Method for producing organic iodine compound

A halogen exchange reaction using a tertiary halogeno compound, iodide salt, and Lewis acid addresses the inefficiencies of existing methods, enabling high-purity and high-yield production of organic iodine compounds with tertiary iodine atoms for use in precision radical polymerization and chemical synthesis.

JP2026003956AInactive Publication Date: 2026-01-14GODO SHIGEN
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
JP2024102088
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2026-01-14
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing methods for producing organic iodine compounds, particularly those with tertiary iodine atoms, suffer from low yields, require the use of toxic and difficult-to-handle reagents, and involve inefficient reaction conditions.

Method used

A halogen exchange reaction is employed using a tertiary halogeno compound, an iodide salt, and a Lewis acid under specific conditions to produce organic iodine compounds with high purity and yield.

Benefits of technology

The method enables the production of organic iodine compounds with tertiary iodine atoms in good yield and high purity, suitable for use as initiators in precision radical polymerization and as raw materials for various chemical products.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2026003956000001
    Figure 2026003956000001
  • Figure 2026003956000002
    Figure 2026003956000002
  • Figure 2026003956000003
    Figure 2026003956000003
Patent Text Reader

Abstract

To provide a method for producing an organic iodine compound, by which the organic iodine compound useful as a polymerization initiator or the like can industrially advantageously be produced in good yield and in good purity.SOLUTION: The method for producing the organic iodine compound represented by general formula (II) comprises reacting a tertiary halogeno compound represented by general formula (I) with an iodide salt in the presence of a Lewis acid. (In the above formula, X represents a Cl atom or a Br atom, and R1 and R2 each independently represent an alkyl group having 1 to 6 carbon atoms, or together represent an alkylene group having 2 to 6 carbon atoms.). EWG represents an electron-withdrawing group. ) SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a method for producing an organic iodine compound, and more particularly to an industrially advantageous method for producing an organic iodine compound having a tertiary iodine atom. [Background technology]

[0002] Organic iodine compounds, such as low-molecular-weight alkyl iodine compounds, are useful as synthetic raw materials for various chemical products, such as pharmaceutical intermediates, and are also useful in a variety of applications, such as radical reaction initiators and radical polymerization initiators, which utilize the radical species generated by cleavage of their carbon-iodine bonds. Furthermore, with a view to producing functional polymers, such as block copolymers, star polymers, and telechelic polymers, organic iodine compounds that can generate multiple tertiary radical species have attracted attention from the perspective of controlling the activity of radical species. For example, Non-Patent Document 1 discloses the results of a study into the k value, molecular weight distribution, etc., of the radical polymerization of methyl methacrylate using various low-molecular-weight alkyl iodine compounds as initiators. Furthermore, Non-Patent Document 2 discloses a method for synthesizing organic iodine compounds, in which sodium iodide is allowed to act on a sterically bulky secondary or tertiary alkyl halide compound in carbon disulfide in the presence of a Lewis acid. Patent Document 1 also discloses a molecular weight control agent for radical polymerization, which contains an organic iodine compound of a specific structure as an active ingredient. [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] Macromolecules,2014,47,pp.6610-6618 [Non-patent document 2] J.C.S.Perkin I, 1976, pp.416-420 [Patent documents]

[0004] [Patent Document 1] International Publication No. 2018 / 180547 Summary of the Invention [Problem to be solved by the invention]

[0005] In the method for producing an organic iodine compound disclosed in Non-Patent Document 1, for example, ethylene glycol is reacted with bromoisobutyryl bromide in dichloromethane to obtain ethylene glycol bis(2-bromoisobutyrate), which is then reacted with sodium iodide in acetonitrile. However, the yield is as low as 35%. The organic iodine compounds obtained by the method disclosed in Non-Patent Document 2 are limited to those with a structure in which an electron-donating group such as an alkyl group, a benzyl group, or a phenacyl group is bonded to a carbon atom to which an iodine atom is bonded, and furthermore, it is necessary to use carbon disulfide, which is highly toxic, easily decomposed, and difficult to handle. In the examples of Patent Document 1, an example of producing an organic iodine compound in which a carboxyl group or an ester group is bonded to a carbon atom to which an iodine atom is bonded is disclosed. However, this requires the use of sodium iodide in large excess relative to the starting material and a long reaction time. Therefore, there is a need for an industrially advantageous method for producing sterically bulky organic iodine compounds. An object of the present invention is to provide a method for producing an organic iodine compound, particularly an organic iodine compound having a tertiary iodine atom, in good yield, industrially advantageously, and with high purity. As a result of extensive research, the present inventors have found that the above-mentioned problems can be solved by applying a halogen exchange reaction under specific conditions, and have thus completed the present invention. [Means for solving the problem]

[0006] The present invention has the following aspects. [1] The following general formula (I)

[0007] [ka]

[0008] (wherein X represents a chlorine atom or a bromine atom, and R 1 and R 2 each independently represents an alkyl group having 1 to 6 carbon atoms, or together represent an alkylene group having 2 to 6 carbon atoms. EWG represents a group having electron-withdrawing properties. A tertiary halogeno compound represented by the following general formula (II) (hereinafter also referred to as "tertiary halogeno compound (I)") is reacted with an iodide salt in the presence of a Lewis acid:

[0009] [ka]

[0010] (In the formula, R 1 , R 2 and EWG are as defined above.) A method for producing an organic iodine compound represented by the formula (hereinafter also referred to as "organic iodine compound (II)"): [2] The method according to [1], wherein the Lewis acid is a metal salt. [3] The method according to [2], wherein the metal salt is an iron compound. [4] The method according to any one of [1] to [3], wherein the amount of the iodide salt used is in the range of 1 to 5 times by mole relative to the amount of the tertiary halogeno compound. [5] The electron-withdrawing group of the tertiary halogeno compound is a carboxyl group, a cyano group, a group of the formula -COOR 3 an ester group represented by the formula -CONR 3 R 4 an amide group represented by the formula -SO2R 3 (wherein R 3 and R 4 each independently represent an aliphatic hydrocarbon group or an aromatic hydrocarbon group in which one or more carbon atoms may be substituted with an oxygen atom, and the aliphatic hydrocarbon group and the aromatic hydrocarbon group may have a substituent.) An aldehyde group, and a halogen group. [Effects of the Invention]

[0011] According to the present invention, organic iodine compounds, particularly organic iodine compounds having a tertiary iodine atom, can be produced in good yield, industrially advantageously, and with high purity. DETAILED DESCRIPTION OF THE INVENTION

[0012] The present invention is a method for producing an organic iodine compound (II) by reacting a tertiary halogeno compound (I) with an iodide salt in the presence of a Lewis acid and a solvent. According to the present invention, organic iodine compound (II), i.e., an organic iodine compound having a specific structure containing a tertiary iodine atom and an electron-withdrawing group bonded to the carbon atom to which the iodine atom is bonded, can be produced industrially advantageously and with high purity. Such organic iodine compound (II) is useful as an initiator for precision radical polymerization, a raw material for synthesizing various chemical products, etc.

[0013] In the above general formula, R 1 and R 2 Examples of the alkyl group having 1 to 6 carbon atoms that each independently represent include linear or branched alkyl groups such as a methyl group, an ethyl group, a propyl group, an isopropyl group, a butyl group, a sec-butyl group, a pentyl group, and a hexyl group. R 1 and R 2 Examples of the alkylene group having 2 to 6 carbon atoms represented by these groups include an ethylene group, a propylene group, a butylene group, and a pentylene group. In the above general formula, examples of the electron-withdrawing group represented by EWG include a carboxyl group, a cyano group, a group represented by the formula -COOR 3 an ester group represented by the formula -CONR 3 R 4 an amide group represented by the formula -SO2R 3 Examples of the group include a sulfonyl group represented by the following formula (I), an aldehyde group, and a halogen group. where R 3 and R 4each independently represents a linear, branched, or cyclic aliphatic hydrocarbon group such as methyl, ethyl, propyl, isopropyl, butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, decyl, or undecyl; or an aromatic hydrocarbon group such as phenyl or naphthyl. Such aliphatic and aromatic hydrocarbon groups may have a substituent such as a hydroxyl group, a halogen atom, an alkoxyl group, an aryl group, an ester group, a tri-substituted silyloxy group, or a nitro group. Furthermore, such aliphatic and aromatic hydrocarbon groups may have one or more carbon atoms substituted with other atoms such as an oxygen atom.

[0014] The Lewis acid used in the production method of the present invention is preferably a metal salt. Examples of metals constituting such metal salts include B, Mg, Al, Sc, Ti, Fe, Zn, Zr, Nb, In, Sn, Cu, Ag, Sb, Hf, and lanthanoids. Among these, transition metal salts containing transition metals are preferred. Examples of transition metal salts that can be used as Lewis acids include halogen salts such as fluorides, chlorides, bromides, and iodides of metals such as Ti, Fe, Zn, Zr, Nb, In, Sn, Cu, Sb, Hf, and lanthanoids; sulfates, nitrates, and trifluoromethanesulfonates. These transition metal salts may be hydrates. Among these, the transition metal salt is preferably an iron compound such as ferrous chloride, ferric chloride, ferrous sulfate, or ferric sulfate. The amount of Lewis acid used is not strictly limited, but is usually preferably in the range of 0.1 to 10 mol % relative to the tertiary halogeno compound (I), and more preferably in the range of 1 to 8 mol % from the viewpoint of smoothly proceeding the reaction and suppressing undesired side reactions. The Lewis acids may be used alone or in combination of two or more.

[0015] Examples of iodide salts used in the production method of the present invention include alkali metal iodide salts such as lithium iodide, sodium iodide, and potassium iodide; and alkaline earth metal iodide salts such as magnesium iodide, calcium iodide, and barium iodide. From the viewpoints of availability and smooth progress of the reaction, alkali metal iodide salts such as lithium iodide, sodium iodide, and potassium iodide are preferred, and sodium iodide is more preferred. The amount of iodide salt used is not particularly limited, but from the viewpoint of smoothly proceeding the reaction and easily obtaining the organic iodine compound (II) with high purity and high productivity, the amount is usually preferably 1 molar or more, more preferably 1.2 molar or more, relative to the tertiary halogeno compound (I). Furthermore, from the viewpoint of ease of operation and economic efficiency, the amount of iodide salt used is preferably 5 molar or less, more preferably 2.5 molar or less, and even more preferably 1.8 molar or less, relative to the tertiary halogeno compound (I).

[0016] The production method of the present invention can be carried out in the absence or presence of a solvent. When the method is carried out in the presence of a solvent, examples of the solvent that can be used include hydrocarbons, ethers, ketones, nitriles, amides, and esters. Among these, at least one selected from ketones, nitriles, and esters is preferred. Examples of the ketone include acetone, 2-butanone, methyl isopropyl ketone, and methyl isobutyl ketone. Examples of the ester include ethyl acetate, methyl acetate, propyl acetate, isopropyl acetate, butyl acetate, and methyl propionate. Examples of the nitrile include acetonitrile and propionitrile. When a solvent is used, one type of these solvents may be used alone, or two or more types may be used in combination. Among them, from the viewpoint of easily allowing the reaction to proceed smoothly and industrially advantageously producing the organic iodine compound (II) having a specific structure, ketones such as acetone and 2-butanone are preferred, and acetone is more preferred. When a solvent is used, the amount thereof is not particularly limited, but is usually preferably in the range of 0.1 to 50 times by mass, more preferably 0.1 to 10 times by mass, relative to the tertiary halogeno compound (I). When two or more solvents are used in combination, it is preferable that the total amount of the solvents used falls within the above range.

[0017] The production method of the present invention can be carried out by mixing the tertiary halogeno compound (I), the Lewis acid, and the iodide salt, if necessary, in the presence of a solvent. The order of addition is not particularly limited, and for example, the tertiary halogeno compound (I), the Lewis acid, and the iodide salt may be sequentially mixed and stirred. The production method of the present invention may be carried out either in an air atmosphere or in an inert gas atmosphere such as nitrogen, helium, or argon. The production method of the present invention can be carried out under atmospheric pressure, elevated pressure, or reduced pressure. From the viewpoint of ease of operation, atmospheric pressure is preferred. The reaction temperature varies depending on the types and amounts of the tertiary halogeno compound (I), solvent, Lewis acid, and iodide salt, but from the viewpoint of industrially advantageously proceeding with the reaction, it is preferably 0°C or higher, more preferably 20°C or higher, and even more preferably 30°C or higher. The reaction temperature is preferably 100°C or lower, more preferably 90°C or lower, and even more preferably 80°C or lower. The reaction time varies depending on the type and amount of the tertiary halogeno compound (I), Lewis acid, iodide salt, and optionally the solvent, as well as the reaction temperature, but is usually in the range of 10 minutes to 24 hours.

[0018] The organic iodine compound (II) thus obtained can be isolated and purified by methods commonly used for isolating and purifying organic compounds. For example, the reaction mixture is washed with water, an aqueous sodium hydrogen sulfite solution, an acidic aqueous solution, or the like to separate the organic layer, which is then dried over anhydrous sodium sulfate or the like, if necessary, and concentrated to obtain a crude product containing the organic iodine compound (II). The crude product can also be further purified by conventional purification methods such as distillation, column chromatography, and recrystallization to increase its purity.

[0019] The obtained organic iodine compound (II) can be effectively used as a raw material for synthesizing various chemical products, such as pharmaceutical intermediates. It can also be suitably used as a polymerization initiator for living radical polymerization, such as precision radical polymerization initiators for RCMP (reversible coordination mediated polymerization), RTCP (reversible chain transfer catalyzed polymerization), RAFT (reversible addition fragmentation chain transfer polymerization), and ATRP (atom transfer radical polymerization), for the production of functional polymers with narrow molecular weight distributions, such as block copolymers and star polymers.

[0020] Although the method for producing an organic iodide compound of the present invention has been described above, the present invention is not limited to the configurations of the above-described embodiments. For example, the method for producing an organic iodide compound of the present invention may additionally include any other configuration in the configurations of the above-described embodiments, or may be substituted with any other configuration that produces a similar effect. [Example]

[0021] The present invention will be specifically described below with reference to examples, but is not limited to these examples. In each example, the purity of the product was determined by quantitative NMR (qNMR). The change in conversion rate during the reaction was tracked by sampling the reaction mixture at appropriate times. 1 HNMR was used.

[0022] Example 1 Synthesis of ethyl 2-iodo-2-methylpropanoate [ka]

[0023] 1.95 g (10 mmol) of ethyl 2-bromo-2-methylpropanoate was dissolved in 7.8 g of acetone at room temperature (25° C.), and then 2.25 g (15 mmol) of sodium iodide and 81 mg (0.5 mmol) of ferric chloride were added thereto. The mixture was heated to 55° C. and stirred for 1 hour. 1 After confirming >99% conversion using HNMR, 20 mL of ethyl acetate was added to the reaction mixture, which was then washed sequentially with 35% sodium bisulfite, dilute hydrochloric acid, and water to separate the organic layer, which was dried over sodium sulfate, concentrated under reduced pressure, and dried under vacuum to give 2.2 g of ethyl 2-iodo-2-methylpropanoate (91% isolated yield, 98% purity).

[0024] Comparative Example 1 Synthesis of ethyl 2-iodo-2-methylpropanoate 1.95 g (10 mmol) of ethyl 2-bromo-2-methylpropanoate was dissolved in 7.8 g of acetone at room temperature (25°C), and then 3.00 g (20 mmol) of sodium iodide was added thereto, and the mixture was heated to 55°C and stirred. 1 The conversion was monitored using 1 HNMR and was found to be 47% after 6 hours.

[0025] Example 2 Synthesis of ethyl 2-iodo-2-methylpropanoate The same reaction procedure as in Example 1 was carried out, except that 139 mg (0.5 mmol) of ferrous sulfate heptahydrate was added instead of 81 mg (0.5 mmol) of ferric chloride, to obtain 2.17 g of ethyl 2-iodo-2-methylpropanoate (isolated yield: 90%, purity: 98%).

[0026] Example 3 Synthesis of 2-iodo-2-methylpropionic acid [ka]

[0027] 1.67 g (10 mmol) of 2-bromo-2-methylpropionic acid was dissolved in 7.8 g of acetone at room temperature (25 °C), followed by the addition of 2.25 g (15 mmol) of sodium iodide and 81 mg (0.5 mmol) of ferric chloride. The mixture was heated to 55 °C and stirred for 1 hour. 20 mL of ethyl acetate was added to the reaction mixture, which was then washed sequentially with 35% sodium bisulfite, dilute hydrochloric acid, and water to separate the organic layer. The resulting organic layer was dried over sodium sulfate, concentrated under reduced pressure, and dried under vacuum to give 1.90 g of 2-iodo-2-methylpropionic acid (isolated yield 89%, purity 98%).

[0028] Example 4 Synthesis of 2-hydroxyethyl 2-iodo-2-methylpropanoate [ka]

[0029] (1) To a mixture of 120 g (0.719 mol) of 2-bromo-2-methylpropionic acid, 178.4 g (2.87 mol) of ethylene glycol, and 480 mL of toluene, 14.1 g (0.144 mol) of sulfuric acid was slowly added dropwise at 25°C. After the addition was complete, the mixture was heated to 70-75°C and stirred for 4 hours. The reaction mixture was cooled to 25°C and washed sequentially with 400 mL of water, 120 mL of 9% aqueous sodium bicarbonate solution, and 120 mL of water to separate the organic layer. The organic layer was dried over sodium sulfate and concentrated under reduced pressure to obtain 120 g of 2-hydroxyethyl 2-bromo-2-methylpropanoate (79.1% isolated yield). (2) 50 g (0.237 mol) of the 2-hydroxyethyl 2-bromo-2-methylpropanoate obtained above was mixed with 240 mL of acetone. 56.8 g (0.38 mol) of sodium iodide and 1.54 g (9.48 mmol) of ferric chloride were added sequentially to this mixture, and the mixture was stirred under reflux for 3 hours. The reaction mixture was filtered and concentrated under reduced pressure. 300 mL of dichloromethane was added to the residue, which was then washed sequentially with 2% aqueous sodium bisulfite, 1 N aqueous hydrochloric acid, and saturated brine to separate the organic layer. The organic layer was dried over sodium sulfate, concentrated under reduced pressure, and further dried under vacuum to obtain 55.8 g of 2-hydroxyethyl 2-iodo-2-methylpropanoate (isolated yield 87.4%, purity 98%).

[0030] Example 5 Synthesis of ethylene glycol bis(2-iodo-2-methylpropanoate) [ka]

[0031] (1) 100 g (0.60 mol) of 2-bromoisobutyric acid, 16.9 g (0.27 mol) of ethylene glycol, and 5.4 g (0.05 mol) of 98% sulfuric acid were mixed and heated to 80-90°C. The mixture was stirred and reacted under reduced pressure for 1 hour. The reaction mixture was cooled to room temperature (25°C), and 35.1 g of toluene was added. The solution was washed sequentially with 45 g of water, 156 g of a 3% by mass aqueous sodium hydroxide solution, and 35.5 g of water, and the organic layer was separated. The organic layer was concentrated under reduced pressure to obtain 83.0 g of ethylene glycol bis(2-bromo-2-methylpropanoate) (hereinafter referred to as "ester compound 1") (yield: 85%). (2) 83.0 g of ester compound 1 obtained in (1) above was mixed with 42.7 g of acetone, followed by the addition of 87 g (0.58 mol) of sodium iodide and 2.3 g (0.01 mol) of ferric chloride, heating to 55°C, and reaction for 1 hour with stirring. The reaction mixture was cooled to room temperature (25°C), and 85.4 g of ethyl acetate was added. This solution was washed with 83 g of water and 21 g of a 35% by mass aqueous solution of sodium hydrogen sulfite. The organic layer was separated and washed again with 42 g of 1.3% by mass hydrochloric acid, resulting in separation of the organic layer. This organic layer was concentrated under reduced pressure, and water was added to the resulting residue, followed by filtration. 71 g of methanol was added to the obtained crystals, and the mixture was heated to 40°C to dissolve them. The mixture was then cooled to 5°C, and the precipitated crystals were collected by filtration and dried to obtain 89 g of ethylene glycol bis(2-iodo-2-methylpropanoate) (yield 85%, purity 99%). [Industrial Applicability]

[0032] The organic iodide compounds obtained by the production method of the present invention are useful as raw materials for synthesizing various chemical products such as pharmaceutical intermediates, and as polymerization initiators.

Claims

1. The following general formula (I) 【Chemistry 1】 (wherein X represents a chlorine atom or a bromine atom, R 1 and R 2 each independently represents an alkyl group having 1 to 6 carbon atoms, or together represent an alkylene group having 2 to 6 carbon atoms. EWG represents a group having electron-withdrawing properties. a tertiary halogeno compound represented by the following general formula (II): 【Chemistry 2】 (In the formula, R 1 , R 2 and EWG are as defined above.) A method for producing an organic iodine compound represented by the formula:

2. The method of claim 1 , wherein the Lewis acid is a metal salt.

3. The method according to claim 2 , wherein the metal salt is an iron compound.

4. 2. The method according to claim 1, wherein the amount of the iodide salt used is in the range of 1 to 5 times by mole relative to the tertiary halogeno compound.

5. The electron-withdrawing group of the tertiary halogeno compound is a carboxyl group, a cyano group, a group represented by the formula -COOR 3 an ester group represented by the formula -CONR 3 R 4 an amide group represented by the formula -SO 2 R 3 (wherein, R 3 and R 4 each independently represent an aliphatic hydrocarbon group or an aromatic hydrocarbon group in which one or more carbon atoms may be substituted with an oxygen atom, and the aliphatic hydrocarbon group and the aromatic hydrocarbon group may have a substituent.) aldehyde group, and halogen group.

Citation Information

Patent Citations

  • α-Iodo-substituted carboxylic acids

    JP7402574B1

  • Process for the coproduction of alkyl iodides and alpha-iodocarboxylic acids and / or anhydrides thereof

    US5144067A

  • Image processing method, device, and image forming apparatus

    WO2018010547A1

  • Molecular-weight controlling agent for radical polymerization, method for producing polymer using same, and polymer

    WO2018180547A1