quite differently compared to non-fluorinated alkanes, and perfluorinated compounds may behave quite differently than even partially fluorinated compounds of similar structure. SUMMARY OF THE INVENTION
One embodiment of the present invention is a process for preparing cis- 1,1,1,4,4,4-hexafluoropropene comprising the steps:
(a) reacting CC14 with a compound having the formula:
CF3CX=CXH where each X is independently halogen or hydrogen, to form a compound having the formula:
CF3CXC1CXHCC13
(b) fluorinating the compound of the formed in step (a) to form a compound having the formula:
CF3CXHCXHCF3
(c) converting the compound formed in step (b) by a reaction selected from the group consisting of dehydrohalogenation, dehalogenation and both reactions, to form a compound having the formula:
CF3C≡CCF3 and
(d) catalytically reducing the compound formed in step (c) with hydrogen to form the compound having the formula: cis - CF3CH=CHCF3.
DETAILED DESCRIPTION OF THE INVENTION
The first step of the process involves the addition of CC14 across the double bond of fluoroolefin of Formula I:
CF3CX=CXH (I) where each X is independently either a halogen or hydrogen, to afford the saturated compound of Formula II:
CF3CXC1CXHCC13 (II)
This reaction (Reaction No. 1) is depicted below:
CF3CX=CXH + CCI4 -> CF3CXC1CXHCC13 ( X = halogen or H) (1)
Typical compounds of Formula I include CF3CC1=CC1H, CF3CH=CHC1, CF3CC1=CH2, CF3CC1=CFH, CF3CF=CHC1, CF3CF=CFH, CF3CH=CFH, CF3CF=CH2, CF3CH=CFH, CF3CH=CHBr, CF3CBr=CH2, CF3Br=CHBr, CF3CH=CHI, CF3CI=CHI, CF3CI=CH2, and the like.
Typically the addition of CC14 to the olefin of Formula I can be conducted in acetonitrile with CuCl2 at an elevated temperature of from 100°C to 150°C for a period of about 15 hours as described in J. Fluorine Chem., 1992, 56, 153. After cooling the reactor, the solvent can be evaporated and the residue containing the saturated product of Formula II extracted in a solvent washed with water and dried. Further purification can be accomplished by distillation. In the second step the saturated compound is fluorinated with HF as shown below in Reaction No. 2:
CF3CXCICXHCCI3 + 3 HF -> CF3CXCICXHCF3 + 3 HC1 (2)
The fluorination in Reaction No. 2 can be accomplished by procedures in liquid or vapor phase by many reported procedures; see, for example, U.S. Patent Nos. 6,689,924, 6,023,004, or 7,071,368. Although some amounts of over fluorinated compounds such as CF3CXFCXHCF3 or CF3CF2CXHCF3 can be formed, reaction conditions are optimized such that the major compound formed on fluorination is as depicted in Reaction No. 2. By-products formation can be reduced by judicious selection of recants ratio and conditions.
The continuous vapor phase fluorination of CF3CXCICXHCCI3 with HF and Cr203/Al203 catalyst system can also be carried out, for example, as described in
WO 9711043 Al .
The saturated compound thus formed is then subjected to dehydrohalogenation followed by dehalogenation; well known procedures can be found in Chemistry of Organic Fluorine Compounds, 2nd Edition, pages 488- 495, by M. Hudlicky. As shown below for Reaction No. 3, depending on the substituent X, dehydrohalogenation, dehalogenation or both reactions, may be employed.
CF3CXCICXHCF3 -> CF3CX=CXCF3 + HC1 (3)
CF3CX=CXCF3 + Zn -> CF3C≡CCF3 + ZnX2 (3) (for X = CI, Br, I))
In addition, when X = H, an additional steps of adding Cl2 and subsequent dehalogenations are necessary to afford CF3C≡CF3 as depicted in Reactions 3a and 3b: CF3CH=CHCF3 + Cl2 -> CF3CHC1CHCC1CF3 (3a)
CF3CHC1CHCC1CF3 -> CF3C≡CCF3 + 2 HC1 (3b)
The liquid phase dehydrohalogenation can be conducted with a base such as aqueous NaOH, KOH and the like, preferably in the presence of a phase transfer catalyst such as tetralkylammonium chloride, crown ethers and the like, as described in U.S. Patent No. 6,548,719.
Dehalogenation can be conducted by a heating halo compound with Zn metal in a solvent such as acetic anhydride or dioxane at elevated temperature. See, J. Amer. Chem. Soc. 1949, 71, 298; and J. Am. Chem. Soc. 1961, 83, 3424.
Reduction of CF3C≡CCF3 with hydrogen to cis-CF3CH=CHCF3 can be done using Lindlar catalyst, and the other catalysts described above.
The following examples are provided to further illustrate the invention and should not be taken as limitations of the invention.
Example 1
Addition of CC14 to CF3CC1=CHC1
In to a 1 Liter clean, dry stainless steel Parr Reactor was added CC14 (154 g, 1.0 mol), followed by CuCl2 (1.35 g, 0.01 mol) and acetonitrile (50 mL). The reactor was closed, cooled to -20°C and CF3CC1=CHC1 (124 g, 0.75 mol) was introduced as a liquid at about 0°C. The content in the reactor was heated to maintain a temperature of from 130°C to 140°C for 16 hours. After cooling to room temperature (about 20°C), more volatile materials were evaporated and the residue was washed with 1M HC1 (50 mL) and water (2 x 100 mL) and dried (MgS04). The product was distilled to afford 185 g (77%) CF3CC12CHC1CC13. In a similar manner, the reaction was conducted as above except that
CF3CC1=CFH was used as the starting material instead of CF3CC1=CHC1 to afford CF3CC12CFHCC13 in 80% yield.
Example 2
Fluorination of CF3CC12CHC1CC13
To a 1 Liter autoclave/Parr reactor was charged SbCl5 (25 g) and
CF3CC12CHC1CC13 (200 g, 0.63 mol) under a nitrogen atmosphere. The reactor was cooled to 0°C and anhydrous HF (120 g) was condensed and added to the reactor. The contents of the autoclave were heated to and maintained at a temperature of from 90°C to 100°C with agitation for 1 hour. As the reaction proceeded an increase in pressure was observed. The reactor was cooled to about 20°C and vented to cold traps. The product in the autoclave was washed with water and caustic solution to afford CF3CC12CHC1CF3 (119 g, 70% yield).
The above reaction was conducted in the same manner except that
CF3CC12CFHCC13 was used instead of CF3CC12CHC1CC13 as the starting material to afford 75% yield of CF3CHC1CFHCF3.
Vapor phase fluorination of CF3CC12CHC1CC13 with Cr203/Al203 catalyst was conducted in a similar manner as described in Examples 3-6 of WO 9711043 Al . A 60% to 80% conversion of CF3CC12CHC1CC13 to CF3CC12CHC1CF3 was observed.
Example 3
Dehydrohalogenation of CF3CC12CHC1CF3
To a 500 ml aqueous solution of KOH (20 wt%) containing a phase transfer catalyst (Aliquat 336, 1.5 mmol) at about 0°C in an autoclave was added
CF3CC12CHC1CF3 (0.2 mol) and stirred for 2 hours. Analysis of the volatile material by gas chromatography indicated the main product as CF3CC1=CC1CF3. Further purification was achieved by distillation
Example 4
Dehalogenation of CF3CC1≡CC1CF3
Into a 1 Liter flask fitted with a stirrer, a dropping funnel and condenser with an outlet to a cooled trap was charged with Zn dust (40 g, 0.62 mol), acetic anhydride (120 mL) and heated to a temperature range of 130°C to 135°C. To this heated solution was added a solution of CF3CC1=CC1CF3 (56 g, 0.24 mol) in 40 mL acetic anhydride over a period of 4 hours. The product CF3C≡CCF3 was removed continuously in a cold trap (-78°C).
Example 5
Reduction of CF3C≡CCF3 to cis-CF3CH=CHCF3
A I L clean, dry autoclave was charged with 3.0 g catalyst (5% Pd on CaCC>3 poisoned with 3.5% lead) and 240 mL ethanol. The content in the autoclave was cooled to -78°C and air inside the reactor was removed by purging with nitrogen after evacuating; this was repeated twice. After this 48 g CF3C≡CCF3 was condensed and the contents were brought to room temperature. Hydrogen was added such a way that the pressure in the reactor was maintained below about 90 psi and stirred for 20 hours at temperature range of 25°C to 30°C. The content in the autoclave was cooled (-78°C), and H2 gas was vented. The material in the autoclave was distilled to afford
cis-CF3CH=CHCF3 (42 g, 86%> yield). Further purification can be accomplished via distillation at 30°C to 32°C.
In a similar manner, the reaction was carried as above except for the fact that NanoSelect LF 100 or NanoSelect LF 200 (Strem Chemicals, Inc.) catalyst was used instead 5%> Pd on CaCC>3 poisoned with 3.5%> lead to afford 60%> yield of cis-CF3CH=CHCF3.
While the present invention has been particularly shown and described with reference to preferred embodiments, it will be readily appreciated by those of ordinary skill in the art that various changes and modifications may be made without departing from the scope of the invention. It is intended that the claims be interpreted to cover the disclosed embodiment, those alternatives which have been discussed above and all equivalents thereto.
REMAINDER OF PAGE INTENTIONALLY BLANK

Claims

WHAT IS CLAIMED IS:
1. A process for preparing cis-l,l,l,4,4,4-hexafluoropropene comprising steps:
(a) reacting CC14 with a compound having the formula:
CF3CX=CXH where X = halogen or H independent of each other, to form a compound having the formula:
CF3CXC1CXHCC13
(b) fluorinating the compound formed in step (a) to form a compound having the formula:
CF3CXHCXHCF3
(c) converting the compound formed in step (b) by a reaction selected from the group consisting of dehydrohalogenation, dehalogenation and both reactions, to form a compound having the formula:
CF3C≡CCF3 and
(d) catalytically reducing the compound formed in step (c) with hydrogen to form the compound having the formula:
Figure imgf000014_0001
2. The process of Claim 1 , wherein any of the steps can be run in a continuous manner.
3. The process of Claim 1, wherein the compound
Figure imgf000014_0002
is
CF3CC1=CHC1.
4. The process of Claim 1, wherein the compound CF3CX=CXH is
CF3CC1=CFH.
5. The process of Claim 1, wherein the compound CF3CXC1CXHCC13 is CF3CC12CHC1CC13.
6. The process of Claim 1, wherein the compound CF3CXC1CXHCC13 is CF3CC12CFHCC13.
7. The process of Claim 1, wherein the compound CF3CX=CXH is selected from the group consisting of CF3CC1=CC1H, CF3CH=CHC1, CF3CC1=CH2,
CF3CC1=CFH, CF3CF=CHC1, CF3CF=CFH, CF3CH=CFH, CF3CF=CH2, CF3CH=CFH, CF3CH=CHBr, CF3CBr=CH2, CF3Br=CHBr, CF3CH=CHI, CF3CI=CHI, and
CF3CI=CH2.
8. The process of Claim 1, wherein the step (c) reaction, when X = H, further comprises the step of adding Cl2 and a subsequent dehalogenation step, as follows:
CF3CH=CHCF3 + Cl2 -> CF3CHC1CHCC1CF3 CF3CHCICHCCICF3 -> CF3C≡CCF3 + 2 HC1.
9. The process of Claim 1, wherein the step (c) reaction comprises dehydrohalogenation of CF3CXHCXHCF3.
10. The process of Claim 1, wherein the step (c) reaction comprises dehalogenation of CF3CXHCXHCF3.
PCT/US2011/037310 2010-05-21 2011-05-20 Process for cis-1,1,1,4,4,4,-hexafluoro-2-butene Ceased WO2011146820A2 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
EP11784310.2A EP2576488B1 (en) 2010-05-21 2011-05-20 Process for cis-1,1,1,4,4,4,-hexafluoro-2-butene
ES11784310T ES2702533T3 (en) 2010-05-21 2011-05-20 Procedure for the preparation of cis-1,1,1,, 4,4,4-hexafluoro-2-butene
JP2013511381A JP5833108B2 (en) 2010-05-21 2011-05-20 Process for 1,1,1,4,4,4-hexafluoro-2-butene
CN201180024991.1A CN102892739B (en) 2010-05-21 2011-05-20 Process for cis-1,1,1,4,4,4,-hexafluoro-2-butene

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US12286386B2 (en) 2020-03-04 2025-04-29 The Chemours Company Fc, Llc Process to produce (Z)-1,1,1,4,4,4-hexafluoro-2-butene and intermediates

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