herbicides
Disubstituted and trisubstituted pyrazolo-lactam/thiolactam-carboxamide derivatives offer improved herbicidal activity, addressing the need for effective weed control in crops by forming agrochemical compositions.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SYNGENTA CROP PROTECITON AG
- Filing Date
- 2021-07-30
- Publication Date
- 2026-04-13
AI Technical Summary
Existing herbicidal compounds lack sufficient efficacy in controlling unwanted plant growth, particularly weeds in crops, and there is a need for more effective herbicides with improved activity.
Development of disubstituted and trisubstituted pyrazolo-lactam/thiolactam-carboxamide derivatives, which exhibit remarkable herbicidal activity, and their formulation into agrochemical compositions for application to unwanted plants or their habitats.
The novel compounds demonstrate superior herbicidal activity compared to existing derivatives, providing effective control of weeds in crops with enhanced efficacy.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to novel disubstituted and trisubstituted pyrazolo-lactam / thiolactam-carboxamide derivatives, methods for producing them, and intermediates for use in such methods. The present invention further extends to herbicidal compositions comprising such derivatives, and the use of such compounds and compositions in controlling the growth of undesirable plants, particularly in controlling weeds in crops of useful plants. [Background technology]
[0002] Herbicidal pyrrolidinone derivatives are described in International Publication No. 2015 / 084796. [Overview of the project]
[0003] The present invention is based on the discovery that disubstituted and trisubstituted pyrazolo-lactam-carboxamide derivatives of formula (I), as defined below, exhibit remarkably good herbicidal activity.
[0004] Therefore, in the first embodiment, equation (I) [ka] (In the formula, X is O or S; Y is H, methyl or methoxy; R 1 R is located on one or both free ring carbon atoms. 2 A 1-difluoromethyl-pyrazole-3-yl or 1-difluoromethyl-pyrazole-4-yl ring substituted by each R 2 These are independently halogens, C1-C3 fluoroalkyls, C1-C3 haloalkoxys, C1-C3 alkoxys, or C1-C3 alkyls; R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl ring system which may be optionally substituted by substituents; and each R 4is independently halogen, C1-C6 alkyl, C1-C6 haloalkyl, C1-C6 alkoxy, C1-C6 haloalkoxy, cyano, nitro, C1-C6 alkylthio, C1-C6 alkylsulfinyl or C1-C6 alkylsulfonyl) Compounds of are provided.
[0005] According to a second aspect of the present invention, there is provided an agrochemical composition comprising a compound of formula (I) and an agrochemically acceptable diluent or carrier. Such agricultural compositions may further comprise at least one additional active ingredient.
[0006] According to a third aspect, there is provided a method of controlling the growth of unwanted plants, the method comprising applying a compound of formula (I) as defined herein or a herbicidal composition as defined herein to the unwanted plants or their habitat.
[0007] According to a fourth aspect, there is provided the use of a compound of formula (I) as a herbicide.
[0008] Further aspects include methods for producing a compound of formula (I) as described herein and intermediates for use in such methods.
Mode for Carrying Out the Invention
[0009] As used herein, the term "C1-6 alkyl" consists of only carbon and hydrogen atoms, contains no unsaturation, has 1 to 6 carbon atoms, and is a straight-chain or branched-chain hydrocarbon chain group bonded to the remainder of the molecule by a single bond. The term "C 1-4 alkyl" should be construed accordingly. Examples of C 1-6 alkyl include methyl, ethyl, n-propyl, n-butyl, n-pentyl, n-hexyl and their isomers, such as iso-propyl, iso-butyl, sec-butyl, tert-butyl or iso-amyl. Without being limited thereto, "C 1-4The alkylene group is characterized by the fact that such a group is attached to the rest of the molecule by two single bonds, C 1-4 This refers to the corresponding definition of alkyl. 1-2 The term "alkylene" should be interpreted accordingly. 1-4 Examples of alkylenes, though not limited to these, include -CH2-, -CH2CH2-, and -(CH2)3-.
[0010] As used herein, the term "halogen" refers to fluorine (fluoro), chlorine (chloro), bromine (bromo), or iodine (iod). The same applies to halogens in relation to other definitions, such as haloalkyl or haloalkoxy.
[0011] The haloalkoxy is, for example, fluoromethoxy, difluoromethoxy, trifluoromethoxy, 2,2,2-trifluoroethoxy, 1,1,2,2-tetrafluoroethoxy, 2-fluoroethoxy, 2-chloroethoxy, 2,2-difluoroethoxy, or 2,2,2-trichloroethoxy, preferably difluoromethoxy, 2-chloroethoxy, or trifluoromethoxy.
[0012] As used herein, the terms "hydroxyl" or "hydroxy" mean the -OH group.
[0013] As used herein, "C 1-6 The term "alkoxy" is derived from the formula -OR a (In the formula, R a This is generally defined as C as described above. 1-6 It refers to the group of an alkyl group. 1-4 Alkoxy should be interpreted accordingly. C 1-6 Examples of alkoxys, though not limited to these, include methoxy, ethoxy, propoxy, isopropoxy, and tert-butoxy. It should also be understood that two alkoxy substituents can reside on the same carbon atom.
[0014] As used herein, "C1-6 The term "alkylsulfonyl" is derived from the formula -S(O)2R a (In the formula, R a This is C as generally defined above. 1-6 It refers to the group of an alkyl group. 1-4 The term "alkylsulfonyl" should be interpreted accordingly. Preferred alkylsulfonyl groups include methylsulfonyl, ethylsulfonyl, propylsulfonyl, isopropylsulfonyl, n-butylsulfonyl, isobutylsulfonyl, sec-butylsulfonyl, or tert-butylsulfonyl. Methylsulfonyl or ethylsulfonyl are particularly preferred.
[0015] As used herein, "C 1-6 The term "alkylsulfinyl" is derived from the formula -S(O)R a (In the formula, R a This is C as generally defined above. 1-6 It refers to the group of an alkyl group. 1-4 The term "alkylsulfinyl" should be interpreted accordingly. Preferred alkylsulfinyl groups are methylsulfinyl, ethylsulfinyl, propylsulfinyl, isopropylsulfinyl, n-butylsulfinyl, isobutylsulfinyl, sec-butylsulfinyl, and tert-butylsulfinyl. Methylsulfinyl and ethylsulfinyl are particularly preferred.
[0016] As used herein, "C 1-6 The term "alkylthio" is derived from the formula -SR a (In the formula, R a This is C as generally defined above. 1-6 It refers to the group of an alkyl group. 1-4 The term "alkylthio" should be interpreted accordingly. Preferred examples of alkylthio include methylthio, ethylthio, propylthio, isopropylthio, n-butylthio, isobutylthio, sec-butylthio, or tert-butylthio. Methylthio and ethylthio are particularly preferred.
[0017] As used herein, the term "cyano" means the -CN group.
[0018] As used herein, nitro means the -NO2 group.
[0019] Compounds of formula (I) may exist as different geometric isomers or in the form of different tautomers. The present invention encompasses the use of all such isomers and tautomers (such as lactam-lactim tautomers and keto-enol tautomers), as well as mixtures thereof in any ratio, and isotopic forms such as deuterated compounds. They may contain one or more chiral centers, thus giving rise to optical isomers and diastereomers. The present invention is presented for formula (I) regardless of stereochemistry, but includes the use of all such optical isomers and diastereomers, as well as racemic and divided enantiomers of high purity R and S stereoisomers, and other mixtures of R and S stereoisomers and their phytochemically acceptable salts. It is understood that certain optical isomers or diastereomers may have more desirable properties than other optical isomers or diastereomers. Therefore, when disclosing and claiming the present invention, if a racemic mixture is disclosed, it is clearly understood that each optical isomer, such as a diastereomer, which is substantially free of any other, is also disclosed and claimed.
[0020] In each case, the compound of formula (I) according to the present invention is in a free form, an oxidized form as an N oxide, a covalently hydrated form, or a salt form such as an agriculturally usable or agrochemically acceptable salt form.
[0021] N-oxides are oxidized forms of tertiary amines or nitrogen-containing heteroaromatic compounds. They are described, for example, in the book "Heterocyclic N-oxides" by A. Albini and S. Pietra, CRC Press, Boca Raton 1991.
[0022] As stated above, the present invention also includes agriculturally acceptable salts that can be formed with the compound of formula (I) in combination with amines (e.g., ammonia, dimethylamine, and triethylamine), alkali metal and alkaline earth metal bases, or quaternary ammonium bases. Among the alkali metal and alkaline earth metal hydroxides, oxides, alkoxides, and carbonates and hydrogen carbonates used as salt-forming agents, the hydroxides, alkoxides, oxides, and carbonates of lithium, sodium, potassium, magnesium, and calcium should be emphasized, with particular emphasis on those of sodium, magnesium, and calcium. Corresponding trimethylsulfonium salts can also be used. The compound of formula (I) according to the present invention also includes hydrates that can be formed during salt formation.
[0023] R 1 , R 2 , R 3 , R 4 Preferred values for X and Y are shown below, and the compounds of formula (I) according to the present invention may include any combination of the above values. Those skilled in the art will understand that it is possible to combine the values for any specified set of embodiments with the values for any other set of embodiments, provided that such combinations are not mutually restrictive.
[0024] One of the key features of a compound of formula (I) as defined herein is that (a) the pyrazole moiety is either disubstituted or trisubstituted, and (b) one of the substituents is supported on a ring nitrogen atom, and the substituent is difluoromethyl (-CF2H). Such compounds have far superior herbicidal activity compared to similar compounds that have an unsubstituted pyrazole moiety or a monosubstituted pyrazole moiety supported at this position, such as those described in International Publication No. 2015 / 084796. Therefore, R 1 R is located on one or both free ring carbon atoms. 2It is defined herein as a 1-difluoromethyl-pyrazole-3-yl or 1-difluoromethyl-pyrazole-4-yl ring substituted with .Therefore, it will be apparent to those skilled in the art that the pyrazole portion is a carbon attached to the remainder of the molecule.
[0025] Preferably, R 1 R 1 -1, R 1 -2, R 1 -3 and R 1 -4 [ka] (In the formula, R 2 (where n is an integer of 1 or 2, and the dashed line indicates a bond point to the remainder of the molecule) It is selected from the group consisting of the following.
[0026] Preferably, R 1 R 1 When R is -1 and n is 1, 1 It is supported by ring carbon atoms adjacent to the substituted ring nitrogen atom. Therefore, R 1 -1 has the following structure [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b (These are hydrogen, halogens, C1-C3 fluoroalkyls, C1-C3 haloalkoxys, C1-C3 alkoxys, or C1-C3 alkyls; and the dashed line indicates a bond point to the remainder of the molecule.) It can be described by:
[0027] In a series of preferred embodiments, R 1 R 1 It is -1.
[0028] R as defined herein 2is a halogen, a C1-C3 fluoroalkyl, a C1-C3 haloalkoxy, a C1-C3 alkoxy, or a C1-C3 alkyl. Preferably, R 2 R is a halogen, a C1-C3 alkyl, or a C1-C3 fluoroalkyl. More preferably, 2 is fluoro, chloro, bromo, methyl, ethyl, fluoromethyl, difluoromethyl, trifluoromethyl, or difluoroethyl. More preferably, R 2 These are fluoro, chloro, bromo, methyl, or ethyl.
[0029] R 1 R 1 If R is -1, 2a The element is preferably a C1-C3 alkyl group, more preferably a methyl or ethyl group.
[0030] R 1 R 1 In a series of embodiments where R is -1, 2a Preferably, is a C1-C3 alkyl group, and R 2b It is either hydrogen or a halogen.
[0031] As specified herein, X may be either O or S. In a series of embodiments, X is O. In a further series of embodiments, X is S.
[0032] In all embodiments, Y may be hydrogen, methyl, or methoxy. However, Y is preferably hydrogen or methyl. Methyl is particularly preferred.
[0033] R 3 is 1, 2, or 3 R 4 This specification defines a phenyl, pyridinyl, or thienyl ring system which may be optionally substituted by substituents. Preferably, R 3 R 3 -1, R 3 -2, R 3 -3, R 3 -4, R 3 -5 and R3 -6 [ka] (In the formula, p is an integer of 0, 1, 2, or 3, R 4 (The terms are as defined herein, and the wavy lines indicate the bonding points to the rest of the molecule.) It is selected from the group consisting of the following.
[0034] Comfortable, R 3 is a phenyl or pyridinyl ring system which may be optionally substituted, and in particular R 3 -1 or R 3 It is -3.
[0035] p is preferably an integer of 1 or 2.
[0036] Each R 4 R can be independently selected from the group consisting of halogens, C1-C6 alkyls, C1-C6 haloalkyls, C1-C6 alkoxys, C1-C6 haloalkoxys, cyanos, nitros, C1-C6 alkylthios, C1-C6 alkylsulfinyls, and C1-C6 alkylsulfonyls. Preferably, each R 4 R can be independently selected from the group consisting of halogens, C1-C6 alkyls, C1-C6 haloalkyls, and C1-C6 alkoxys. More preferably, each R 4 These are independently fluoro, chloro, bromo, C1-C3 alkyl, C1-C3 haloalkyl, or C1-C3 alkoxy. More preferably, each R 4 R is independently fluoro, chloro, methyl, ethyl, C1-fluoroalkyl, or methoxy. In a series of embodiments, each R 4 These are independently fluoro, methyl, or ethyl.
[0037] In a series of embodiments, R 3 teeth, [ka] (In the formula, the wavy line indicates a bond point to the remainder of the molecule.) It is selected from the group consisting of the following.
[0038] Particularly preferred compounds of formula (I) are shown in Table 1 below, and are referred to as compounds of formula (T-1). Compounds of formula (T-1) are R 1 R 1 -1, and therefore the structure [ka] (In the formula, R 2a and R 2b These are defined in the table, and the dashed lines indicate the bonding points to the remainder of the molecule, X, Y and R. 3 (As defined in the table) It is a compound of formula (I) having [the specified element].
[0039] [Table 1] TIFF0007844439000008.tif244133 TIFF0007844439000009.tif244133 TIFF0007844439000010.tif244133 TIFF0007844439000011.tif245134 TIFF0007844439000012.tif249130 TIFF0007844439000013.tif236132 TIFF0007844439000014.tif237133 TIFF0007844439000015.tif237132 TIFF0007844439000016.tif237133 TIFF0007844439000017.tif237133 TIFF0007844439000018.tif236132 TIFF0007844439000019.tif141132
[0040] More preferred compounds of formula (I) are those mentioned below in the examples.
[0041] As specified above herein, the compounds of formula (I) can be produced and used in the form of a racemic mixture. However, enantiomers having the following stereochemistry are particularly preferred.
Chemical formula
[0042] The compounds of formula (I) can be synthesized using the method described in International Publication No. 2015 / 084796.
[0043] The compounds of the present invention (where the substituents X, Y, R 1 , R 2 , R 2a , R 2b , R 3 , R 4 , n and p are as defined above herein unless otherwise specified) can also be synthesized from a suitable halogenated pyrazole of formula (A) according to the following general reaction scheme. The starting materials used for the preparation of the compounds of formula (I) can be purchased from normal commercial manufacturers or prepared by known methods. The starting materials and intermediates can be purified by conventional technical methodologies such as chromatography, crystallization, distillation and filtration before use in the next step. Reaction Scheme 1
Chemical formula
[0044] As shown in Reaction Scheme 1 above, the desired halogenated pyrazole (in this case, R 1 is R 1 -1, and R 2a and R 2bHowever, as defined herein above, the compound of formula (A), in which Hal is a halogen, is reacted with ethyl acrylate under a palladium catalyst to yield the substituted vinylpyrazole of formula (B). The substituted vinylpyrazole of formula (B) is cycloaddition with dithiolane-isocyanate iminium methylide (I) to yield a mixture of pyrrolidine ring adducts [(D), (E) and their enantiomers]. These ring adducts can be separated by chromatography. The desired pyrrolidine ring adduct (D) is reacted with a hydroxide base in a water / ether mixed solvent system to yield the 3-carboxyl-substituted thiolactam of formula (X). Using standard amide bonding conditions, e.g., propanephosphonic anhydride in a suitable solvent such as dichloromethane and a suitable base such as N,N-diisopropylethylamine, the 3-carboxyl-substituted thiolactam of formula (X) is bonded with aniline of formula (G) to yield the desired amide of formula (I). Subsequently, the thiolactam of formula (I) can undergo oxidative hydrolysis with a hydrogen peroxide solution and a suitable acid to yield the lactam derivative compound of formula (I). Single enantiomers can be prepared by chiral separation.
[0045] As an alternative route to the lactam compound of formula (I) (i.e., the compound of formula (I) where X is O), the above process can be followed up to the production of the 3-carboxyl-substituted thiolactam of formula (X). Next, as shown in reaction scheme 2 below, the compound of formula (X) can be oxidatively hydrolyzed with a hydrogen peroxide solution and a suitable acid such as hydrobromic acid or hydrochloric acid to yield the compound of formula (J) where Y is methyl. The compound of formula (J) where Y is H or methoxy can be synthesized using the method described in International Publication No. 2015 / 084796. Next, as shown in reaction scheme 3 below, the compound of formula (J) can be reacted with aniline of formula (G) using propanephosphonic anhydride in a suitable solvent such as dichloromethane together with a suitable base such as N,N-diisopropylethylamine. Reaction Scheme 2 [ka] Reaction scheme 3 [ka]
[0046] Salt (C) can be prepared as described in Tetrahedron Lett. 1995, 36, 9409.
[0047] 1-(difluromethyl)-3-iodopyrazole of formula (A), which can be used in reaction scheme 1 above, where R is methyl or ethyl, can be synthesized as shown in reaction scheme 4 below. Reaction scheme 4 [ka]
[0048] The desired 3-nitro-1H-pyrazole-5-yl can be derived from the corresponding 3-amino-1H-pyrazole-5-yl by oxidation with hydrogen peroxide and a suitable oxidizer such as sodium tungstate. Next, in a dioxane / water mixed solvent system, 3-nitro-1H-pyrazole-5-yl is reacted with monochlorodifluoromethane using a hydroxide base. The resulting 1-(difluoromethyl)-3-nitropyrazole is hydrogenated with palladium-supported carbon in a hydrogen atmosphere in an alcohol solvent such as methanol to yield 1-(difluoromethyl)pyrazole-3-amine. The amine can be converted to the desired iodide under standard diazotization conditions such as sodium nitrite, using a suitable acid such as hydrochloric acid and potassium iodide as the iodide source.
[0049] Such processes and the intermediate compounds of formulas (A), (B), (D), (E), (X), and (J) form further embodiments of the present invention.
[0050] Therefore, in a further embodiment, a process for producing a compound of formula (I) as defined herein, wherein X is S, is provided, (i) A step of reacting the compound of formula (A) with ethyl acrylate under palladium catalyst to give the compound of formula (B). [ka] (In the formula, R 2a These are halogens, C1-C3 fluoroalkyls, C1-C3 haloalkoxys, C1-C3 alkoxys, or C1-C3 alkyls; R 2b is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; and Hal is a halogen. (ii) A step in which the compound of formula (B) from step (i) is reacted with the compound of formula (C) in which Y is methyl in a cycloaddition reaction to obtain a mixture of compounds of formulas (D) and (E), [ka] (iii) A step in which the compound of formula (D) is reacted with a hydroxide base in a water / ether mixed solvent system to give the compound of formula (X). [ka] (In the formula, R 2a , R 2b And Y is as defined in steps (i) and (ii) above), (iv) Using propanephosphonic anhydride in a suitable solvent, together with a suitable base, react the compound of formula (X) from step (iii) with aniline of formula (G). [ka] (In the formula, R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl ring system which may be optionally substituted by substituents, and each R 4These are independently halogens, C1-C6 alkyls, C1-C6 haloalkyls, C1-C6 alkoxys, C1-C6 haloalkoxys, cyanos, nitros, C1-C6 alkylthios, C1-C6 alkylsulfinyls, or C1-C6 alkylsulfonyls. The process that yields the compound of formula (I) Includes.
[0051] In a further embodiment, a process for producing a compound of formula (I) as defined herein, wherein X is O, the process comprising steps (i) to (iv) as defined above, and (v) A step in which the compound of formula (I) from step (iv) is oxidatively hydrolyzed with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (I) where X is O. It also includes.
[0052] Since the sequence of the oxidative hydrolysis and aniline coupling steps can be carried out in a different order from the outline described above in reaction schemes 2 and 3, the present invention provides a further process for the production of a compound of formula (I) as defined herein, where X is O, the process comprising steps (i) to (iii) as defined above, and (iv) A step in which the compound of formula (X) from step (iii) is oxidatively hydrolyzed with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (J). [ka] (In the formula, R 2a These are halogens, C1-C3 fluoroalkyls, C1-C3 haloalkoxys, C1-C3 alkoxys, or C1-C3 alkyls; R 2b is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; and Y is methyl), and (v) Using propanephosphonic anhydride in a suitable solvent, together with a suitable base, react the compound of formula (J) from step (iv) with aniline of formula (G). [ka] (In the formula, R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl ring system which may be optionally substituted by substituents, and each R 4 These are independently halogens, C1-C6 alkyls, C1-C6 haloalkyls, C1-C6 alkoxys, C1-C6 haloalkoxys, cyanos, nitros, C1-C6 alkylthios, C1-C6 alkylsulfinyls, or C1-C6 alkylsulfonyls. The process that yields the compound of formula (I) It also includes.
[0053] As described above, the intermediates produced in the above process are also novel and form a further aspect of the present invention. Therefore, the present invention is (i) Formula (B) [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b (These are hydrogen, halogens, C1-C3 fluoroalkyls, C1-C3 haloalkoxys, C1-C3 alkoxys, or C1-C3 alkyls.) The compound, (ii) Formula (D) [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b (where Y is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; and Y is methyl) The compound, (iii) Formula (E) [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b (where Y is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; and Y is methyl) The compound, (iv) Formula (J) [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b (where Y is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; and Y is methyl) The compound, (v) Formula (X) [ka] (In the formula, R 2a R is a halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; 2b R is hydrogen, halogen, C1-C3 fluoroalkyl, C1-C3 haloalkoxy, C1-C3 alkoxy or C1-C3 alkyl; Q1 and R Q4 Each of them is hydrogen; and R Q2 and R Q3 (Together with the carbon atoms to which they are bonded, they form a ring Q which is an optionally substituted five-membered thio-lactam ring.) compounds We also offer it.
[0054] Preferably, in the compound of formula (X), ring Q is Q1 or Q2 [ka] (In the formula, Y is methyl, ("a" represents the binding site to the pyrazole moiety, and "c" represents the binding site to the carboxylate moiety.) That is the case.
[0055] According to the present invention, formula (A) [ka] (In the formula, R is methyl or ethyl.) Compounds of the same name are also provided.
[0056] In a further embodiment, the present invention provides the use of compounds of formulas (A), (B), (D), (E), (J), and (X), as described herein, in the manufacture of herbicides.
[0057] The compounds of formula (I) according to the present invention may be used in their unmodified form or, preferably, in combination with auxiliaries conventionally used in formulation techniques for providing herbicidal compositions. Accordingly, the present invention further provides herbicidal compositions comprising at least one compound of formula (I) and an agriculturally acceptable diluent or carrier and optionally an auxiliary. An agriculturally acceptable carrier is, for example, a carrier suitable for agricultural use. Agricultural carriers are known in the art. Similarly suitable agriculturally acceptable diluents are known in the art.
[0058] For this purpose, compounds of formula (I) can be readily incorporated in known forms into emulsifying concentrates, coating pastes, directly sprayable or dilutable solutions or suspensions, dilutable emulsions, wettable powders, soluble powders, granular materials, and capsules in polymeric substances, for example. As with the type of composition, the method of application, such as spraying, atomizing, powdering, scattering, coating, or pouring, is selected according to the intended purpose and the circumstances at the time. The composition may also contain further additives such as stabilizers, defoamers, viscosity modifiers, binders or adhesives, and fertilizers, sources of trace elements, or other formulations for obtaining special effects.
[0059] For example, suitable carriers and auxiliaries used in agriculture may be solids or liquids and are useful substances in compounding technology, such as natural or recycled mineral substances, solvents, dispersants, wetting agents, adhesives, thickeners, binders, or fertilizers. Such carriers are described, for example, in International Publication No. 97 / 33890.
[0060] A suspension concentrate is an aqueous formulation in which fine solid particles of an active compound are suspended. Such formulations contain anti-settling agents and dispersants, and may further contain wetting agents, defoaming agents, and crystal growth inhibitors to enhance activity. In use, these concentrates are diluted in water and typically applied by spray to the area to be treated. The amount of the active ingredient may range from 0.5% to 95% of the concentrate.
[0061] Wettable powders are in the form of fine particles that disperse easily in water or other liquid carriers. These particles contain active ingredients held in a solid matrix. Typical solid matrices include fuller earth, kaolin clay, silica, and other easily humidifiable organic or inorganic solids. Wettable powders typically contain 5% to 95% of the active ingredient and small amounts of wetting agents, dispersants, or emulsifiers.
[0062] Emulsifying concentrates are homogeneous liquid compositions that are dispersible in water or other liquids and may consist solely of an active compound and a liquid or solid emulsifier, or they may contain liquid carriers such as xylene, high-boiling aromatic naphtha, isophorone, and other non-volatile organic solvents. In use, these concentrates are dispersed in water or other liquids and typically applied by spray to the area to be treated. The amount of the active ingredient may range from 0.5% to 95% of the concentrate.
[0063] Granular formulations include both extruded materials and relatively coarse particles and are typically applied undiluted to the area requiring treatment. Typical carriers for granular formulations include sand, fuller clay, attapulgite clay, bentonite clay, montmorillonite clay, vermiculite, perlite, calcium carbonate, brick, pumice, pyrophyllite, kaolin, dolomite, calcined gypsum, wood flour, crushed corn cobs, crushed peanut shells, sugar, sodium chloride, sodium sulfate, sodium silicate, sodium borate, magnesia, mica, iron oxide, zinc oxide, titanium oxide, antimony oxide, cryolite, gypsum, diatomaceous earth, calcium sulfate, and other organic or inorganic materials that can absorb or be coated with active compounds. Granular formulations typically contain 5% to 25% active ingredients, which may include surfactants or vegetable oils such as high-boiling aromatic naphtha, kerosene, and other petroleum fractions; and / or spreading agents such as dextrin, glue, or synthetic resins.
[0064] The powder is a readily flowable mixture of the active ingredient and fine solids such as talc, clay, powder, and other organic and inorganic solids that act as a dispersant and carrier.
[0065] Microcapsules are typically droplets or granules of an active ingredient encapsulated in an inert, porous shell that allows the encapsulated material to be released into the surroundings at a controlled rate. Encapsulated droplets are typically 1 to 50 microns in diameter. The encapsulated liquid typically constitutes 50 to 95% of the capsule's weight and may include solvents in addition to the active compound. Encapsulated granules are generally porous granules having a porous membrane that seals the pore openings of the granule, holding the active species in liquid form within the pores of the granule. Granules are typically in the range of 1 millimeter to 1 centimeter in diameter, preferably 1 to 2 millimeters. Granules are formed by extrusion, coagulation, or prilling, or are natural. Examples of such materials include vermiculite, calcined clay, kaolin, attapulgite clay, sawdust, and granular carbon. The shell or membrane material may include natural and synthetic rubber, cellulosic materials, styrene-butadiene copolymers, polyacrylonitrile, polyacrylates, polyesters, polyamides, polyureas, polyurethanes, and starch sandates.
[0066] Other useful formulations for agricultural chemical applications include simple solutions of the active ingredient in solvents such as acetone, alkylated naphthalene, xylene, and other organic solvents, where complete dissolution at the desired concentration is achieved. Pressurized sprayers may also be used, in which the active ingredient is sprayed in a finely separated form as the low-boiling point dispersant solvent carrier evaporates.
[0067] Suitable agricultural additives and carriers useful for formulating the above-described formulations of the present invention are well known to those skilled in the art.
[0068] Available liquid carriers include, for example, water, toluene, xylene, petroleum naphtha oil, crop oil, acetone, methyl ethyl ketone, cyclohexanone, acetic anhydride, acetonitrile, acetophenone, amyl acetate, 2-butanone, chlorobenzene, cyclohexane, cyclohexanol, alkyl acetates, diacetone alcohol, 1,2-dichloropropane, diethanolamine, p-diethylbenzene, diethylene glycol, diethylene glycol abietate, diethylene glycol butyl ether, diethylene glycol ethyl ether, diethylene glycol methyl ether, N,N-dimethylformamide, dimethyl sulfoxide, 1,4-dioxane, dipropylene glycol, dipropylene glycol methyl ether, dipropylene glycol dibenzoate, diproxitol, alkylpyrrolidinone, ethyl acetate, 2-ethylhexanol, ethylene carbonate, 1,1,1-Trichloroethane, 2-Heptanone, α-Pinene, d-Limonene, Ethylene Glycol, Ethylene Glycol Butyl Ether, Ethylene Glycol Methyl Ether, γ-Butyrolactone, Glycerol, Glycerol Diacetic Acid, Glycerol Monoacetic Acid, Glycerol Triacetate, Hexadecane, Hexylene Glycol, Isoamyl Acetate, Isobornyl Acetate, Isooctane, Isophorone, Isopropylbenzene, Isopropyl Myristate, Lactic Acid, Laurylamine, Mesityl Oxide, Methoxypropanol, Methyl Isoamyl Ketone, Methyl Isobutyl Ketone, Methyl Laurate, Methyl Octanoate, Methyl Oleate, Methylene Chloride, m-Xylene, n-Hexane, n-Octylamine, Ctade Examples include canic acid, octylamine acetate, oleic acid, oleylamine, o-xylene, phenol, polyethylene glycol (PEG400), propionic acid, propylene glycol, propylene glycol monomethyl ether, p-xylene, toluene, triethyl phosphate, triethylene glycol, xylene sulfonic acid, paraffin, mineral oil, trichloroethylene, perchloroethylene, ethyl acetate, amyl acetate, butyl acetate, methanol, ethanol, isopropanol and amyl alcohol, tetrahydrofurfuryl alcohol, hexanol, octanol, and other high molecular weight alcohols, ethylene glycol, propylene glycol, glycerin, and N-methyl-2-pyrrolidinone. Water is generally the preferred carrier for diluting concentrates.
[0069] Suitable solid carriers include, for example, talc, titanium dioxide, pyrophyllite clay, silica, attapulgite clay, kieslager, chalk, diatomaceous earth, lime, calcium carbonate, bentonite clay, fuller clay, cottonseed husks, wheat flour, soybean flour, pumice, wood flour, walnut husk powder, and lignin.
[0070] A wide range of surfactants are advantageously utilized in both liquid and solid compositions, particularly those designed to be diluted with a carrier before application. These surfactants are typically used in formulations containing 0.1% to 15% by weight. They may be anionic, cationic, nonionic, or polymeric and may be used as emulsifiers, wetting agents, suspending agents, or for other purposes. Typical surfactants include alkyl sulfates such as diethanolammonium lauryl sulfate; alkylaryl sulfonate salts such as calcium dodecylbenzenesulfonate; alkylphenol-alkylene oxide addition products such as nonylphenol-C sub.18 ethoxylate; alcohol-alkylene oxide addition products such as tridecyl alcohol-C sub.16 ethoxylate; soaps such as sodium stearate; alkylnaphthalene sulfonates such as sodium dibutylnaphthalenesulfonate; dialkyl esters of sulfosuccinates such as sodium di(2-ethylhexyl)sulfosuccinate; sorbitol esters such as sorbitol oleate; quaternary amines such as lauryltrimethylammonium chloride; polyethylene glycol esters of fatty acids such as polyethylene glycol stearate; block copolymers of ethylene oxide and propylene oxide; and salts of mono and dialkyl phosphate esters.
[0071] Other auxiliary agents commonly used in agricultural compositions include crystallization inhibitors, viscosity modifiers, suspending agents, spray particle regulators, pigments, antioxidants, foaming agents, defoaming agents, light-shielding agents, compatibilizers, defoaming agents, metal ion chelating agents, neutralizing agents and buffering agents, corrosion inhibitors, dyes, odorants, spreading agents, penetration aids, trace elements, mitigating agents, lubricants and fixing agents.
[0072] The compound of formula (I) is typically used in the form of an agrochemical composition and may be applied simultaneously with or sequentially to the crop area or plant being treated with further compounds. These further compounds / active ingredients may be, for example, fertilizers or trace element donors or other preparations that affect plant growth. These may also be selective or non-selective herbicides and insecticides, fungicides, fungicides, nematicides, mollusk repellents, or mixtures of these preparations, which may include further carriers, surfactants, or application enhancers that are conventionally used in the field of formulations as needed.
[0073] In particular, the compounds of the present invention can also be used in combination with one or more additional herbicides and / or plant growth regulators. Examples of such additional herbicides or plant growth regulators include acetochlor, acifoulphene (such as acifoulphene-sodium), acroniphene, ametrin, amicarbazone, aminopyralide, aminotriazole, atrazine, beflubutamide-M, benkytrione, bensulfuron (such as bensulfuron-methyl), bentazon, bicyclopyrone, viranafos, bispyribac-sodium, bixurozone, bromacil, bromoxynil, butachlor, butaphenacil, carphentrazone (carphen Trazone-ethyl (etc.), Chloranslam (chloranslam-methyl, etc.), Chlorimuron (chlorimuron-ethyl, etc.), Chlorotoluron, Chlorsulfuron, Symmethylline, Clasifos, Cretodim, Clodinafop (clodinafop-propargyl, etc.), Chromazon, Clopyralide, Cyclopyranil, Cyclopyrimolate, Cyclosulfamuron, Cyhalofop (cyhalofop-butyl, etc.), 2,4-D (its choline salt and 2-ethylhexyl ester, etc.), 2,4-DB, Desmedifam, Dicamba (These include aluminum, aminopropyl, bis-aminopropylmethyl, choline, dichloroprop, diglycolamine, dimethylamine, dimethylammonium, potassium and sodium salts, etc.) Diclothram, diflufenican, diflufenzopyr, dimethachlor, dimethenamide-P, diquatdibromide, diuron, epiriphenacyl, etalfluralin, etofmesate, phenoxaprop (phenoxaprop-P-ethyl, etc.), phenoxasulfone, fenquinotrione, fentrazamide, flaz Sulfuron, Floraslam, Florpyrauxifen (e.g., Florpyrauxifen-benzyl), Fluadifop (e.g., Fluadifop-p-butyl), Flucarbazone (e.g., Flucarbazone-sodium), Flufenacet, Flumetulam, Flumioxazine, Fluomethron, Flupyrsulfuron (e.g., Flupyrsulfuron-methyl-sodium), Fluroxypyr (e.g., Fluroxypyr-meptyl), Homesaphen, Folamsulfuron, Glufosinate (e.g., L-glufosinate and ammonium salts of both),Glyphosate (including its diammonium salt, isopropylammonium salt, and potassium salt), halaxifen (halaxifen-methyl, etc.), haloxyhop (haloxyhop-methyl, etc.), hexazinone, hydantosidine, imazamox (R-imazamox, etc.), imazapic, imazapyr, imazetapir, indadiflame, iodosulfuron (iodosulfuron-methyl-sodium, etc.), iophenesulfuron (iophenesulfuron-sodium, etc.), ioxinyl, isoproturone, Isoxaflutol, Lancotrione, MCPA, MCPB, Mecoprop-P, Mesosulfuron (Mesosulfuron-methyl, etc.), Mesotrione, Metamitron, Metazachlor, Methiozoline, Metrachlor, Metoslam, Metrivudine, Metosulfuron, Napropamide, Nicosulfuron, Norflurazone, Oxadiazone, Oxasulfuron, Oxyfluorphene, Paraquat dichloride, Bendimethalin, Penoxuslam, Fenmedifam, Pichloram, Pinoxadene, Pretilachlor, Primisulfuron n-methyl, promethrin, propanyl, propaxifop, propyrisulfuron, propizamide, prosulfocarb, prosulfuron, pyraclonil, pyraflufen (e.g., pyraflufen-ethyl), pyrasulfolol, pyridate, pyrifthalide, pyrimisulfan, pyroxasulfone, piroxulam, quinchlorac, kinmelac, quizalohop (e.g., quizalohop-P-ethyl and quizalohop-P-tefuryl), limsulfuron, saflufenacil, cethoxydim, simazine, S-metallochlor, s Rufentrazone, sulfosulfuron, tebutiuron, tefuryltrione, tenbotrione, terbutyrazine, terbutrin, tetoflupyrrolimet, thiencarbazone, thifensulfuron, thiafenacil, torpylate, topramezone, tralcoxidime, triafamone, trialate, triasulfuron, tribenulon (trivenulon-methyl, etc.), triclopyr, trifloxysulfuron (trifloxysulfuron-sodium, etc.), trifludimoxazine, trifluralin, triflusulfuron,3-(2-chloro-4-fluoro-5-(3-methyl-2,6-dioxo-4-trifluoromethyl-3,6-dihydropyrimidine-1(2H)-yl)phenyl)-5-methyl-4,5-dihydroisoxazole-5-carboxylate ethyl ester, 4-hydroxy-1-methoxy-5-methyl-3-[4-(trifluoromethyl)-2-pyridyl]imidazolidinedion-2-one, 4-hydroxy-1,5-dimethyl-3-[4-(trifluoromethyl)-2-pyridyl]imidazolidinedion-2-one, 5-ethoxy-4-hydroxy-1-methyl Tyl-3-[4-(trifluoromethyl)-2-pyridyl]imidazolidine-2-one, 4-hydroxy-1-methyl-3-[4-(trifluoromethyl)-2-pyridyl]imidazolidine-2-one, 4-hydroxy-1,5-dimethyl-3-[1-methyl-5-(trifluoromethyl)pyrazole-3-yl]imidazolidine-2-one, (4R)1-(5-tert-butylisoxazol-3-yl)-4-ethoxy-5-hydroxy-3-methyl-imidazolidine-2-one, 3-[2-(3,4-dimethoxyphenyl)-6-methyl [Tyl-3-oxopyridazine-4-carbonyl]bicyclo[3.2.1]octane-2,4-dione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]-5-methylcyclohexane-1,3-dione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]cyclohexane-1,3-dione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]-5,5-dimethylcyclohex San-1,3-dione, 6-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazin-4-carbonyl]-2,2,4,4-tetramethylcyclohexane-1,3,5-trione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazin-4-carbonyl]-5-ethylcyclohexane-1,3-dione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazin-4-carbonyl]-4,4,6,6-tetramethylcyclohexane-1,3-dione,2-[6-cyclopropyl-2-(3,4-dimethoxyphenyl)-3-oxopyridazine-4-carbonyl]-5-methylcyclohexane-1,3-dione, 3-[6-cyclopropyl-2-(3,4-dimethoxyphenyl)-3-oxopyridazine-4-carbonyl]bicyclo[3.2.1]octane-2,4-dione, 2-[6-cyclopropyl-2-(3,4-dimethoxyphenyl)-3-oxopyridazine-4-carbonyl]-5,5-dimethylcyclohexane-1,3-dione, 6-[6-cyclopropyl-2-(3,4-dimethoxyphenyl] [Cyphenyl)-3-oxopyridazine-4-carbonyl]-2,2,4,4-tetramethylcyclohexane-1,3,5-trione, 2-[6-cyclopropyl-2-(3,4-dimethoxyphenyl)-3-oxopyridazine-4-carbonyl]cyclohexane-1,3-dione, 4-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]-2,2,6,6-tetramethyltetrahydropyran-3,5-dione, 4-[6-cyclopropyl-2-(3,4-dimethoxyphenyl)-3-oxopyridazine [Zin-4-carbonyl]-2,2,6,6-tetramethyl-tetrahydropyran-3,5-dione, 4-amino-3-chloro-5-fluoro-6-(7-fluoro-1H-indole-6-yl)pyridine-2-carboxylic acid (its phytochemically acceptable esters, e.g., methyl4-amino-3-chloro-5-fluoro-6-(7-fluoro-1H-indole-6-yl)pyridine-2-carboxylate, prop-2-inyl4-amino-3-chloro-5-fluoro-6-(7-fluoro-1H-indole-6-yl)pyridine-2-carboxylate (and cyanomethyl 4-amino-3-chloro-5-fluoro-6-(7-fluoro-1H-indole-6-yl)pyridine-2-carboxylate, etc.), 3-ethylsulfanyl-N-(1,3,4-oxadiazol-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, 3-(isopropylsulfanylmethyl)-N-(5-methyl-1,3,4-oxadiazol-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide,3-(isopropylsulfonylmethyl)-N-(5-methyl-1,3,4-oxadiazol-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, 3-(ethylsulfonylmethyl)-N-(5-methyl-1,3,4-oxadiazol-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, ethyl2-[[3-[[3-chloro-5-fluoro-6-[3-methyl-2,6 Examples include dioxo-4-(trifluoromethyl)pyrimidine-1-yl]-2-pyridyl]oxy]acetate, 6-chloro-4-(2,7-dimethyl-1-naphthyl)-5-hydroxy-2-methylpyridazine-3-one, 1-[2-chloro-6-(5-chloropyrimidine-2-yl)oxyphenyl]-4,4,4-trifluoro-butan-1-one, and 5-[2-chloro-6-(5-chloropyrimidine-2-yl)oxyphenyl]-3-(difluoromethyl)isoxazole.
[0074] The mixed partners of the compound of formula (I) may also be in the form of esters or salts, for example, as described in The Pesticide Manual, Sixteenth Edition, British Crop Protection Council, 2012.
[0075] The compound of formula (I) may also be used in combination with other agricultural chemicals such as fungicides, nematicides, or insecticides, examples of which are shown in The Pesticide Manual.
[0076] The mixing ratio of the compound of formula (I) to the mixing partner is preferably 1:100 to 1000:1.
[0077] The mixture may be advantageously used in the formulations described above, in which case the term “active ingredient” refers to the respective mixtures of the compound of formula (I) and its mixing partner.
[0078] The compounds or mixtures of the present invention may also be used in combination with one or more herbicide toxicity mitigators. Examples of such toxicity mitigators include benoxacol, croquintocet (e.g., croquintocet-mexyl), cyprosulfamide, dichlormid, fenchlorazole (e.g., fenchlorazole-ethyl), fenchlorim, fluxofenim, flirazole, isoxadifen (e.g., isoxadifen-ethyl), mefenpyr (e.g., mefenpyr-diethyl), metcamifen, and oxavethrinil.
[0079] Particularly preferred are mixtures of the compound of formula (I) with cyprosulfamide, isoxadifen-ethyl, croquintoset-mexyl and / or metcamifene.
[0080] Toxicity mitigating agents for use in combination with the compound of formula (I) may also be in the form of esters or salts, as described, for example, in The Pesticide Manual, 16th Edition (BCPC), 2012. References to croquintoset-mexyl also apply to its lithium, sodium, potassium, calcium, magnesium, aluminum, iron, ammonium, quaternary ammonium, sulfonium, or phosphonium salts, as disclosed in International Publication No. 02 / 34048.
[0081] Preferably, the mixing ratio of the compound of formula (I) to the toxicity mitigator is 100:1 to 1:10, and particularly 20:1 to 1:1.
[0082] The mixture may, advantageously, be used in the formulation described above, in which case “active ingredient” refers to the respective mixtures of the compound of formula (I) and the toxicity mitigator.
[0083] The compound of formula (I) of the present invention is useful as a herbicide. Accordingly, the present invention provides a method for controlling undesirable plants, further comprising the step of applying an effective amount of the compound of the present invention or a herbicidal composition containing the compound to the plants or a habitat containing them. The present invention also provides a method for controlling weeds in a habitat, the method comprising applying a weed-controlling amount of a composition containing the compound of formula (I) to the habitat. Furthermore, the present invention can provide a method for selectively controlling weeds in a habitat containing useful (crop) plants and weeds, the method comprising applying a weed-controlling amount of a composition according to the present invention to the habitat.
[0084] "To control" means to kill, reduce or slow down growth, or prevent or reduce germination. Generally, plants that are controlled are undesirable plants (weeds).
[0085] "Habitat" refers to the area where plants are growing or are likely to grow.
[0086] The application rate of the compound of formula (I) can vary over a wide range and depends on soil properties, application method (before emergence; after emergence; application to planting furrows; not applied to crops, etc.), the crop plants and weeds being controlled, dominant climatic conditions, and other factors that depend on the application method, application time, and target crop. The compound of formula (I) according to the present invention is generally applied in amounts of 10 to 2000 g / ha, particularly 50 to 1000 g / ha. Application is generally carried out by spraying the composition, typically by a tractor-mounted sprayer for large areas, but other methods such as spraying (for powder), dripping, or drenching can also be used.
[0087] It can be applied to the habitat of crop plants before and / or after emergence.
[0088] Within the scope of the present invention, the protected target crops and / or useful plants are typically berries such as blackberries, blueberries, cranberries, raspberries, and strawberries; cereals such as barley, corn, millet, oats, rice, rye, sorghum, rye and wheat; fiber plants such as cotton, flax, hemp, jute, and sisal; crops such as sugars and feed beets, coffee, hops, mustard, rapeseed (canola), poppies, sugarcane, sunflowers, tea, and tobacco; fruit trees such as apples, apricots, avocados, bananas, cherries, citrus fruits, nectarines, peaches, pears, and plums; and grasses such as Bermuda grass, strawberry grass, bentgrass, centipede grass, bog grass, ryegrass, turmeric, and sedge. Grasses such as basil; herbs such as basil, borage, chives, coriander, lavender, lavender, mint, oregano, parsley, rosemary, sage, and thyme; legumes such as kidney beans, lentils, peas, and soybeans; nuts such as almonds, cashews, peanuts, hazelnuts, pecans, pistachios, and walnuts; palms such as oil palms; ornamental plants such as flowers, shrubs, and trees; other trees such as cocoa, coconut, olive, and rubber; vegetables such as asparagus, eggplant, broccoli, cabbage, carrots, cucumbers, garlic, lettuce, pumpkin, melon, okra, onions, pepper, potatoes, pumpkins, rhubarb, spinach, and tomatoes; and perennial and annual crops such as climbing plants such as grapes. Preferred crop plants include corn, wheat, barley, and rice.
[0089] Some crop plants may be inherently resistant to the herbicidal effect of the compound of formula (I).
[0090] The term "useful plants" should be understood to include useful plants in which resistance to herbicides such as bromoxynil or certain classifications of herbicides, such as 4-hydroxyphenylpyrubete dioxygenase (HPPD) inhibitors, ALS inhibitors such as primisulfuron, prosulfuron, and trifloxysulfuron, 5-enol-pyrovir-sikimate-3-phosphate-synthase (EPSPS) inhibitors, glutamine synthetase (GS) inhibitors, or protoporphyrinogen oxidase (PPO) inhibitors has been induced through conventional crossbreeding or genetic engineering methods. An example of a crop in which resistance to imidazolinones such as imazamox has been induced through conventional crossbreeding methods (mutaogenesis) is Clearfield® summer rapeseed (canola). Examples of crops in which resistance to herbicides or a certain class of herbicides has been induced through genetic engineering include glyphosate and glufosinate-resistant maize varieties marketed under trade names RoundupReady®, Herculex IO, and LibertyLink®.
[0091] The term "useful plants" should also be understood to include useful plants transformed using recombinant DNA technology that possess the ability to synthesize one or more selectively acting toxins, such as those known to originate from toxin-producing bacteria, particularly those of the Bacillus genus.
[0092] Examples of such plants include: YieldGardO (a maize variety expressing CryIA(b) toxin); YieldGard RootwormO (a maize variety expressing CryIIIB(b1) toxin); YieldGard PlusO (a maize variety expressing CryIA(b) and CryIIIB(b1) toxins); StarlinkO (a maize variety expressing Cry9(c) toxin); Herculex IO (a maize variety that expresses CryIF(a2) toxin and the enzyme phosphinothrysin N-acetyltransferase (PAT) to achieve resistance to herbicidal glufosinate ammonium); NuCOTN 33BO (a cotton variety expressing CryIA(c) toxin); Bollgard IO (a cotton variety expressing CryIA(c) toxin); Bollgard These include II (registered trademark) (cotton varieties expressing CryIA(c) and CryIIA(b) toxins); VIPCOTO (cotton varieties expressing VIP toxin); NewLeafO (potato varieties expressing CryIIIA toxin); NatureGardOAgrisure(registered trademark)GT Advantage (GA21 glyphosate resistance trait), Agrisure(registered trademark)CB Advantage (Bt11 corn rootworm (CB) trait), Agrisure(registered trademark)RW (corn rootworm trait), and ProtectaO.
[0093] Crops / useful plants, including those obtained through conventional crossbreeding or genetic engineering methods, should be understood to include so-called productive traits (e.g., improved storage stability, higher nutritional value, and improved flavor).
[0094] Other useful plants include, for example, turfgrass cultivated commercially for golf courses, lawns, parks, and roadsides or for use in lawns, as well as ornamental plants such as flowers or shrubs.
[0095] Typically, the compounds and compositions of formula (I) of the present invention can be used to control a variety of monocotyledonous and dicotyledonous weed species. Examples of monocotyledonous species that can typically be controlled include Alopecurus myosuroides, Avena fatua, Brachiaria plantaginea, Bromus tectorum, Cyperus esculentus, Digitaria sanguinalis, Echinochloa crus-galli, Lolium perenne, Lolium multiflorum, Panicum miliaceum, Poa annua, Setaria viridis, Setaria faberi, and Sorghum bicolor. Examples of dicotyledonous species that can be controlled include Abutilon theophrasti, Amaranthus retroflexus, Bidens pilosa, Chenopodium album, Euphorbia heterophylla, Galium aparine, Ipomoea hederacea, Kochia scoparia, Polygonum convolvulus, Sida spinosa, Sinapis arvensis, Solanum nigrum, Stellaria media, Veronica persica, and Xanthium strumarium.
[0096] The compounds / compositions of the present invention are particularly useful in non-selective burn-down applications and can be used as is to control native plants or to allow crop plants to become naturalized.
[0097] Herein, various aspects and embodiments of the present invention are described in more detail by example. It will be understood that detailed modifications can be made without departing from the scope of the present invention. The following examples are useful for illustrating the present invention, but are not limiting thereto. [Examples]
[0098] Formulation example
[0099] [Table 2]
[0100] This combination was thoroughly mixed with an auxiliary agent, and the mixture was then thoroughly ground in a suitable mill to obtain a wettable powder that could yield a suspension of the desired concentration diluted with water.
[0101] emulsifiable concentrate Active ingredient 10% Octylphenol polyethylene glycol ether 3% (4-5 moles of ethylene oxide) Calcium dodecylbenzenesulfonate 3% Castor oil polyglycol ether (35 moles of ethylene oxide) 4% Cyclohexanone 30% Xylene mixture 50%
[0102] Emulsions of any required dilution ratio, which can be used in plant protection, can be obtained from this concentrate by dilution with water.
[0103] [Table 3]
[0104] A ready-to-use powder is obtained by mixing this combination with a carrier and grinding the mixture in a suitable mill.
[0105] Extruded granules Active ingredient 15% Sodium lignosulfonate 2% Carboxymethylcellulose 1% Kaolin 82%
[0106] This combination is mixed with an auxiliary agent and ground, and the mixture is moistened with water. The mixture is then extruded and dried in an airflow.
[0107] Coated granules Active ingredient 8% Polyethylene glycol (molecular weight 200) 3% Kaolin 89%
[0108] The finely ground mixture is uniformly applied to kaolin moistened with polyethylene glycol in a mixer. Coated granules that do not generate powder are thus obtained.
[0109] Suspension concentrate Active ingredient 40% Propylene glycol 10% Nonylphenol polyethylene glycol ether 6% (15 moles of ethylene oxide) Sodium lignosulfonate 10% Carboxymethylcellulose 1% Silicone oil (in the form of a 75% emulsion in water) 1% water 32%
[0110] By homogeneously mixing the finely ground combination with an auxiliary agent, a suspension concentrate is obtained, and this suspension can be obtained at any desired concentration by diluting it with water.
[0111] Slow-release capsule suspension Mix 28 parts of the combination with 2 parts of aromatic solvent and 7 parts of toluene diisocyanate / polymethylene-polyphenyl isocyanate mixture (8:1). Emulsify this mixture in a mixture of 1.2 parts of polyvinyl alcohol, 0.05 parts of defoaming agent and 51.6 parts of water until the desired particle size is achieved. Add a mixture of 2.8 parts of 1,6-diaminohexane in 5.3 parts of water to this emulsion. Stir this mixture until the polymerization reaction is complete.
[0112] The resulting capsule suspension is stabilized by adding 0.25 parts of a thickener and 3 parts of a dispersant. The capsule suspension formulation contains 28% of the active ingredient. The medium capsule diameter is 8-15 microns.
[0113] The resulting formulation is applied to the seeds as an aqueous suspension in an apparatus suitable for the purpose.
[0114] Preparation example Experiment Overview Chiral HPLC was recorded on the following column with the solvent and gradient described.
[0115] column: Regis Whelk O1(s,s)4.6x100mm, 3.5μm Chiralpak IC 4.6x100mm, 3.0μm
[0116] solvent: A: Iso-hexane + 0.1% glacial acetic acid (v / v) B: Ethanol + 0.1% glacial acetic acid (v / v)
[0117] [Table 4]
[0118] Example P1 Synthesis of 1-(difluoromethyl)-3-iodo-5-methylpyrazole compound (A1) [ka]
[0119] Step 1: Synthesis of compounds (A1-2) Monochlorodifluoromethane was passed through a mixture of compound (A1-1) (6.3 g, 50 mmol) and KOH (8.5 g, 150 mmol) in 50 ml of dioxane and 30 ml of water at 50°C for approximately 2 hours. After cooling to room temperature, the resulting mixture was poured into water and extracted three times with diethyl ether. The combined organic phase was dried on anhydrous sodium sulfate and concentrated under vacuum. The residue was purified by column chromatography on silica gel (petroleum ether / ethyl acetate = 10:1) to obtain compound (A1-2) (3.9 g, 45% yield) as a pale yellow solid. 1 H NMR(400Mz,CDCl3):δ 2.53(s,3H),6.76(s,1H),7.22(t,J=58.2Hz,1H); 19 F NMR(282MHz, CDCl3):δ -95.2(d,J=58.3Hz,2F).
[0120] Step 2: Synthesis of compounds (A1-3) Compound A1-2 (1.77 g, 20 mmol) and a mixture of 10% Pd / C (500 mg) in 30 ml of MeOH were hydrogenated at room temperature for approximately 3 hours. The reaction mixture was filtered, and the solvent was removed under vacuum. The residue was purified by column chromatography on silica gel (petroleum ether / ethyl acetate = 5:1) to obtain compound (A1-3) (0.95 g, 65% yield) as a yellow oil. 1 H NMR(400Mz,CDCl3):δ 2.33(s,3H),3.96(br s,2H),5.56(s,1H),6.92(t,J=59.7Hz,1H); 19 F NMR(282MHz, CDCl3):δ -92.5(d,J=59.8Hz,2F).
[0121] Step 3: Synthesis of compound (A1) 0.83 g (12 mmol) of sodium nitrite dissolved in 5 ml of water was added dropwise to a mixture of compound 3 (1.47 g, 10 mmol) and 4N hydrochloric acid (50 ml) at 0°C. After the addition was complete, the resulting mixture was stirred at the same temperature for 1 hour. Next, a solution of potassium iodide (3.32 g, 20 mmol) in 10 ml of water was added dropwise to the mixture. The reaction mixture was heated to room temperature and stirred for another 1 hour. The mixture was extracted three times with ethyl acetate, the combined organic compounds were washed with a saturated aqueous solution of sodium thiosulfate, then dried on anhydrous sodium sulfate, filtered, and concentrated under vacuum. The residue was purified by column chromatography (petroleum ether) on silica gel to obtain compound (A1) (1 g, 40% yield) as a pale yellow solid. 1 H NMR(400Mz,CDCl3):δ 2.43(s,3H),6.29(s,1H),7.16(t,J=58.8Hz,1H); 19 F NMR(282MHz, CDCl3):δ -94.8(d,J=58.6Hz,2F).
[0122] Example P2 Synthesis of 1-(difluoromethyl)-3-iodo-5-ethyl-pyrazole compound (A2) [ka]
[0123] Step 1: Synthesis of compound (A2-2) 30% H2O2 (10 g, 90 mmol) was added dropwise to a mixture of compound (A2-1) (3.33 g, 30 mmol) and Na2WO4 (1.98 g, 6 mmol) in 30 ml of DMF and 10 ml of water at 50°C. After addition, the mixture was stirred at 50°C for 4 hours. After cooling to room temperature, the resulting mixture was poured into water and extracted three times with diethyl ether. The combined organic phase was dried on anhydrous sodium sulfate and concentrated under vacuum. The residue was purified by column chromatography on silica gel (petroleum ether / ethyl acetate = 5:1) to obtain compound (A2-2) (105 g, 25% yield) as a yellow solid. 1 H NMR(400Mz,DMSO-d6):δ 1.18(t,J=6.8Hz,3H),2.63(q,J=7.2Hz,2H),6.79(s,1H),13.67(br s,1H).
[0124] Step 2: Synthesis of compounds (A2-3) Chlorodifluoromethane was passed through a mixture of compound (A2-2) (1.41 g, 10 mmol) and KOH (1.71 g, 30 mmol) in 20 ml of dioxane and 10 ml of water at 50°C for approximately 4 hours. After cooling to room temperature, the resulting mixture was poured into water and extracted three times with diethyl ether. The combined organic phase was dried on anhydrous sodium sulfate and concentrated under vacuum. The residue was purified by column chromatography on silica gel (petroleum ether / ethyl acetate = 10:1) to obtain compound (A2-3) (1.06 g, 56% yield) as a pale yellow solid. 1 H NMR(400Mz,CDCl3):δ1.35(t,J=7.6Hz,3H),2.92(q,J=7.6Hz,2H),6.81(s,1H),7.22(t,J=57.6Hz,1H); 19 F NMR(282MHz, CDCl3):δ -94.5(d,J=57.8Hz,2F).
[0125] Step 3: Synthesis of compounds (A2-4) A mixture of compound (A2-3) (1.91 g, 10 mmol) and 10% Pd / C (500 mg) in 30 ml of MeOH was hydrogenated at room temperature for approximately 3 hours. The reaction mixture was filtered, and the solvent was removed under vacuum to obtain the crude starting compound (A2-4) (1.12 g, 70% yield) as a yellow oil, which was used for the next step without further purification.
[0126] Step 4: Synthesis of compound (A2) 0.58 g (8.4 mmol) of sodium nitrite dissolved in 5 ml of water was added dropwise to a mixture of compound (A2-4) (1.12 g, 7 mmol) and 4N hydrochloric acid (40 ml) at 0°C. After the addition was complete, the resulting mixture was stirred at the same temperature for 1 hour. Next, a solution of potassium iodide (2.32 g, 14 mmol) in 10 ml of water was added dropwise to the mixture. The reaction mixture was heated to room temperature and stirred for another 1 hour. The mixture was extracted three times with ethyl acetate, the combined organic compounds were washed with a saturated aqueous solution of sodium thiosulfate, then dried on anhydrous sodium sulfate, filtered, and concentrated under vacuum. The residue was purified by column chromatography (petroleum ether) on silica gel to obtain compound (A2) (0.93 g, 49% yield) as a pale yellow solid. 1 H NMR(400Mz,CDCl3):δ1.28(t,J=7.6Hz,3H),2.83(q,J=7.6Hz,2H),6.33(s,1H),7.16(t,J=59.2Hz,1H); 19 F NMR(282MHz, CDCl3):δ -94.1(d,J=57.8Hz,2F).
[0127] Example P3: Synthesis of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-thioxopyrrolidine-3-carboxamide (compound number 37) and 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-oxopyrrolidine-3-carboxamide (compound number 33) Step 1: Synthesis of ethyl(E)-3-[1-(difluoromethyl)-5-methylpyrazole-3-yl]prop-2-enoate [ka] 1-(difluoromethyl)-3-iodo-5-methylpyrazole (0.20 g, 0.78 mmol) was dissolved in acetonitrile (2.7 mL) in a microwave vial, and ethyl acrylate (0.25 mL, 2.3 mmol) was added. Subsequently, triethylamine (0.11 mL, 0.78 mmol), tri-ortho-tolylphosphine (0.024 g, 0.078 mmol), and palladium acetate (0.017 g, 0.078 mmol) were added. The vial was flushed with nitrogen, sealed, and heated to 100°C under microwave irradiation for 30 minutes. The reaction mixture was filtered, rinsed in small amounts with toluene, and the combined filtrate and washings were concentrated to remove the bulk solvent. The crude product was diluted with water (10 mL) and extracted with toluene (3 × 15 mL). Next, the organic extracts were combined, washed with water (2 × 10 mL), passed through a phase separation cartridge, and the collected organic compounds were concentrated to obtain a light brown oil. Purification by chromatography using ethyl / iso-hexane gradient elution yielded the desired product, ethyl(E)-3-[1-(difluoromethyl)-5-methylpyrazole-3-yl]prop-2-enoate, as a light brown liquid (144 mg). 1H NMR:(400MHz,CDCl3)δ=7.56(d,J=16.1Hz,1H),7.33-7.04(t,1H),6.40(d,1H),6.36(s,1H),4.26(q,J=7.1Hz,2H),2.47(s,3H),1.33(t,J=7.1Hz,3H)
[0128] Step 2: Synthesis of ethyl-8-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-6-methyl-1,4-dithia-6-azaspiro[4,4]nonane-9-carboxylate [ka] A suspension of cesium fluoride (0.370 g, 2.43 mmol) in tetrahydrofuran (1.8 mL), stirred at -50°C under a nitrogen atmosphere, was mixed with ethyl(E)-3-[1-(difluoromethyl)-5-methylpyrazole-3-yl]prop-2-enoate (0.140 g, 0.608 mmol) and a solution of 1,3-dithiolan-2-ylidene-methyl-(trimethylsilylmethyl)ammonium;trifluoromethanesulfonate (0.338 g, 0.912 mmol) in tetrahydrofuran (1.82 mL). The reaction temperature was maintained below -45°C. The resulting pale amber suspension was gradually warmed to room temperature. After 16 hours, the reaction mixture was diluted with dichloromethane and filtered. Purification by chromatography using ethyl / isohexane gradient elution yielded ethyl-8-[1-(difluoromethyl)-5-methyl-pyrazole-3-yl]-6-methyl-1,4-dithia-6-azaspiro[4.4]nonane-9-carboxylate as a yellow oil (94 mg). 1H NMR:(400MHz,CDCl3)δ=7.27-6.97(t,1H),6.02(s,1H),4.31-4.17(m,2H),3.87(d,1H),3.78(q,J=8.4 Hz,1H),3.31-3.05(m,5H),2.94(dd,J=7.5,9.3Hz,1H),2.46(s,3H),2.40(s,3H),1.31(t,J=7.2Hz,3H)
[0129] Step 3: Synthesis of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-1-methyl-2-thioxopyrrolidine-3-carboxylic acid [ka] Lithium hydroxide (0.060 g, 2.5 mmol) was added to a solution of ethyl-8-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-6-methyl-1,4-dithia-6-azaspiro[4.4]nonane-9-carboxylate (0.094 g, 0.25 mmol) in 1,4-dioxane (6 mL) and water (2 mL), and the stirred mixture was heated to 60°C under a nitrogen atmosphere. After 45 minutes, the reaction mixture was cooled and concentrated to remove the bulk dioxane. The residual mixture was diluted with water (10 mL), acidified to pH 3 with dilute HCl, and then extracted with DCM (3 × 8 mL). The organic extracts were combined, washed with water (5 mL), and then separated by passing through a phase separation cartridge. The collected organic compounds were concentrated to obtain a colorless rubber, which was then crystallized into an off-white solid, 4-[1-(difluoromethyl)-5-methyl-pyrazole-3-yl]-1-methyl-2-thioxo-pyrrolidine-3-carboxylic acid (73 mg). 1H NMR:(400MHz,CDCl3)δ=7.24-6.95(t,1H),6.22(s,1H),4.17-4.02(m,4H),3.33(s,3H),2.43(s,3H)
[0130] Step 4: Synthesis of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-thioxopyrrolidine-3-carboxamide (compound number 37) [ka] To a solution of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-1-methyl-2-thioxopyrrolidine-3-carboxylic acid (0.073 g, 0.25 mmol) in dichloromethane (1.8 mL), 2,3-difluoroaniline (0.026 mL, 0.25 mmol) and propylphosphonic anhydride (50% by mass in ethyl acetate) (0.26 mL, 0.43 mmol) were added, followed by the addition of N,N-diisopropylethylamine (0.13 mL, 0.76 mmol). The reaction mixture was stirred at room temperature for 2 hours and then left at room temperature overnight.
[0131] The reaction mixture was rapidly cooled by adding water (2 mL) while stirring, transferred to a phase separation cartridge, and the organic compounds were collected. The collected organic compounds were purified by chromatography using ELISA / iso-hexane gradient elution, yielding 4-[1-(difluoromethyl)-5-methyl-pyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-thioxo-pyrrolidine-3-carboxamide (62 mg) as a colorless rubber. 1H NMR:(400MHz,CDCl3)δ=10.21(br s,1H),8.05-7.98(m,1H),7.26-6.95(t,1H),7.04(ddt,J=2.1,5.9,8.3Hz,1H),6.95-6.86(m,1H),6.13 (s,1H),4.40-4.33(m,1H),4.19(d,J=6.1Hz,1H),4.11(dd,1H),4.02(dd,1H),3.32(s,3H),2.43(d,3H)
[0132] Step 5: Synthesis of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-oxopyrrolidine-3-carboxamide (compound number 33) [ka] A solution of 4-[1-(difluoromethyl)-5-methylpyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-thioxopyrrolidine-3-carboxamide (0.060 g, 0.15 mmol) in acetonitrile (1.5 mL), which was stirred and cooled to approximately 0-5°C in an ice bath, was mixed with hydrogen peroxide (50%) (0.18 mL). After 5 minutes, hydrobromic acid (0.018 mL, 0.15 mmol) was added, and the colorless solution was stirred at 5°C for approximately 1 hour. The reaction mixture was rapidly cooled with sodium thiosulfate solution (2 mL), the mixture was diluted with water (2 mL), and concentrated to remove the bulk solvent. The aqueous residue was extracted with DCM (3 × 5 mL), and the combined organic extracts were passed through a phase separation cartridge. The collected organic compounds were concentrated to obtain colorless rubber. The crude product was purified by chromatography using ethylacetate / isohexane gradient elution, yielding 4-[1-(difluoromethyl)-5-methyl-pyrazole-3-yl]-N-(2,3-difluorophenyl)-1-methyl-2-oxo-pyrrolidine-3-carboxamide (50 mg) as a colorless gum. 1H NMR:(400MHz,CDCl3)δ=10.14(br s,1H),8.08-8.02(m,1H),7.27-6.98(t,1H),7.02(ddt,J=2.1,5.9,8.3Hz,1H),6.93-6.84(m,1H),6.26( s,1H),4.07(q,J=8.9Hz,1H),3.76(d,J=9.3Hz,1H),3.72(s,1H),3.70(s,1H),2.97(d,3H),2.44(d,3H).
[0133] The compound of formula (I) shown in Table 2 below was prepared by a similar method.
[0134] [Table 5] TIFF0007844439000049.tif224161 TIFF0007844439000050.tif212161 TIFF0007844439000051.tif248161 TIFF0007844439000052.tif249154 TIFF0007844439000053.tif158160
[0135] Biological examples Herbicide efficiency of the compound of formula (I) Seeds of various test species [Ipomoea hederacea (IPOHE); Zea mays (ZEAMX); Echinochloa crus-galli (ECHCG); Setaria faberi (SETFA); Abutilon theophrasti (ABUTH); and Amaranthus retroflexus (AMARE)] were sown in standard sterilized soil in pots. Under controlled conditions in a greenhouse (24 / 16°C, day / night; 14 hours of sunlight; 65% humidity), after 1 day of cultivation (before emergence) or after 8 days of cultivation (after emergence), a spray aqueous solution obtained from a formulation of the technically active ingredient in an acetone / water (50:50) solution containing 0.5% Tween 20 (polyoxyethylene sorbitan monolaurate, CAS RN 9005-64-5), and subsequently diluted with water, was sprayed onto plants to obtain the application rates described.
[0136] The test plants were grown in a greenhouse under controlled conditions (24 / 16°C, day / night; 14 hours of sunlight; 65% humidity) and watered twice daily.
[0137] The tests were conducted before and 13 days after emergence, and the percentage of plant toxicity was visually evaluated (where 5 = total damage to the plant, 0 = no damage to the plant). The results are shown in Tables B1 and B2.
[0138] [Table 6]
[0139] Table 7 Another aspect of the present invention may be as follows: [1] Equation (I)
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[10] The agricultural chemical composition according to [9], comprising at least one further insecticide.
[11] A method for controlling the growth of undesirable plants, comprising the step of applying a compound of formula (I) described in any one of the above items [1] to [8] or a herbicidal composition described in the above item [9] or
[10] to the undesirable plants or their habitat.
[12] Use of a compound of formula (I) described in any one of the above items [1] to [8] as a herbicide.
[13] A process for producing the compound of formula (I) described in [4] above, (i) A step of reacting the compound of formula (A) with ethyl acrylate under palladium catalyst to give the compound of formula (B).
change
change
change
change
[14] A process for producing the compound of formula (I) described in [5] above, comprising steps (i) to (iv) described in
[13] above, (v) A step of oxidative hydrolysis of the compound of formula (I) from step (iv) with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (I) described in [5]. A process that further includes this.
[15] A process for producing the compound of formula (I) described in [5] above, comprising steps (i) to (iii) described in
[13] above, (iv) A step in which the compound of formula (X) from step (iii) is oxidatively hydrolyzed with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (J).
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[16] Formula (A)
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[17] Formula (B)
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[18] Formula (D)
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[19] Formula (E)
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[20] Formula (J)
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[21] Formula (X)
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[22] Ring Q is Q1 or Q2
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[21] above.
[23] (i) Compound of formula (A) as described in
[16] above, (ii) Compound of formula (B) as described in
[17] above, (iii) Compound of formula (D) as described in
[18] above, (iv) A compound of formula (E) as described in
[19] above, or (v) Compound of formula (J) as described in
[20] above, (vi) Compounds of formula (X) as described in
[21] or
[22] above Its use in the manufacture of herbicides.
Claims
1. Equation (I) 【Chemistry 1】 (In the formula, X is either O or S; Y is H, methyl, or methoxy; R 1 R is located on one or both free ring carbon atoms. 2 A 1-difluoromethylpyrazole-3-yl or 1-difluoromethylpyrazole-4-yl ring substituted by, Each R 2 These are independently fluoro, chloro, bromo, methyl, ethyl, fluoromethyl, difluoromethyl, or difluoroethyl; R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl group which may be optionally substituted by substituents; and Each R 4 is, independently, halogen, C 1 -C 6 alkyl, C 1 -C 6 haloalkyl, C 1 -C 6 alkoxy, C 1 -C 6 haloalkoxy, cyano, nitro, C 1 -C 6 alkylthio, C 1 -C 6 alkylsulfinyl or C 1 -C 6 alkylsulfonyl). A compound of the same or its N oxide or salt.
2. R 1 R 1 -1, R 1 -2, R 1 -3 and R 1 -4 【Chemistry 2】 (In the formula, each R 2 (where n is as defined in claim 1, n is an integer of 1 or 2, and the dashed line indicates a point of connection to the remainder of the numerator.) A compound according to claim 1, selected from the group consisting of the following.
3. The compound according to claim 1 or 2, wherein Y is H or methyl.
4. The compound according to any one of claims 1 to 3, wherein X is S.
5. The compound according to any one of claims 1 to 3, wherein X is O.
6. R 3 R 3 -1, R 3 -2, R 3 -3, R 3 -4, R 3 -5 and R 3 -6 【Transformation 3】 (wherein p is an integer of 0, 1, 2, or 3, R 4 (This is as defined in claim 1, and the wavy line represents the bond point to the remainder of the molecule.) A compound according to any one of claims 1 to 5, selected from the group consisting of the above.
7. Each R 4 These are, independently, halogen, C 1 ~C 4 Alkyl, C 1 ~C 3 Haloalkyl, C 1 ~C 3 Alkoxy or C 1 ~C 3 The compound according to any one of claims 1 to 6, which is a haloalkoxy.
8. A compound according to any one of claims 1 to 7, selected from the group of compounds shown in the table below. Table 1
9. An agricultural chemical composition comprising an effective amount for herbicidal control of a compound of formula (I) according to any one of claims 1 to 8, and an agriculturally chemically acceptable diluent or carrier.
10. The agricultural chemical composition according to claim 9, comprising at least one further insecticide.
11. A method for controlling the growth of undesirable plants, comprising the step of applying a compound of formula (I) according to any one of claims 1 to 8 or an agricultural chemical composition according to claim 9 or 10 to the undesirable plants or their habitat.
12. Use of a compound of formula (I) according to any one of claims 1 to 8 as a herbicide.
13. A process for producing the compound of formula (I) described in claim 4, (i) A step of reacting the compound of formula (A) with ethyl acrylate under a palladium catalyst to give the compound of formula (B). 【Chemistry 4】 (In the formula, R 2a C 1 ~C 3 It is alkyl; R 2b is hydrogen or halogen; and Ha (halogen) (ii) A step of reacting the compound of formula (B) from step (i) with the compound of formula (C) in which Y is methyl in a cycloaddition reaction to obtain a mixture of compounds of formulas (D) and (E), 【Transformation 5】 (iii) A step of reacting the compound of formula (D) with a hydroxide base in a water / ether mixed solvent system to give the compound of formula (X). 【Transformation 6】 (In the formula, R 2a , R 2b And Y is as defined in steps (i) and (ii) above), (iv) A step in which the compound of formula (X) from step (iii) is reacted with aniline of formula (G) using propanephosphonic anhydride in a suitable solvent together with a suitable base to obtain the compound of formula (I). 【Transformation 7】 (In the formula, R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl group which may be optionally substituted by substituents, and each R 4 These are, independently, halogen, C 1 ~C 6 Alkyl, C 1 ~C 6 Haloalkyl, C 1 ~C 6 Alkoxy, C 1 ~C 6 Haloalkoxy, cyano, nitro, C 1 ~C 6 Alkylthio, C 1 ~C 6 Alkyl sulfinyl or C 1 ~C 6 (It is an alkylsulfonyl) A process that includes this.
14. A process for producing the compound of formula (I) according to claim 5, comprising steps (i) to (iv) according to claim 13, and (v) A step of oxidative hydrolysis of the compound of formula (I) from step (iv) with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (I) described in claim 5. A process that further includes this.
15. A process for producing the compound of formula (I) according to claim 5, comprising steps (i) to (iii) according to claim 13, and (iv) A step in which the compound of formula (X) from step (iii) is oxidatively hydrolyzed with a hydrogen peroxide solution and a suitable acid to obtain the compound of formula (J). 【Transformation 8】 (In the formula, R 2a C 1 ~C 3 It is alkyl; R 2b is hydrogen or halogen; and Y is methyl.) (v) A step in which the compound of formula (J) from step (iv) is reacted with aniline of formula (G) using propanephosphonic anhydride in a suitable solvent together with a suitable base to obtain the compound of formula (I). 【Chemistry 9】 (In the formula, R 3 is 1, 2, or 3 R 4 A phenyl, pyridinyl, or thienyl group which may be optionally substituted by substituents, and each R 4 These are, independently, halogen, C 1 ~C 6 Alkyl, C 1 ~C 6 Haloalkyl, C 1 ~C 6 Alkoxy, C 1 ~C 6 Haloalkoxy, cyano, nitro, C 1 ~C 6 Alkylthio, C 1 ~C 6 Alkyl sulfinyl or C 1 ~C 6 (It is an alkylsulfonyl) A process that further includes this.
16. Formula (D) 【Chemistry 10】 (In the formula, R 2a is halogen, C 1 -C 3 -fluoroalkyl, C 1 -C 3 -haloalkoxy, C 1 -C 3 -alkoxy or C 1 -C 3 -alkyl; R 2b is hydrogen, halogen, C 1 to C 3 fluoroalkyl, C 1 to C 3 haloalkoxy, C 1 to C 3 alkoxy or C 1 to C 3 alkyl; and Y is methyl. A compound of [unclear].
17. Formula (E) 【Chemistry 11】 (In the formula, R 2a is halogen, C 1 ~C 3 Fluoroalkyl, C 1 ~C 3 Haloalkoxy, C 1 ~C 3 Alkoxy or C 1 ~C 3 It is alkyl; R 2b is hydrogen, halogen, C 1 ~C 3 Fluoroalkyl, C 1 ~C 3 Haloalkoxy, C 1 ~C 3 Alkoxy or C 1 ~C 3 It is alkyl; and Y is methyl. A compound of [unclear].
18. Formula (J) 【Chemistry 12】 (In the formula, R 2a is halogen, C 1 ~C 3 Fluoroalkyl, C 1 ~C 3 Haloalkoxy, C 1 ~C 3 Alkoxy or C 1 ~C 3 It is alkyl; R 2b is hydrogen, halogen, C 1 ~C 3 Fluoroalkyl, C 1 ~C 3 Haloalkoxy, C 1 ~C 3 Alkoxy or C 1 ~C 3 It is alkyl; and Y is H, methyl, or methoxy. A compound of [unclear].
19. Formula (X) 【Chemistry 13】 (In the formula, R 2a C 1 ~C 3 It is alkyl; R 2b is hydrogen or halogen; R Q1 and R Q4 These are hydrogen atoms, and R Q2 and R Q3 They form a ring Q together with the carbon atoms to which they are bonded. Ring Q is either Q1 or Q2. 【Chemistry 14】 Y is H, methyl, or methoxy. ("a" represents the binding site to the pyrazole moiety, and "c" represents the binding site to the carboxylate moiety.) A compound of [unclear].
20. (i) The compound of formula (D) described in claim 16, (ii) The compound of formula (E) according to claim 17, (iii) A compound of formula (J) as described in claim 18, or (iv) The compound of formula (X) according to claim 19 Its use in the manufacture of herbicides.
Citation Information
Patent Citations
Pyrazole-substituted pyrrolidinones as herbicides
WO2020242946A1