Herbicidal Inducer
Novel pyridone derivatives with structural modifications provide improved herbicidal activity and selectivity, addressing the limitations of existing herbicides by effectively controlling weeds in crops while protecting useful plants.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- SYNGENTA CROP PROTECITON AG
- Filing Date
- 2021-11-26
- Publication Date
- 2026-04-13
AI Technical Summary
Existing herbicides based on pyridone derivatives lack sufficient herbicidal activity and selectivity for controlling weeds in crops.
Development of novel pyridone derivatives with specific structural modifications, including varying substituents, which are formulated into agrochemical compositions for effective weed control with improved selectivity.
The novel pyridone derivatives exhibit enhanced herbicidal activity and selectivity, allowing for effective weed control in crops without harming desirable plants, with application methods tailored to various agricultural conditions.
Smart Images

Figure 0007844472000001 
Figure 0007844472000002 
Figure 0007844472000003
Abstract
Description
[Technical Field]
[0001] The present invention relates, for example, to herbicidal pyridone derivatives having herbicidal activity as active ingredients. The present invention also relates to pesticide compositions comprising at least one pyridone derivative, processes for preparing these compounds, and the use of pyridone derivatives or compositions in agriculture or horticulture, particularly for controlling weeds in crops of useful plants. [Background technology]
[0002] European Patent No. 0239391, European Patent No. 0127313, European Patent No. 0040082, and British Patent No. 2182931 describe pyridone derivatives as herbicides. [Overview of the project]
[0003] According to the present invention, formula (I): [ka] (In the formula, X is O, NR 6 or S; R 1 These are C1-C6 alkyl groups; R 2 is a phenyl or heteroaryl compound, where the heteroaryl portion is a 5 or 6-membered aromatic ring containing 1, 2, 3 or 4 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl portion is R 7 The bases represented by may be arbitrarily substituted with one, two, three, or four bases that are the same or different; R 3 The C1-C6 alkyl group is hydrogen, C1-C6 alkyl group, N,N-di(C1-C3 alkyl)amino group, C1-C6 haloalkyl group, C3-C6 cycloalkyl group, C3-C6 cycloalkyl group, C1-C6 alkyl group, C1-C6 alkoxy group, C1-C6 alkyl group, C2-C6 alkenyl group, C2-C6 alkynyl group, phenyl group, or phenyl C1-C3 alkyl group, and the phenyl group is R 8which may be optionally substituted with one, two, three or four groups, which may be the same or different; R 4 is cyano, C2-C6 alkenyl, C2-C6 alkynyl, C1-C6 alkoxyC2-C6 alkenyl, C2-C6 alkenyloxyC1-C6 alkyl, C1-C6 alkylcarbonyl or hydroxycarbonyl; R 5 is halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl or C1-C4 alkoxyC1-C4 alkyl; R 6 is hydrogen, C1-C3 alkyl or C1-C3 alkoxy; R 7 is halogen, C1-C3 alkyl or C1-C3 alkoxy; R 8 is halogen, cyano, C1-C3 alkyl or C1-C3 alkoxy) There is provided a compound of or a salt or N-oxide thereof.
[0004] Surprisingly, the novel compounds of formula (I) have been found to have a very advantageous level of herbicidal activity for practical purposes.
[0005] According to a second aspect of the present invention, there is provided an agrochemical composition comprising a herbicidally effective amount of a compound of formula (I) according to the present invention. Such an agricultural composition may further comprise at least one additional active ingredient and / or an agrochemically acceptable diluent or carrier.
[0006] According to a third aspect of the present invention, there is provided a method of controlling weeds in a habitat, the method comprising applying to the habitat a composition comprising a compound of formula (I) in an amount effective for weed control.
[0007] According to a fourth aspect of the present invention, there is provided the use of a compound of formula (I) as a herbicide.
Embodiments for Carrying out the Invention
[0008] When it states that substituents "may be optionally substituted," this means, for example, 1, 2, or 3 Rs. 7 This means that a molecule may or may not have one or more identical or different substituents. For example, a C1-C6 alkyl group substituted with one, two, or three halogens may, but is not particularly limited, include the -CH2Cl, -CHCl2, -CCl3, -CH2F, -CHF2, -CF3, -CH2CF3, or -CF2CH3 groups. Another example is a C1-C6 alkoxy group substituted with one, two, or three halogens, which may, but is not particularly limited, include the CH2ClO-, CHCl2O-, CCl3O-, CH2FO-, CHF2O-, CF3O-, CF3CH2O-, or CH3CF2O- groups.
[0009] As used herein, the term "cyano" means the -CN group.
[0010] As used herein, the term "halogen" refers to fluorine (fluoro), chlorine (chloro), bromine (bromo), or iodine (iod).
[0011] As used herein, the term "hydroxy" means the -OH group.
[0012] As used herein, the term "acetyl" means the -C(O)CH3 group.
[0013] As used herein, the term "C1-C6 alkyl" refers to a linear or branched hydrocarbon group composed solely of carbon and hydrogen atoms, unsaturated, having 1 to 6 carbon atoms, and bonded to the remainder of the molecule by single bonds. "C1-C4 alkyl" and "C1-C3 alkyl" should be interpreted accordingly. Examples of C1-C6 alkyls, but not limited to these, include methyl, ethyl, n-propyl, and their isomers, such as isopropyl. The term "C1-C6 alkylene" refers to the corresponding definition of C1-C6 alkyl, except for groups bonded to the remainder of the molecule by two single bonds. The term "C1-C2 alkylene" should be interpreted accordingly. Examples of C1-C6 alkylenes, but not limited to these, include -CH2-, -CH2CH2-, and -(CH2)3-.
[0014] As used herein, the term "C1-C6 haloalkyl" refers to the C1-C6 alkyl group as generally defined above, which is substituted with one or more identical or different halogen atoms. The terms "C1-C4 haloalkyl" and "C1-C3 haloalkyl" should be interpreted accordingly. Examples of C1-C6 haloalkyls, but not limited to these, include trifluoromethyl.
[0015] As used herein, the term "C1-C6 alkoxy" means R a However, the formula -OR is a C1-C6 alkyl group as generally defined above. a This refers to the group of C1-C4 alkoxy. The terms "C1-C4 alkoxy" and "C1-C3 alkoxy" should be interpreted accordingly. Examples of C1-C6 alkoxy, but not limited to these, include methoxy, ethoxy, 1-methylethoxy (isopropoxy), and propoxy.
[0016] As used herein, the term "C2-C6 alkenyl" refers to a linear or branched hydrocarbon chain group consisting only of carbon and hydrogen atoms, containing at least one double bond which may be in either an (E)- or (Z)- configuration, having 2 to 6 carbon atoms, and being bonded to the remainder of the molecule by single bonds. The term "C2-C3 alkenyl" should be interpreted accordingly. Examples of C2-C6 alkenyls, but not limited to these, include ethenyl (vinyl), prop-1-enyl, prop-2-enyl (allyl), and buta-1-enyl.
[0017] As used herein, the term "C2-C6 alkynyl" refers to a linear or branched hydrocarbon chain group composed solely of carbon and hydrogen atoms, containing at least one triple bond, having 2 to 6 carbon atoms, and bonded to the remainder of the molecule by single bonds. The term "C2-C3 alkynyl" should be interpreted accordingly. Examples of C2-C6 alkynyls, but not limited to these, include ethynyl, propa-1-inyl, and buta-1-inyl.
[0018] As used herein, the term "C1-C6 alkoxy C1-C6 alkyl" means the formula R b Ure a - refers to the base, where R b R is a C1-C6 alkyl group as generally defined above, and a These are the C1-C6 alkylene groups as generally defined above.
[0019] As used herein, the term "C3-C6 cycloalkyl" refers to a monocyclic saturated ring system containing 3 to 6 carbon atoms. The terms "C3-C5 cycloalkyl" and "C3-C4 cycloalkyl" should be interpreted accordingly. Examples of C3-C6 cycloalkyls, but not limited to these, include cyclopropyl, cyclobutyl, cyclopentyl, and cyclohexyl.
[0020] As used herein, the term "C3-C6 cycloalkyl C1-C6 alkyl" refers to a C3-C6 cycloalkyl ring bonded to the remainder of the molecule by a C1-C6 alkylene linker as defined above.
[0021] As used herein, the term "C1-C6 alkoxy C2-C6 alkenyl" means the formula R b Ure a - refers to the base, where R b R is a C1-C6 alkyl group as generally defined above, and a These are the C1-C6 alkene groups as generally defined above.
[0022] As used herein, the term "C2-C6 alkenyloxy C1-C6 alkyl" means the formula R b Ure a - refers to the base, where R b R is a C2-C6 alkenyl group as generally defined above, and a These are the C1-C6 alkylene groups as generally defined above.
[0023] As used herein, the term "phenyl C1-C3 alkyl" refers to a phenyl ring attached to the remainder of the molecule by a C1-C3 alkylene linker as defined above.
[0024] As used herein, the term "heteroaryl" refers to a five- or six-membered aromatic monocyclic ring group containing one, two, three, or four heteroatoms individually selected from nitrogen, oxygen, and sulfur. Examples of heteroaryls, but not limited to, include furanyl, pyrrolyl, thienyl, pyrazolyl, imidazolyl, thiazolyl, isothiazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, pyrazinyl, pyridadinyl, pyrimidyl, or pyridyl.
[0025] As used herein, the term "C1-C6 alkylcarbonyl" refers to the formula -C(O)Ra It refers to the base of, where R a These are C1-C6 alkyl groups as generally defined above.
[0026] As used herein, the terms "hydroxycarbonyl" or "carboxyl" refer to the group of the formula -C(O)OH.
[0027] As used herein, the term "N,N-di(C1~C3 alkyl)amino" refers to the formula -N(R a )(R b ) refers to the base, where R a and R b Each of these is, individually, a C1-C3 alkyl group as generally defined above.
[0028] The possibility of one or more stereocentral elements in a compound of formula (I) means that the compound can take on optical isomers, i.e., enantiomers or diastereoisomers. Furthermore, astrop isomers can be generated by the restriction of rotation involving single bonds. Formula (I) is intended to encompass all of these possible isomers and mixtures thereof. The present invention encompasses all of these possible isomers and mixtures thereof relating to compounds of formula (I). Similarly, formula (I) is intended to encompass all possible tautomers. The present invention encompasses all possible tautomers relating to compounds of formula (I).
[0029] 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, or a salt form, such as an agriculturally usable salt form. It is preferable that the compound of formula (I) forms salts with amines including primary, secondary, and tertiary amines (e.g., ammonia, dimethylamine, and triethylamine), alkali metal bases and alkaline earth metal bases, transition metals, or quaternary ammonium bases.
[0030] N-oxides are oxidized forms of tertiary amines or nitrogen-containing aromatic heterocyclic compounds. These are described, for example, in the book “Heterocyclic N-oxides”, A. Albini and S. Pietra, CRC Press, Boca Raton (1991).
[0031] The following list shows substituents X and R for compounds of formula (I). 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R 7 , R 8 and R 9 This provides definitions including preferred definitions for each substituent. For any one of these substituents, any of the definitions shown below may be combined with any of the definitions of any other substituents shown below or elsewhere in this specification.
[0032] X is O, NR 6 or S. In one set of embodiments, X is O. In another set of embodiments, X is NR 6 In a further set of embodiments, X is S.
[0033] R 1 is a C1-C6 alkyl group. Preferably, R 1 is a C1-C4 alkyl group. More preferably, R 1 is a C1-C3 alkyl group. More preferably, R 1 is methyl, ethyl, n-propyl, or isopropyl. More preferably, R 1 is methyl or ethyl. Most preferably, R 1 It is ethyl.
[0034] R 2 is a phenyl or heteroaryl compound, where the heteroaryl portion is a 5 or 6-membered aromatic ring containing 1, 2, 3 or 4 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl portion is R7 It may be optionally substituted with one, two, three, or four elements, which may be the same or different, represented by .
[0035] Preferably, R 2 is a phenyl or heteroaryl compound, the heteroaryl compound is a 5 or 6-membered aromatic ring containing 1, 2 or 3 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl compound is R 7 It may be optionally substituted with one, two, or three identical or different bases represented by .
[0036] Comfortable, R 2 is a phenyl or heteroaryl compound, where the heteroaryl portion is a 5 or 6-membered aromatic ring containing one or two heteroatoms individually selected from N and O, and each phenyl and heteroaryl portion is R 7 It may be optionally substituted with one, two, or three identical or different bases represented by .
[0037] Furthermore, R 2 is a phenyl or heteroaryl compound, where the heteroaryl portion is a 5 or 6-membered aromatic ring containing one or two heteroatoms individually selected from N and O, and each phenyl and heteroaryl portion is R 7 It may be optionally substituted with one or two identical or different bases represented by .
[0038] Furthermore, R 2 R 7 A phenyl represented by which one or two groups may be the same or different. In one set of embodiments, R 2 It is 3,4-dichlorophenyl.
[0039] R 3The C1-C6 alkyl group is hydrogen, C1-C6 alkyl group, N,N-di(C1-C3 alkyl)amino group, C1-C6 haloalkyl group, C3-C6 cycloalkyl group, C3-C6 cycloalkyl group, C1-C6 alkyl group, C1-C6 alkoxy group, C1-C6 alkyl group, C2-C6 alkenyl group, C2-C6 alkynyl group, phenyl group, or phenyl C1-C3 alkyl group, and the phenyl group is R 8 It may be optionally substituted with one, two, three, or four elements, which may be the same or different, represented by .
[0040] Preferably, R 3 The C1-C6 alkyl group is hydrogen, C1-C6 alkyl group, N,N-di(C1-C3 alkyl)amino group, C1-C4 haloalkyl group, C3-C6 cycloalkyl group, C3-C6 cycloalkyl group, C1-C3 alkyl group, C1-C6 alkoxy group, C1-C3 alkyl group, C2-C4 alkenyl group, C2-C4 alkynyl group, phenyl group, or phenyl C1-C2 alkyl group, and the phenyl group is R 8 It may be optionally substituted with one, two, or three identical or different bases represented by .
[0041] Comfortable, R 3 The C1-C6 alkyl group is hydrogen, C1-C6 alkyl group, N,N-di(C1-C3 alkyl)amino group, C1-C3 haloalkyl group, C3-C6 cycloalkyl group, C3-C6 cycloalkyl group, C1-C3 alkyl group, C1-C4 alkoxy group, C1-C2 alkyl group, C2-C3 alkenyl group, C2-C3 alkynyl group, phenyl group, or phenyl C1-C2 alkyl group, and the phenyl group is R 8 It may be optionally substituted with one, two, or three identical or different bases represented by .
[0042] Furthermore, R 3 The phenyl portion is hydrogen, C1-C6 alkyl or N,N-di(C1-C3 alkyl)amino, C1-C3 haloalkyl, C3-C6 cycloalkyl, C3-C6 cycloalkylC1-C3 alkyl, C1-C4 alkoxyC1-C2 alkyl, C2-C3 alkenyl, C2-C3 alkynyl, phenyl, or phenyl C1-C2 alkyl, and the phenyl portion is R 8It may be optionally substituted with one, two, or three identical or different bases represented by .
[0043] In one embodiment, R 3 is hydrogen, C1-C4 alkyl, or N,N-di(C1-C3 alkyl)amino. Preferably, R 3 is hydrogen, C1-C4 alkyl or N,N-di(methyl)amino, more preferably hydrogen or C1-C3 alkyl. Even more preferably R 3 is hydrogen, methyl, or ethyl. More preferably, R 3 It is either hydrogen or methyl.
[0044] R 4 These are cyano, C2-C6 alkenyl, C2-C6 alkynyl, C1-C6 alkoxy, C2-C6 alkenyl, C2-C6 alkenyloxy, C1-C6 alkyl, C1-C6 alkylcarbonyl, or hydroxycarbonyl.
[0045] Preferably, R 4 These are cyano, C2-C6 alkenyl, C2-C6 alkynyl, C1-C4 alkoxy C2-C3 alkenyl, C2-C4 alkenyloxy C1-C3 alkyl, C1-C6 alkylcarbonyl, or hydroxycarbonyl.
[0046] Comfortable, R 4 is a C2-C6 alkenyl, a C2-C6 alkynyl, a C1-C6 alkylcarbonyl, or a hydroxycarbonyl. More preferably, R 4 is a C2-C4 alkenyl, a C2-C4 alkynyl, a C1-C4 alkylcarbonyl, or a hydroxycarbonyl. More preferably, R 4 is a C2-C3 alkenyl, a C2-C3 alkynyl, a C1-C3 alkylcarbonyl, or a hydroxycarbonyl. In one set of embodiments, R 4 These are vinyl, ethynyl, acetyl, or hydroxycarbonyl.
[0047] R 5is halogen, C1-C4 alkyl, C1-C4 alkoxy, C1-C4 haloalkyl or C1-C4 alkoxy C1-C4 alkyl. Preferably, R 5 is C1-C4 alkyl, C1-C3 alkoxy or C1-C3 alkoxy C1-C2 alkyl. More preferably, R 5 is C1-C4 alkyl. Even more preferably, R 5 is C1-C3 alkyl. In one set of embodiments, R 5 is methyl.
[0048] R 6 is hydrogen, C1-C3 alkyl or C1-C3 alkoxy. Preferably, R 6 is hydrogen or C1-C3 alkyl. More preferably, R 6 is hydrogen, methyl or ethyl. Even more preferably, R 6 is methyl.
[0049] R 7 is halogen, C1-C3 alkyl or C1-C3 alkoxy. Preferably, R 7 is halogen, methyl, ethyl, methoxy or ethoxy. Even more preferably, R 7 is halogen, methyl or methoxy. Even more preferably, R 7 is halogen. Even more preferably, R 7 is chloro.
[0050] R 8 is halogen, cyano, C1-C3 alkyl or C1-C3 alkoxy. Preferably, R 8 is halogen, cyano, methyl, ethyl, methoxy or ethoxy. More preferably, R 8 is chloro, bromo, fluoro, methyl or methoxy.
[0051] In the compound of formula (I) according to the present invention, preferably, X is O; R 1is C1-C4 alkyl; R 2 is phenyl or heteroaryl, and the heteroaryl moiety is a 5- or 6-membered aromatic ring containing 1, 2 or 3 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl moiety may be optionally substituted with 1, 2 or 3 groups, which may be the same or different, represented by R 7 ; R 3 is hydrogen, C1-C4 alkyl or N,N-di(C1-C3 alkyl)amino; R 4 is C2-C6 alkenyl, C2-C6 alkynyl, C1-C6 alkylcarbonyl or hydroxycarbonyl; R 5 is C1-C4 alkyl; and R 7 is halogen.
[0052] In another set of embodiments, X is O; R 1 is C1-C3 alkyl; R 2 is phenyl optionally substituted with 1 or 2 groups, which may be the same or different, represented by R 7 ; R 3 is hydrogen, C1-C4 alkyl or N,N-di(C1-C3 alkyl)amino; R 4 is cyano, C2-C6 alkenyl, C2-C6 alkynyl, C1-C4 alkoxy C2-C3 alkenyl, C2-C4 alkenyloxy C1-C3 alkyl, C1-C6 alkylcarbonyl or hydroxycarbonyl; R 5 is C1-C3 alkyl; and R 7 is halogen.
[0053] The compounds of the present invention can be prepared as shown in the following scheme, and unless otherwise specified, the definition of each variable element is as defined above for the compound of formula (I). A general method for producing the compound of formula (I) is shown below. Unless otherwise specified in the text, R 1 , R 2 , R 3 , R 4 , R 5 And X are as defined above in this specification. The starting materials used in the preparation of the compounds of the present invention may be purchased from a regular commercial supplier or prepared by known methods. The starting materials and intermediates may be purified by prior art methodologies such as chromatography, crystallization, distillation and filtration before being used in the next step.
[0054] Scheme 1: [ka] Compound of formula (I) (wherein X is NH and R 3 (wherein X is -N(CH3)2) is a compound of formula (I) (wherein X is O and R is R) with an optional additive (such as dimethylaminopyridine) in a suitable solvent (such as dichloromethane or ethyl acetate), and a coupling agent such as 1,1-dimethylhydrazine and propylphosphonic anhydride (used undiluted or as a solution in ethyl acetate). 3 Compound (I) can be prepared by coupling (where is hydrogen). This is shown in Scheme 1 above. Compounds of formula (I) can be further prepared by the following methods.
[0055] Scheme 2: [ka] Compound of formula (I) (wherein X is O and R 3A compound of formula (I) (wherein X is hydrogen) is obtained by a suitable base (such as sodium hydroxide or lithium hydroxide) or a suitable acid (such as trifluoroacetic acid, hydrochloric acid, formic acid or sulfuric acid) in a suitable solvent (such as methanol, ethanol, dichloromethane, chloroform, ethyl acetate or tetrahydrofuran) containing any co-solvent (such as water), (wherein X is O and R) 3 It is not hydrogen, but one of the other R as defined above. 3 It can be prepared by hydrolysis of the group. When a base was used, the product was obtained after acidification with a suitable acid (such as hydrochloric acid). 4 When is pyridyl or pyridazinyl, the product was obtained as an homogeneous salt (such as hydrochloride). This is shown in Scheme 2 above. Compounds of formula (I) can be further prepared by the following methods.
[0056] Scheme 3: [ka] In the additional deformation, R 4 Compounds of formula (I) in which trimethylsilylethynyl are obtained by treatment with a base (such as potassium carbonate) in a solvent (such as methanol), resulting in R 4 It can be converted to a compound of formula (I) in which ethynyl is present. This is shown in scheme 3 above.
[0057] Scheme 4: [ka] Compound of formula (I) (wherein R 4Y is an alkyne, alkene, or ketone (such as trimethylsilylethynyl, vinyl, or acetyl) which can be further prepared from a compound of formula (B) where Y is Cl, Br, or I, in a suitable solvent (such as toluene), at a high temperature (e.g., 60°C, 120°C, or 125°C), in the presence of a catalyst (such as tetrakis(triphenylphosphine)palladium(O) or dichlorobis(triphenylphosphine)palladium(II)), and accompanied by an alkynyl, alkenyl, or ethoxyvinyl stanane, under Still reaction conditions. This is shown in scheme 4 above.
[0058] Scheme 5: [ka] R 4 Compounds of formula (I) in which Y is a carboxylic acid can be prepared by treating a compound of formula (B) in which Y is Br with a Grignard reagent (such as isopropylmagnesium chloride lithium chloride complex) in a solvent (such as tetrahydrofuran), followed by a reaction with carbon dioxide gas at a temperature of -20°C to room temperature. This is shown in scheme 5 above.
[0059] Scheme 6: [ka] Compound of formula (B) (wherein X is O and R) 3 (wherein X is hydrogen, and Y is Br or I) is a compound of formula (B) (wherein X is O, and R is R) in a suitable solvent (such as methanol, ethanol, dichloromethane, chloroform, ethyl acetate, or tetrahydrofuran) with any co-solvent (such as water), and a suitable base (such as sodium hydroxide or lithium hydroxide) or a suitable acid (such as trifluoroacetic acid, hydrochloric acid, formic acid, or sulfuric acid). 3 It is not hydrogen, but one of the other R as defined above. 3 It can be prepared by hydrolysis of the group. This is shown in scheme 6 above.
[0060] Scheme 7: [ka] Compounds of formula (B), where Y is Br or I, can be prepared by treating compounds of formula (C) with a suitable halogenating agent (such as N-iodohaloxcinimide or N-bromohaloxcinimide) in a suitable solvent (such as acetonitrile or trifluoroacetic acid). This is shown in scheme 7 above.
[0061] Scheme 8: [ka] The compound of formula (C), where X is O, can be prepared by reacting the compound of formula (D) with the compound of formula (E) at a high temperature (e.g., 120°C) without the use of a solvent. The compound of formula D is commercially available or can be prepared by methods well known to those skilled in the art. This is shown in scheme 8 above.
[0062] Scheme 9: [ka] The compound of formula (E) can be prepared by the reaction of the β-ketoester of formula (F) with an amine salt. The amine salt can be prepared in situ by acidifying the amine of formula (G) with a suitable acid (such as acetic acid). These amine salts can then be reacted with the compound of formula (F) in a suitable solvent (such as toluene) in the presence of an acid (such as acetic acid) and a drying agent (such as a 4 Å molecular sieve). The compound of formula (F) is commercially available or can be prepared using the conditions described below. The compound of formula (G) is commercially available or can be prepared by a method well known to those skilled in the art. This is shown in scheme 9 above.
[0063] Scheme 10: [ka] The compound of formula (F) can be prepared by treating the ketone of formula (H) with a base (such as sodium hydride) in the presence of the dialkyl carbonate of formula (i) (such as dimethyl carbonate). The compounds of formula (H) and formula (i) are commercially available or can be prepared by methods well known to those skilled in the art. This is shown in scheme 10 above.
[0064] The present invention further provides a method for controlling weeds in a habitat, the method comprising the application of a composition containing a compound of formula (I) to the habitat in a weed-controlling amount. The present invention may also further provide a method for selectively controlling weeds in a habitat containing useful (crop) plants and weeds, the method comprising the application of a composition according to the present invention to the habitat in a weed-controlling amount. "Control" means eradication, reduction or inhibition of growth, or prevention or reduction of germination. It should be noted that the compounds of the present invention exhibit considerably improved selectivity compared to known structurally similar compounds. Generally, the plants to be controlled are undesirable plants (weeds). "Habitat" means an area where plants are growing or will grow. Application may be carried out on the habitat before and / or after the germination of crop plants. Some crop plants may be congenitally resistant to the herbicidal effect of compounds of formula (I).
[0065] The application amount of the compound of formula (I) can vary within a wide range of limits and depends on soil properties, application method (before or after germination; seed coating; application to sowing furrows; no tillage application, etc.), crop plants, weeds to be controlled, prevailing weather conditions, and other factors that depend on the application method, timing, and target crop. The compound of formula I according to the present invention is generally applied in amounts of 10 to 2500 g / ha, particularly 25 to 1000 g / ha, and especially 25 to 250 g / ha.
[0066] Application is generally carried out by spraying the composition, typically using a large-area sprayer mounted on a tractor, but other methods such as dusting (in the case of powder), dripping, or drenching are also available.
[0067] 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-hydroxyphenylpyruvate 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 certain classes of herbicides has been induced through genetic engineering include glyphosate- and glufosinate-resistant maize varieties marketed under trade names RoundupReady®, Herculex I®, and LibertyLink®.
[0068] The term "useful plants" should be understood to include useful plants that have been transformed using recombinant DNA technology to enable the synthesis of one or more selectively acting toxins, such as those from known toxin-producing bacteria, particularly those of the genus Bacillus.
[0069] Examples of such plants include: YieldGard® (maize variety expressing CryIA(b) toxin); YieldGard Root-Eating Nematode® (maize variety expressing CryIIIB(b1) toxin); YieldGard Plus® (maize variety expressing CryIA(b) and CryIIIB(b1) toxins); Starlink® (maize variety expressing Cry9(c) toxin); Herculex I® (maize variety expressing CryIF(a2) toxin and the enzyme phosphinothrysin N-acetyltransferase (PAT) to achieve resistance to the herbicide glufosinate ammonium); NuCOTN 33B® (cotton variety expressing CryIA(c) toxin); Bollgard I® (cotton variety expressing CryIA(c) toxin); Bollgard II (registered trademark) (cotton varieties expressing CryIA(c) and CryIIA(b) toxins); VIPCOT (registered trademark) (cotton varieties expressing VIP toxin); NewLeaf (registered trademark) (potato varieties expressing CryIIIA toxin); NatureGard (registered trademark); Agrisure (registered trademark) GT advantages (GA21 glyphosate resistance trait); Agrisure (registered trademark) CB advantages (Bt11 corn-boring insect (CB) trait); Agrisure (registered trademark) RW (corn root-boring nematode trait); and Protecta (registered trademark).
[0070] Plant crops or their seed materials may both be resistant to herbicides and simultaneously resistant to insect feeding ("stacked" transgenic events). For example, seeds may have the ability to express the insecticidal Cry3 protein while simultaneously being resistant to glyphosate.
[0071] Crop plants can be obtained by conventional methods involving crossbreeding or genetic engineering, and should be understood to include those that possess so-called output traits (e.g., improved storage stability, higher nutritional value, and improved flavor).
[0072] Compounds of formula (I) (or compositions containing them) can be used to control undesirable plants (collectively, "weeds"). The weeds controlled include, for example, Agrostis, Alopecurus, Avena, Brachiaria, Bromus, Cenchrus, Cyperus, Digitaria, Echinochloa, Eleusine, Lolium, Monochoria, Rottboellia, Sagittaria, Scirpus, Setaria and Moroz. It can be both monocotyledonous species such as the genus Sorghum, and dicotyledonous species such as the genera Abutilon, Amaranthus, Ambrosia, Chenopodium, Chrysanthemum, Conyza, Galium, Ipomoea, Nasturtium, Sida, Sinapis, Solanum, Stellaria, Veronica, Viola, and Xanthium.
[0073] The compounds of formula (I) may be used in their unmodified form, or preferably with additives such as carriers, solvents, and surfactants (SAAs) used in combination with additives conventionally employed in the art of formulations to provide herbicidal compositions. The present invention therefore further provides herbicidal compositions comprising at least one compound of formula (I), an agriculturally acceptable carrier, and optionally an additive. An agriculturally acceptable carrier is, for example, a carrier suitable for agricultural use. Agricultural carriers are well known in the art.
[0074] The herbicidal composition generally comprises 0.1 to 99% by weight, particularly 0.1 to 95% by weight, of a compound of formula I, and 1 to 99.9% by weight of a formulation aid, preferably containing 0 to 25% by weight of a surface-active substance.
[0075] The composition can be selected from a number of formulation types. These include emulsion concentrates (EC), suspension concentrates (SC), suspension emulsions (SE), capsule suspensions (CS), water-dispersible granules (WG), emulsifying granules (EG), water-in-oil emulsions (EO), oil-in-water emulsions (EW), micro-emulsions (ME), oil dispersions (OD), oil-mixed flowables (OF), oil-mixed liquids (OL), soluble concentrates (SL), ultra-low volume suspensions (SU), ultra-low volume liquids (UL), industrial concentrates (TK), dispersible concentrates (DC), soluble powders (SP), wettable powders (WP), and soluble granules (SG). In any case, the formulation type selected will depend on the specific intended purpose and the physical, chemical, and biological properties of the compound of formula (I).
[0076] A water-soluble compound (SP) can be prepared by mixing the compound of formula (I) with one or more water-soluble inorganic salts (such as sodium bicarbonate, sodium carbonate, or magnesium sulfate) or one or more water-soluble organic solids (such as polysaccharides) and optionally one or more wetting agents, one or more dispersants, or a mixture of the said substances, in order to improve its dispersibility / solubility in water. This mixture is then pulverized into a fine powder. Alternatively, a similar composition can be granulated to form water-soluble granules (SG).
[0077] A wettable powder (WP) can be prepared by mixing a compound of formula (I) with one or more solid diluents or carriers, one or more wetting agents, preferably one or more dispersants, and optionally one or more suspending agents to promote dispersion in a liquid. This mixture is then ground into a fine powder. Alternatively, a similar composition can be granulated to form hydrated granules (WG).
[0078] Granules (GR) can be formed by granulating a mixture of the compound of formula (I) with one or more powdered solid diluents or carriers, or by absorbing the compound of formula (I) (or a solution thereof in a suitable substance) into a porous granular material (such as pumice, attapulgite clay, Fuller's earth, Kieselgool, diatomaceous earth, or crushed corn cob), or by adsorbing the compound of formula (I) (or a solution thereof in a suitable substance) onto a hard core material (such as sand, silicates, inorganic carbonates, sulfates, or phosphates) and drying as necessary, thereby granulating from pre-formed blank granules. Substances commonly used to aid absorption or adsorption include solvents (aliphatic and aromatic petroleum solvents, alcohols, ethers, ketones, and esters) and binders (such as polyvinyl acetate, polyvinyl alcohol, dextrin, sugars, and vegetable oils). One or more other additives may also be included in the granules (e.g., emulsifiers, wetting agents, or dispersants).
[0079] Dispersible concentrates (DCs) can be prepared by dissolving the compound of formula (I) in water or an organic solvent such as a ketone, alcohol, or glycol ether. These solutions may contain surfactants (for example, to improve water dilution or to prevent crystallization in the spray tank).
[0080] Emulsifying concentrates (ECs) or oil-in-water emulsions (EWs) can be prepared by dissolving a compound of formula (I) in an organic solvent (optionally containing one or more wetting agents, one or more emulsifiers, or a mixture thereof). Suitable organic solvents for use in ECs include aromatic hydrocarbons (such as alkylbenzenes or alkylnaphthalenes as exemplified by SOLVESSO 100, SOLVESSO 150, and SOLVESSO 200; SOLVESSO is a registered trademark), ketones (such as cyclohexanone or methylcyclohexanone), and alcohols (such as benzyl alcohol, furfuryl alcohol, or butanol), N-alkylpyrrolidones (such as N-methylpyrrolidone or N-octylpyrrolidone), and dimethylamides of fatty acids (C8-C8). 10Examples include fatty acid dimethylamides and chlorinated hydrocarbons. When added to water, EC products spontaneously emulsify to produce emulsions that are stable enough to be sprayed using appropriate equipment.
[0081] The preparation of EW comprises the steps of obtaining the compound of formula (I) as a liquid (if it is not a liquid at room temperature, it can be melted at a suitable temperature, typically below 70°C) or in solution (by dissolving it in a suitable solvent), and then emulsifying the obtained liquid or solution in water containing one or more SAAs under high shear to produce an emulsion. Suitable solvents for use in EW include vegetable oils, chlorinated hydrocarbons (such as chlorobenzene), aromatic solvents (such as alkylbenzene or alkylnaphthalene), and other suitable organic solvents with low water solubility.
[0082] Microemulsions (MEs) can be prepared by mixing water with a blend of one or more SAAs and one or more solvents to spontaneously produce a thermodynamically stable, isotropic liquid formulation. The compound of formula (I) is initially present in either water or the solvent / SAA blend. Suitable solvents for use in MEs include those mentioned above for use in ECs or EWs. MEs can be either oil-in-water or water-in-oil systems (the type of system can be determined by conductivity measurements) and can be suitable for mixing water-soluble and oil-soluble pest control agents in the same formulation. MEs are suitable for dilution in water and may remain as microemulsions or form conventional oil-in-water emulsions.
[0083] The suspension concentrate (SC) may comprise an aqueous or non-aqueous suspension of finely ground insoluble solid particles of the compound of formula (I). The SC may be prepared by ball-milling or bead-milling the solid compound of formula (I) in a suitable medium with the optional addition of one or more dispersants to produce a fine particle suspension of the compound. One or more wetting agents may be included in the composition, and suspending agents may be included to reduce the sedimentation rate of the particles. Alternatively, the compound of formula (I) may be dry-milled and added to water containing the aforementioned substances to produce the desired final product.
[0084] The aerosol formulation comprises a compound of formula (I) and a suitable propellant (e.g., n-butane). The compound of formula (I) can also be dissolved or dispersed in a suitable medium (e.g., water or a water-miscible liquid such as n-propanol) to obtain a composition for use in a non-pressurized, manual spray pump.
[0085] The capsule suspension (CS) can be prepared in the same manner as the preparation of the EW formulation, except that it involves an additional polymerization step to obtain an aqueous dispersion of oil droplets in which each oil droplet is encapsulated by a polymer shell and contains the compound of formula (I) and optionally a carrier or diluent therefor. The polymer shell can be produced by either an interfacial polycondensation reaction or a coacervation procedure. This composition provides controlled release of the compound of formula (I) and can be used for seed treatment. The compound of formula (I) can also be formulated in a biodegradable polymer matrix to provide delayed controlled release of the compound.
[0086] The composition may contain one or more additives to improve the biological properties of the composition, for example, by improving wetting, retention, or dispersion on a surface; rain resistance on the treated surface; or the uptake or mobility of the compound of formula (I). Such additives include surfactants (SAAs), oily spray additives, for example certain mineral oils or natural vegetable oils (such as soybean and rapeseed oil), modified vegetable oils such as methylated rapeseed oil (MRSO), and blends thereof with other bioactivation enhancers (formulation components that can assist or modify the action of the compound of formula (I)).
[0087] The wetting agent, dispersant, and emulsifier may be cationic, anionic, amphoteric, or nonionic SAA.
[0088] Suitable cationic SAAs include quaternary ammonium compounds (e.g., cetyltrimethylammonium bromide), imidazolines, and amine salts.
[0089] Suitable anionic SAAs include alkali metal salts of fatty acids, salts of aliphatic monoesters of sulfuric acid (e.g., sodium lauryl sulfate), salts of sulfonated aromatic compounds (e.g., sodium dodecylbenzenesulfonate, calcium dodecylbenzenesulfonate, butylnaphthalene sulfonate, and mixtures of di-isopropyl- and tri-isopropyl-naphthalenesulfonate sodium), sulfate ethers, sulfate alcohol ethers (e.g., sodium laureth-3-sulfate), carboxylic acid ethers (e.g., sodium laureth-3-carboxylate), phosphate esters (products from the reaction of one or more aliphatic alcohols with phosphoric acid (mainly monoesters) or phosphorus pentoxide (mainly diesters), e.g., reaction products of lauryl alcohol and tetraphosphate; furthermore, these products can be ethoxylated), sulfosuccinamates, paraffins or olefin sulfonates, taurates, lignosulfonates, and phosphates / sulfonates of tristyrylphenol.
[0090] Suitable amphoteric SAAs include betaine, propionate, and glycinate.
[0091] Suitable nonionic SAAs include condensation products of alkylene oxides such as ethylene oxide, propylene oxide, and butylene oxide, or mixtures thereof, with aliphatic alcohols (such as oleyl alcohol or cetyl alcohol) or alkylphenols (such as octylphenol, nonylphenol, or octyl cresol); partial esters derived from long-chain fatty acids or anhydrous hexitol; condensation products of the partial esters with ethylene oxide; block polymers (including ethylene oxide and propylene oxide); alkanolamides; simple esters (e.g., fatty acid polyethylene glycol esters); amine oxides (e.g., lauryldimethylamine oxide); lecithin and sorbitan and their esters, alkyl polyglycosides, and tristyrylphenol.
[0092] Suitable suspending agents include hydrophilic colloids (such as polysaccharides, polyvinylpyrrolidone, or sodium carboxymethylcellulose) and swelling clays (such as bentonite or attapulgite).
[0093] The compounds of the present invention can also be used in mixtures with one or more additional herbicides and / or plant growth regulators. Examples of such additional herbicides or plant growth regulators include acetochlor, aciflorphen (including aciflorphen-sodium), acroniphen, ametrin, aminocarbazone, aminopyralide, aminotriazole, atrazine, beflubutamide-M, benkytrione, bensulfuron (including bensulfuron-methyl), bentazon, bicyclopyrone, viranaphos, bispiribac-sodium, bixlozone, bromacil, bromoxynil, butachlor, butaphenacil, carphentrazone (carphe (containing chloranthrazon-ethyl), chloransram (containing chloransram-methyl), chlorimuron (containing chlorimuron-ethyl), chlorotoluron, chlorsulfuron, scinmethiline, crasiphos, cretodym, clodinahop (containing clodinahop-propargyl), chromazon, clopyralide, cyclopyranil, cyclopyrimolate, cyclosulfamurone, cyhalofop (containing cyhalofop-butyl), 2,4-D (containing its choline salt and 2-ethylhexyl ester), 2,4-DB, desmedifam, dicamba (Containing aluminum, aminopropyl, bis-aminopropylmethyl, choline, dichloroprop, diglycolamine, dimethylamine, dimethylammonium, and their potassium and sodium salts) Diclothram, Difluhenican, Diflufenzopyr, Dimethachlor, Dimethenamide-P, Dicoat dibromide, Diuron, Epirifenacil, Etalfluralin, Etofmesate, Phenoxaprop (containing phenoxaprop-P-ethyl), Phenoxasulfone, Fenquinotrione, Fentrazamide, Frazasulfone Fluorocarbons, Floraslam, Florpyrauxifen (containing Florpyrauxifen-benzyl), Fluadifop (containing Fluadifop-p-butyl), Flucarbazone (containing Flucarbazone-sodium), Flufenacet, Flumetulam, Flumioxazine, Fluomethron, Flupyrsulfuron (containing Flupyrsulfuron-methyl-sodium), Fluroxypyr (containing Fluroxypyr-meptyl), Fomesafen, Folamsulfuron, Glufosinate (containing L-glufosinate and both ammonium salts),Glyphosate (including its diammonium, isopropylammonium, and potassium salts), halauxifen (including halauxifen-methyl), haloxyhop (including haloxyhop-methyl), hexazinone, hydantosidine, imazamox (including R-imazamox), imazapic, imazapyr, imazetapir, indadiflame, iodosulfuron (including iodosulfuron-methyl-sodium), iophensulfuron (including iophensulfuron-sodium), ioxynil, isoproturone Isoxaflutol, Lancotrione, MCPA, MCPB, Mecoprop-P, Mesosulfuron (including Mesosulfuron-methyl), Mesotrione, Metamitron, Metazachlor, Methiozoline, Metrachlor, Metoslam, Metrivudine, Metosulfuron, Napropamide, Nicosulfuron, Norfurazone, Oxadiazone, Oxasulfuron, Oxyfluphene, Paraquat Dichloride, Pendimethalin, Penoxuslam, Fenmedifam, Pichloram, Pinoxadene, Pretilachlor, Primisul Fluoromethyl, promethrin, propanyl, propaxazafop, propyrisulfuron, propizamide, prosulfocarb, prosulfuron, pyraclonil, pyraflufen (including pyraflufen-ethyl), pyrasulfolol, pyridate, pyrifthalide, pyrimisulfan, pyroxasulfone, pyroxyslam, quinchlorac, kinmelac, quizalohop (including quizalohop-P-ethyl and quizalohop-P-tefuryl), limsulfuron, saflufenacil, cethoxydim, simazine, S-metallochlor Sulfenthrazone, sulfosulfuron, tebutiuron, tefuryltrione, tenbotrione, terbutyrazine, terbutrin, tetoflupyrrolimeth, thiencarbazone, thifensulfuron, thiafenacil, torpylate, topramezone, tralcoxidime, triafamone, trialate, triasulfuron, tribenulon (containing tribenulon-methyl), triclopyr, trifloxysulfuron (containing trifloxysulfuron-sodium), 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-butylisoxazole-3-yl)-4-ethoxy-5-hydroxy-3-methyl-imidazolidine-2-one, 3-[2-(3,4-dimethoxyphenyl)-6- [methyl-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-dimethylcyclohexane Xan-1,3-dione, 6-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]-2,2,4,4-tetramethylcyclohexane-1,3,5-trione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-4-carbonyl]-5-ethylcyclohexane-1,3-dione, 2-[2-(3,4-dimethoxyphenyl)-6-methyl-3-oxopyridazine-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)-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-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 ester, e.g., methyl4-amino-3-chloro-5-fluoro-6-(7-fluoro-1H-indole-6-yl)pyridine-2-carboxylic acid) Silate, including prop-2-inyl 4-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, 3-ethylsulfanyl-N-(1,3,4-oxadiazole-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide,3-(isopropylsulfanylmethyl)-N-(5-methyl-1,3,4-oxadiazole-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, 3-(isopropylsulfonylmethyl)-N-(5-methyl-1,3,4-oxadiazole-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, 3-(ethylsulfonylmethyl)-N-(5-methyl-1,3,4-oxadiazole-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide, 3-(ethylsulfonylmethyl)-N-(5-methyl-1,3,4-oxadiazole-2-yl)-5-(trifluoromethyl)-[1,2,4]triazolo[4,3-a]pyridine-8-carboxamide Examples include lysine-8-carboxamide, ethyl-2-[[3-[[3-chloro-5-fluoro-6-[3-methyl-2,6-dioxo-4-(trifluoromethyl)pyrimidine-1-yl]-2-pyridyl]oxy]acetate, 6-chloro-4-(2,7-dimethyl-1-naphthyl)-5-hydroxy-2-methylpyridazin-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.
[0094] The mixing partner of the compound of formula (I) may also be in the form of an ester or salt, as described, for example, in The Pesticide Manual, Sixteenth Edition, British Crop Protection Council, 2012. The mixing ratio of the compound of formula (I) to the mixing partner is preferably 1:100 to 1000:1.
[0095] The mixture can be used advantageously in the above formulations (in this case, “active ingredient” refers to each mixture of the compound of formula I with the mixing partner).
[0096] 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, croquintoset (including croquintosetmexil), cyprosulfamide, dichlormid, fenchlorazole (including fenchlorazole-ethyl), fenchlorim, fluxofenim, flirazole, isoxadifen (including isoxadifen-ethyl), mefenpyr (including mefenpyr-diethyl), metcamifen, and oxavethrinil. Mixtures of the compound of formula (I) with cyprosulfamide, isoxadifen-ethyl, croquintosetmexil, and / or metcamifen are particularly preferred.
[0097] Toxicity mitigating agents for compounds of formula (I) include, for example, The Pesticide Manual, 16 th As described in Edition (BCPC), 2012, it may also be in the form of an ester or a salt. The references to croquintosetmexil 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.
[0098] Preferably, the mixing ratio of the compound toxicity mitigator of formula (I) is 100:1 to 1:10, and particularly 20:1 to 1:1.
[0099] The compound of formula (I) is typically used in the form of a pesticide composition and may be applied simultaneously with or sequentially to the crop area or plant to be treated with further compounds. These further compounds 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, as well as 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 art of formulations, as needed.
[0100] As used herein, the term “habitat” means a field where plants are growing, or where the seeds of cultivated plants are sown, or where the seeds will be sown in the soil. This includes the soil, seeds and seedlings, and established vegetation.
[0101] The term "plant" refers to all physical parts of a plant, including seeds, seedlings, saplings, roots, tubers, stems, stalks, foliage, and fruits.
[0102] The term “plant propagation material” is understood to refer to the reproductive parts of plants, such as seeds, and vegetative bodies, such as cuttings or tubers, like those of potatoes, that can be used for propagation. Examples include seeds (in the strict sense), roots, fruits, tubers, bulbs, rhizomes, and parts of plants. Also included are germinated plants and sprouts that will be transplanted after germination or after emerging from the soil. These sprouts may be protected by complete or partial treatment by immersion before transplanting. Preferably, “plant propagation material” is understood to refer to seeds.
[0103] Pest control agents referred to herein by their common names are publicly known, for example, from “The Pesticide Manual”, 15th Ed., British Crop Protection Council 2009.
[0104] Compounds of formula (I) may be used in their original form or, preferably, in combination with auxiliaries readily available in the field of formulation. For this purpose, they may be readily incorporated in known forms into emulsifying concentrates, coating pastes, directly sprayable or dilutable solutions or suspensions, dilutable emulsions, wettable powders, soluble powders, powders, granular materials and, for example, capsules in polymeric substances. 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 auxiliaries such as stabilizers, defoamers, viscosity modifiers, binders or adhesives, as well as fertilizers, sources of trace elements, or other formulations for obtaining special effects.
[0105] 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.
[0106] The compound of formula (I) is usually used in the form of a composition and may be applied simultaneously with or sequentially to a crop area or plant to be treated with further compounds. These further compounds may be, for example, fertilizers or trace element donors or other preparations that affect plant growth. These may be selective or non-selective herbicides, as well as 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.
[0107] The compound of formula (I) may be the sole active ingredient in a composition, or, where appropriate, may be mixed with one or more additional active ingredients such as pest control agents, fungicides, synergists, herbicides, or plant growth regulators. These additional active ingredients may, in some cases, result in unexpected synergistic activity.
[0108] Typically, a formulation comprises 0.01 to 90% by weight of an active agent, 0 to 20% of an agriculturally acceptable surfactant, and 10 to 99.99% of solid or liquid inert formulations and auxiliary agents, wherein the active agent consists of at least compounds of formula (I), together with components (B) and (C) and optionally other active agents, particularly bactericides or preservatives. The concentrated form of the composition generally contains about 2 to 80%, preferably about 5 to 70% by weight of the active agent. The application form of the formulation may contain, for example, 0.01 to 20% by weight, preferably 0.01 to 5% by weight of the active agent. While commercially available products may preferably be formulated as concentrates, end users will typically utilize diluted formulations.
[0109] The following table shows the individual formulas (I) according to the present invention: [ka] Examples of compounds are given below.
[0110] [Table 1]
[0111] Table A-1 provides 12 compounds of formula (I) A-1.001 to A-1.012, where X is O and R 1 It is methyl, and R 2 It is 3,4-dichlorophenyl, and R 3 is hydrogen, and R 4 and R 5 This is as defined in Table 1.
[0112] Table A-2 provides 12 compounds of formula (I) A-2.001 to A-2.012, where X is O and R 1 It is ethyl, and R 2 It is 3,4-dichlorophenyl, and R 3 is hydrogen, and R 4 and R 5 This is as defined in Table 1.
[0113] Table A-3 provides 12 compounds of formula (I) A-3.001 to A-3.012, where X is O and R 1 It is methyl, and R 2 It is 3,4-dichlorophenyl, and R 3 It is methyl and R 4 and R 5 This is as defined in Table 1.
[0114] Table A-4 provides 12 compounds of formula (I) A-4.001 to A-4.012, where X is O and R 1 It is ethyl, and R2 It is 3,4-dichlorophenyl, and R 3 It is methyl and R 4 and R 5 This is as defined in Table 1.
[0115] Table A-5 provides 12 compounds of formula (I) A-5.001 to A.5.012, where X is NH and R 1 It is methyl, and R 2 It is 3,4-dichlorophenyl, and R 3 is -N(CH3)2 and R 4 and R 5 This is as defined in Table 1.
[0116] Table A-6 provides 12 compounds of formula (I), A-6.001 to A-6.012, where X is NH and R 1 It is ethyl, and R 2 It is 3,4-dichlorophenyl, and R 3 is -N(CH3)2 and R 4 and R 5 This is as defined in Table 1.
[0117] Formulation example
[0118] TIFF0007844472000014.tif54160
[0119] A wettable powder can be obtained by thoroughly mixing the active ingredient with an auxiliary agent and grinding the mixture thoroughly in a suitable mill. This can then be diluted with water to obtain a suspension of the desired concentration.
[0120] TIFF0007844472000015.tif38160
[0121] By thoroughly mixing the active ingredient with an auxiliary agent and then grinding the mixture thoroughly in a suitable mill, a powder can be obtained that can be used directly for seed treatment.
[0122] emulsifiable concentrate Active ingredient [compound of formula (I)] 10% Octylphenol polyethylene glycol ether 3% (4-5 mol of ethylene oxide) Calcium dodecylbenzenesulfonate 3% Castor oil polyglycol ether (35 mol ethylene oxide) 4% Cyclohexanone 30% Xylene mixture 50%
[0123] Any emulsion of the required dilution ratio that can be used for plant protection can be obtained from this concentrate by dilution with water.
[0124] TIFF0007844472000016.tif32160
[0125] A ready-to-use powder is obtained by mixing the active ingredient with a carrier and grinding the mixture in a suitable mill. Such powders can also be used for drying and coating seeds.
[0126] Extruded granules Active ingredient [compound of formula (I)] 15% Sodium lignosulfonate 2% Carboxymethylcellulose 1% Kaolin 82%
[0127] The active ingredients are mixed and ground together with an auxiliary agent, and this mixture is humidified with water. The mixture is then extruded and dried in an airflow.
[0128] Coated granules Active ingredient [compound of formula (I)] 8% Polyethylene glycol (mol. wt. 200) 3% Kaolin 89%
[0129] Finely ground active ingredients are uniformly applied to kaolin humidified with polyethylene glycol in a mixer. This yields coated granules that do not generate dust.
[0130] Suspension concentrate Active ingredient [compound of formula (I)] 40% Propylene glycol 10% Nonylphenol polyethylene glycol ether 6% (15 mol of ethylene oxide) Sodium lignosulfonate 10% Carboxymethylcellulose 1% Silicone oil (in the form of a 75% emulsion in water) 1% water 32%
[0131] Finely ground active ingredients are completely mixed with auxiliary agents to obtain a suspension concentrate, from which suspensions of any desired dilution ratio can be obtained by dilution with water. Such dilutions allow living plants and plant propagation materials to be treated by spraying, pouring, or immersion to protect them from microbial ectoplasty.
[0132] Concentrated flowable formulation for seed treatment Active ingredient [compound of formula (I)] 40% Propylene glycol 5% Copolymer Butanol PO / EO 2% Tristyrenephenol + 10-20 molar EO 2% 1,2-Benzisothiazolin-3-one (in the form of a 20% aqueous solution) 0.5% Monoazo pigment calcium salt 5% Silicone oil (in the form of a 75% emulsion in water) 0.2% Water 45.3%
[0133] Finely ground active ingredients are completely mixed with auxiliary agents to obtain a suspension concentrate, from which suspensions of any desired dilution ratio can be obtained by dilution with water. Such dilutions allow living plants and plant propagation materials to be treated by spraying, pouring, or immersion to protect them from microbial ectoplasty.
[0134] Slow-release capsule suspension Mix 28 parts of the compound of formula (I) with 2 parts of an aromatic solvent and 7 parts of a 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 a defoamer, and 51.6 parts of water until the desired particle size is achieved. Add 2.8 parts of 1,6-diaminohexane in 5.3 parts of water to this emulsion. Stir the mixture until the polymerization reaction is complete. Stabilize the resulting capsule suspension by adding 0.25 parts of a thickener and 3 parts of a dispersant. This capsule suspension formulation contains 28% of the active ingredient. The intermediate capsule diameter is 8 to 15 microns. Apply the resulting formulation as an aqueous suspension to seeds in an apparatus suitable for this purpose. Another aspect of the present invention may be as follows: [1] Equation (I): [C1] JPEG0007844472000017.jpg48170 (In the formula, X is O, NR 6 or S; R 1 C 1 ~C 6 It is alkyl; R 2 is a phenyl or heteroaryl group, wherein the heteroaryl group is a 5 or 6-membered aromatic ring containing 1, 2, 3 or 4 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl group is R 7 It may be arbitrarily substituted with one, two, three, or four bases, which may be the same or different, represented by; R 3 is hydrogen, C 1 ~C 6 Alkyl, N,N-di(C 1~C 3 Alkyl)amino, C 1 ~C 6 Haloalkyl, C 3 ~C 6 Cycloalkyl, C 3 ~C 6 Cycloalkyl C 1 ~C 6 Alkyl, C 1 ~C 6 Alkoxy C 1 ~C 6 Alkyl, C 2 ~C 6 Alkenil, C 2 ~C 6 Alkinyl, phenyl, or phenyl C 1 ~C 3 It is an alkyl group, and the phenyl portion is R 8 It may be arbitrarily substituted with one, two, three, or four bases, which may be the same or different, represented by; R 4 is cyano, C 2 ~C 6 Alkenil, C 2 ~C 6 Alkinyl, C 1 ~C 6 Alkoxy C 2 ~C 6 Alkenil, C 2 ~C 6 Alkenyloxy C 1 ~C 6 Alkyl, C 1 ~C 6 It is an alkylcarbonyl or hydroxycarbonyl; R 5 is halogen, C 1 ~C 4 Alkyl, C 1 ~C 4 Alkoxy, C 1 ~C 4 Haloalkyl or C 1 ~C 4 Alkoxy C 1 ~C 4 It is alkyl; R 6 is hydrogen, C 1 ~C 3 Alkyl or C 1 ~C 3 It is an alkoxy; R 7 is halogen, C 1 ~C 3 Alkyl or C 1 ~C 3 It is an alkoxy; R 8 These are halogen, cyano, and C 1 ~C 3 Alkyl or C 1 ~C 3 (It is an alkoxy) A compound of the same, or its salt or N-oxide. 〔2〕R 1 C 1 ~C 4 The compound described in [1] above, which is alkyl. 〔3〕R 2 is a phenyl or heteroaryl group, wherein the heteroaryl group is a 5 or 6-membered aromatic ring containing 1, 2 or 3 heteroatoms individually selected from N, O and S, and each phenyl and heteroaryl group is R 7 The compound according to [1] or [2], which is represented by and may be optionally substituted with one, two, or three groups, which may be the same or different. 〔4〕R 2 R 7 The compound according to any one of the above [1] to [3], which is a phenyl represented by and which may be optionally substituted with one or two groups that may be the same or different. 〔5〕R 3 is hydrogen, C 1 ~C 6 Alkyl, N,N-di(C 1 ~C 3 Alkyl)amino, C 1 ~C 3 Haloalkyl, C 3 ~C 6 Cycloalkyl, C 3 ~C 6 Cycloalkyl C 1 ~C 3 Alkyl, C 1 ~C 4 Alkoxy C 1 ~C 2 Alkyl, C 2 ~C 3 Alkenil, C 2 ~C 3 Alkinyl, phenyl, or phenyl C 1 ~C 2 It is an alkyl group, and the phenyl portion is R 8 The compound according to any one of the above [1] to [4], which is represented by and may be optionally substituted with one, two, or three groups, which may be the same or different. 〔6〕R 3 is hydrogen, C 1 ~C 4 Alkyl or N,N-di(C 1 ~C 3 A compound according to any one of the above items [1] to [5], which is an alkyl)amino compound. 〔7〕R 4 C 2 ~C 6 Alkenil, C 2 ~C 6 Alkinyl, C 1 ~C 6 A compound according to any one of the above items [1] to [6], which is an alkylcarbonyl or hydroxycarbonyl. 〔8〕R 5 C 1 ~C 4 A compound that is alkyl, as described in any one of the above items [1] to [7]. 〔9〕R 7 The compound is a halogen, methyl, ethyl, methoxy, or ethoxy compound as described in any one of the above [1] to [8].
[10] A compound according to any one of the above items [1] to [9], wherein X is O.
[11] A herbicidal composition comprising a compound described in any one of the above items [1] to
[10] and an agriculturally acceptable compounding agent.
[12] The herbicidal composition according to
[11] , further comprising at least one additional pesticide.
[13] The herbicidal composition according to
[12] , wherein the additional pesticide is a herbicide or a herbicide toxicity mitigator.
[14] A method for controlling the growth of an undesirable plant, comprising the step of applying a compound of formula (I) described in any one of items [1] to
[10] or a herbicidal composition described in any one of items
[11] to
[13] to the undesirable plant or its habitat.
[15] Use of a compound of formula (I) described in any one of the above items [1] to
[10] as a herbicide.
Example
[0135] The following non-limiting examples provide specific synthetic methods for representative compounds of the present invention referred to in Table 2 below.
[0136] List of Abbreviations Å = angstrom, °C = degrees Celsius, d = doublet, DMSO = dimethyl sulfoxide, HPLC = high performance liquid chromatography, LCMS = liquid chromatography mass spectrometry, M = moles, m = multiplet, MHz = megahertz, q = quartet, s = singlet, t = triplet, THF = tetrahydrofuran, TMT = 2,4,6-trimethylmercapto triazine.
[0137] Example 1: Synthesis of methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinyl-pyridine-3-carboxylate (Compound 4.001) Step 1: Synthesis of methyl 3-(3,4-dichlorophenyl)-3-oxo-propanoate [Chemical formula] Sodium hydride (3.17 g, 79.5 mmol, 60% by mass) was added in several portions to a stirred solution of 1-(3,4-dichlorophenyl)ethanone (5.00 g, 26.5 mmol) and dimethyl carbonate (40 mL, 466 mmol) cooled to 0°C under a nitrogen atmosphere. The reaction mixture was warmed to room temperature and stirred for 16 hours. Overnight, the reaction mixture became a solid paste, making stirring impossible. Dimethyl carbonate (10 mL) was added to further deactivate the mixture and create a fluid slurry. The reaction mixture was cooled to 0°C and deactivated by adding water (25 mL) under a nitrogen atmosphere. The reaction mixture was acidified to pH 3 by adding 2 M aqueous hydrochloric acid, and then extracted with ethyl acetate. The organic extract was dried over magnesium sulfate and evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 0-15% ethyl acetate in isohexane as the eluent to obtain methyl 3-(3,4-dichlorophenyl)-3-oxopropanoate (a mixture of tautomers) as a colorless liquid (5.78 g, 23.5 mmol, 89%). Enol: 1 ¹H NMR (400MHz, chloroform) δ = 12.47 (s, 1H), 7.87 (d, 1H), 7.59 (m, 3H), 7.49 (d, 1H), 5.65 (s, 1H), 3.82 (s, 3H) Keto: 1 ¹H NMR (400 MHz, chloroform): δ = 8.03 (d, 1H), 7.77 (m, 1H), 7.58 (d, 2H), 3.97 (s, 2H), 3.76 (s, 3H).
[0138] Step 2: Synthesis of methyl(Z)-3-(3,4-dichlorophenyl)-3-(ethylamino)prop-2-enoate [ka] Acetic acid (1.39 mL, 24.3 mmol) was added dropwise to a stirred solution of ethylamine (2 M in THF) (12.2 mL, 24.34 mmol) at 0°C. The mixture was warmed to room temperature, stirred for 1 hour, and then evaporated under reduced pressure until dry to obtain ammonium ethyl acetate (2.55 g, 24.3 mmol). Ammonium ethyl acetate (2.55 g, 24.3 mmol) was added to a solution of methyl 3-(3,4-dichlorophenyl)-3-oxopropanoate (2.00 g, 8.09 mmol) in toluene (20 mL), followed by the addition of acetic acid (0.46 mL, 8.09 mmol) and a powdered 4 Å molecular sieve. The reaction mixture was heated under reflux for 18 hours. The cooled reaction mixture was diluted with ethyl acetate, filtered, and washed with saturated sodium bicarbonate aqueous solution. The phases were separated, and the aqueous phase was extracted with ethyl acetate (×3). The combined organic extracts were washed with brine, dried over magnesium sulfate, and evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 0-10% ethyl acetate in isohexane as the eluent to obtain methyl(Z)-3-(3,4-dichlorophenyl)-3-(ethylamino)prop-2-enoate as a pale yellow oil (1.54 g, 5.61 mmol, 69%). 1 ¹H NMR (400 MHz, chloroform): δ = 8.37 (br s, 1H), 7.48 (d, 1H), 7.46 (d, 1H), 7.20 (m, 1H), 4.55 (s, 1H), 3.68 (s, 3H), 3.07 (m, 2H), 1.13-1.09 (m, 3H).
[0139] Step 3: Synthesis of methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate [ka] A stirred mixture of methyl(Z)-3-(3,4-dichlorophenyl)-3-(ethylamino)prop-2-enoate (1.50 g, 5.5 mmol) and 2,2,6-trimethyl-1,3-dioxin-4-one (0.82 g, 5.5 mmol) was heated at 120°C for 3 hours under a nitrogen atmosphere. The cooled reaction mixture was evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 0-10% methanol in dichloromethane as the eluent to obtain methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate as an off-white solid (0.95 g, 2.78 mmol, 51%). 1 ¹H NMR (400 MHz, chloroform): δ = 7.56 (d, 1H), 7.50 (d, 1H), 7.24 (m, 1H), 6.41 (s, 1H), 3.72 (q, 2H), 3.55 (s, 3H), 2.42 (s, 3H), 1.13 (t, 3H).
[0140] Step 4: Synthesis of methyl 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxopyridine-3-carboxylate [ka] A solution of methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (5.60 g, 16.5 mmol) in acetonitrile (56.0 mL) was mixed with 1-iodopyrrolidine-2,5-dione (3.70 g, 16.5 mmol), followed by 2,2,2-trifluoroacetic acid (0.564 g, 0.381 mL, 4.94 mmol) at room temperature under a nitrogen atmosphere. The reaction mixture was heated at 80 °C for 36 hours, then stirred at room temperature for 48 hours. The cooled reaction mixture was deactivated by adding saturated sodium bicarbonate aqueous solution (200 mL) and extracted with dichloromethane (×3). The combined organic extracts were washed with saturated sodium thiosulfate solution, then brine, dried over magnesium sulfate, filtered, and evaporated under reduced pressure. The crude residue was purified by flash chromatography in silica gel using a gradient of 0-100% ethyl acetate in cyclohexane as the eluent to obtain methyl 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxopyridine-3-carboxylate as a white solid (5.33 g, 11.4 mmol, 70%). 1 ¹H NMR (400 MHz, chloroform): δ = 7.57 (d, 1H), 7.49 (d, 1H), 7.23 (m, 1H), 3.89 (q, 2H), 3.57 (s, 3H), 2.88 (s, 3H), 1.17 (t, 3H).
[0141] Step 5: Synthesis of methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinylpyridine-3-carboxylate [ka] A mixture of methyl 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxopyridine-3-carboxylate (0.270 g, 0.58 mmol) and dichlorobis(triphenylphosphine)palladium(II) (0.021 g, 0.029 mmol) under a nitrogen atmosphere was to which degassed toluene (4 mL) and then tributyl(vinyl) stanan (0.551 g, 1.74 mmol) were added. The mixture was heated at 140°C for 0.75 hours under microwave irradiation. The reaction mixture was evaporated under reduced pressure until dry, and purified by flash chromatography in silica gel using a gradient of 0-100% ethyl acetate in cyclohexane as the eluent to obtain methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinylpyridine-3-carboxylate (0.155 g, 0.423 mmol, 73%). 1 ¹H NMR (400 MHz, chloroform): δ = 7.55 (d, 1H), 7.50 (d, 1H), 7.24 (m, 1H), 6.63 (m, 1H), 5.99 (m, 1H), 5.62 (m, 1H), 3.80 (q, 2H), 3.57 (s, 3H), 2.54 (s, 3H), 1.15 (t, 3H).
[0142] Example 2: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-5-ethynyl-6-methyl-4-oxopyridine-3-carboxylic acid (Compound 2.005) Step 1: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxopyridine-3-carboxylic acid [ka] A solution of methyl 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxo-pyridine-3-carboxylate (0.329 g, 0.706 mmol) in methanol (4 mL) and water (2 mL) was added with lithium hydroxide monohydrate (0.059 g, 1.41 mmol). The reaction mixture was heated at 80 °C for 6 hours. The reaction mixture was evaporated under reduced pressure. The residue was diluted with water (15 mL) and extracted with dichloromethane. The aqueous phase was acidified to pH 3 by the addition of 2M aqueous hydrochloric acid, and then further extracted with dichloromethane (2×10 mL). The organic extracts were dried and then evaporated under reduced pressure until dry to give 2-(3,4-dichlorophenyl)-1-ethyl-5-iodo-6-methyl-4-oxo-pyridine-3-carboxylic acid (0.311 g, 0.69 mmol, 98%) as a white solid. 1 H NMR (400 MHz, chloroform) δ = 7.60 (d, 1H), 7.34 (d, 1H), 7.10 (m, 1H), 4.01 (q, 2H), 2.99 (s, 3H), 1.23 (t, 3H).
[0143] Step 2: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-(2-trimethylsilylethynyl)pyridine-3-carboxylic acid
Chemical formula
[0144] Step 3: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-5-ethynyl-6-methyl-4-oxopyridine-3-carboxylic acid [ka] Potassium carbonate (0.016 g, 0.115 mmol) was added at room temperature to a solution of 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-(2-trimethylsilylethynyl)pyridine-3-carboxylic acid (0.022 g, 0.052 mmol) in methanol (0.52 mL). The reaction mixture was stirred at room temperature for 18 hours. The reaction mixture was diluted with ethyl acetate (20 mL) and aqueous hydrochloric acid (2 M, 20 mL). The aqueous phase was extracted with ethyl acetate (×2). The combined organic extracts were washed with water, dried over magnesium sulfate, and evaporated under reduced pressure until dry. The crude residue was purified by mass spectrometry HPLC to obtain 2-(3,4-dichlorophenyl)-1-ethyl-5-ethynyl-6-methyl-4-oxopyridine-3-carboxylic acid (0.017 g, 0.048 mmol, 92%) as a white solid. 1 ¹H NMR (400 MHz, acetonitrile-d3): δ = 7.69 (d, 1H), 7.51 (d, 1H), 7.27 (m, 1H), 3.99 (s, 1H), 3.89 (q, 2H), 2.80 (s, 3H), 1.12 (t, 3H).
[0145] Example 3: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinylpyridine-3-carboxylic acid (Compound 2.001) Step 1: Synthesis of methyl 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate [ka] N-bromosuccinimide (0.26 g, 1.47 mmol) was added in several portions to a stirred solution of methyl 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (0.500 g, 1.47 mmol) in acetonitrile (5.0 mL, 95.7 mmol) at room temperature. The reaction mixture was stirred at room temperature until complete consumption of the starting material was indicated by LC-MS. The reaction mixture was deactivated by the addition of saturated sodium bicarbonate aqueous solution (30 mL), and the aqueous phase was extracted with dichloromethane (3 × 15 mL). The combined organic extracts were passed through a phase separator and evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 50-100% ethyl acetate in isohexane as the eluent to obtain methyl 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate as a colorless solid (0.602 g, 1.44 mmol, 98%). 1 ¹H NMR (400 MHz, chloroform): δ = 7.57 (d, 1H), 7.49 (d, 1H), 7.23 (m, 1H), 3.85 (q, 2H), 3.57 (s, 3H), 2.74 (s, 3H), 1.17 (t, 3H).
[0146] Step 2: Synthesis of 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid [ka] A solution of methyl 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (2.50 g, 5.97 mmol) in methanol (15 mL) was mixed with a solution of lithium hydroxide monohydrate (1.00 g, 23.9 mmol) in water (6 mL). The resulting solution was heated at 80°C for 2 hours. The cooled reaction mixture was acidified to pH 1-2 by adding concentrated hydrochloric acid. The precipitated solid was collected by filtration, washed with cold water, and dried to obtain 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid as a white powder (1.84 g, 4.54 mmol, 76%). 1 ¹H NMR (400 MHz, methanol-d4): δ = 7.68 (d, 1H), 7.64 (d, 1H), 7.33 (m, 1H), 4.03 (q, 2H), 2.89 (s, 3H), 1.19 (t, 3H).
[0147] Step 3: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinylpyridine-3-carboxylic acid [ka] A solution of 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid (0.300 g, 0.741 mmol) in toluene (5 mL) was added to dichlorobis(triphenylphosphine)palladium(II) under a nitrogen atmosphere. The mixture was degassed under a nitrogen atmosphere for 5 minutes, and then tributyl(vinyl)stanan (0.704 g, 2.22 mmol) was added. The reaction mixture was heated at 120°C for 0.75 hours under microwave irradiation. The cooled reaction mixture was filtered through diatomaceous earth and evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 5-100% ethyl acetate in cyclohexane as the eluent to obtain 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxo-5-vinylpyridine-3-carboxylic acid (0.099 g, 0.28 mmol, 38%). 1 ¹H NMR (400MHz, chloroform): δ = 7.63-7.56 (m,1H), 7.39-7.33 (m,1H), 7.15-7.07 (m,1H), 6.73-6.58 (m,1H), 5.83-5.80 (m,1H), 5.79-5.71 (m,1H), 3.95-3.87 (m,2H), 2.68-2.61 (m,3H), 1.26-1.15 (m,3H).
[0148] Example 4: Synthesis of 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid (compound 2.008) Step 1: Synthesis of methyl 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate [ka] A solution of methyl 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (0.462 g, 1.10 mmol) in toluene (15 mL) was added to dichlorobis(triphenylphosphine)palladium(II) (0.039 g, 0.055 mmol). Tributyl(1-ethoxyvinyl)stanan (1.194 g, 3.31 mmol) was added, and the reaction mixture was heated at 60 °C for 1.5 hours, then at 125 °C for 5 hours. Further dichlorobis(triphenylphosphine)palladium(II) (0.039 g, 0.055 mmol) and tributyl(1-ethoxyvinyl)stanan (1.194 g, 3.31 mmol) were added, and the reaction mixture was heated for 18 hours. The cooled reaction mixture was evaporated under reduced pressure until dry. The crude residue was purified by flash chromatography in silica gel using a gradient of 5-100% ethyl acetate in isohexane as the eluent to obtain methyl 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (0.062 g, 0.16 mmol, 15%). 1¹H NMR (400MHz, chloroform): δ = 7.65-7.64 (m,1H), 7.58-7.56 (m,1H), 7.31-7.30 (m,1H), 4.18-4.06 (m,2H), 3.60-3.49 (m,3H), 2.63-2.53 (m,3H), 2.43-2.37 (m,3H), 1.29-1.22 (m,3H).
[0149] Step 2: Synthesis of 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid [ka] Similar to 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid, methyl 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylate (0.062 g, 0.16 mmol) and lithium hydroxide hydrate (0.027 g, 0.65 mmol) were used, and the mixture was stirred at room temperature for 1.5 hours, followed by heating under reflux for 2 hours to prepare 5-acetyl-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid (0.034 g, 0.091 mmol, 56%). 1 ¹H NMR (400MHz, chloroform): δ = 7.64-7.56 (m,1H), 7.38-7.31 (m,1H), 7.14-7.06 (m,1H), 3.94-3.84 (m,2H), 2.66-2.58 (m,3H), 2.55-2.42 (m,3H), 1.29-1.13 (m,3H).
[0150] Example 5: Synthesis of 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3,5-dicarboxylic acid (Compound 2.010) [ka] A suspension of 5-bromo-2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3-carboxylic acid (0.100 g, 0.247 mmol) in anhydrous tetrahydrofuran (0.50 mL), cooled under a nitrogen atmosphere (-20°C), was added dropwise to a solution of isopropylmagnesium lithium chloride complex (1.3 M, 0.40 mL, 0.518 mmol in THF) under a nitrogen atmosphere and at 20°C. The reaction mixture was stirred for 0.25 hours, then warmed to -10°C and stirred for 0.3 hours. The reaction mixture was cooled again to -20°C, and isopropylmagnesium lithium chloride complex solution (1.3 M, 0.34 mL, 0.442 mmol in THF) was added. The reaction mixture was stirred at -10°C for 0.5 hours. Dry ice pellets were sublimated into the reaction mixture via a cannula over 0.5 hours with stirring, and then two smaller dry ice pellets were added directly to the reaction mixture. The reaction mixture was stirred at room temperature for 0.5 hours. The reaction mixture was cooled to 0°C and deactivated by adding saturated ammonium chloride aqueous solution (5 mL). The pH of the aqueous phase was adjusted to pH 3 by adding aqueous hydrochloric acid (2 M). The aqueous phase was extracted with dichloromethane (×3). The combined organic extracts were dried and evaporated under reduced pressure until dry. The crude residue was purified by mass spectrometry HPLC to obtain 2-(3,4-dichlorophenyl)-1-ethyl-6-methyl-4-oxopyridine-3,5-dicarboxylic acid (0.019 g, 0.050 mmol, 20%) as a white solid. 1 H NMR(400MHz,DMSO-d6)δ=7.84(d,1H),7.82(d,1H),7.48(m,1H),3.88(q,2H),2.74(s,3H),1.10(t,3H).
[0151] [Table 2]
[0152] Biological examples Seeds of various test species (Amaranthus retoflexus (AMARE), Solanum nigrum (SOLNI), Setaria faberi (SETFA), Lolium perenne (LOLPE), Echinochloa crus-galli (ECHCG), and Ipomoea hederacea (IPOHE)) were sown in standard soil in pots. After growing them for 8 days under controlled conditions in a greenhouse (24°C / 16°C, day / night; 14 hours of light; 65% humidity), these plants were sprayed with an aqueous spray 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 RN9005-64-5). Unless otherwise specified, the compound shall be applied at a rate of 1000 g / h. The test plants shall then be grown in a greenhouse under controlled greenhouse conditions (24°C / 16°C, day / night; 14 hours of light; 65% humidity) with watering twice daily. After 13 days, the test shall be evaluated for the percentage of damage to the plants. Biological activity shall be indicated in the table below on a 5-point scale (5 = 81-100%; 4 = 61-80%; 3 = 41-60%; 2 = 21-40%; 1 = 0-20%).
[0153] [Table 3-1]
[0154] [Table 3-2]
Claims
1. Equation (I): 【Chemistry 1】 (In the formula, X is either O or S; R 1 C 1 ~C 6 It is alkyl; R 2 It is phenyl, and the phenyl portion is R 7 The following may be arbitrarily substituted with one, two, three, or four bases, which may be the same or different: R 3 is hydrogen, C 1 to C 6 alkyl, N,N - di(C 1 to C 3 alkyl)amino, C 1 to C 6 haloalkyl, C 3 to C 6 cycloalkyl, C 3 to C 6 cycloalkyl C 1 to C 6 alkyl, C 1 to C 6 alkoxy C 1 to C 6 alkyl, C 2 to C 6 alkenyl, C 2 to C 6 alkynyl, phenyl or phenyl C 1 to C 3 alkyl, and the phenyl moiety may be optionally substituted with 1, 2, 3 or 4 groups, which may be the same or different, represented by R 8 ; R 4 C 2 ~C 6 Alkenil, C 2 ~C 6 Alkinyl, C 1 ~C 6 Alkoxy C 2 ~C 6 Alkenil, C 2 ~C 6 Alkenyloxy C 1 ~C 6 Alkyl, C 1 ~C 6 It is an alkylcarbonyl or hydroxycarbonyl; R 5 is halogen, C 1 ~C 4 Alkyl, C 1 ~C 4 Alkoxy, C 1 ~C 4 Haloalkyl or C 1 ~C 4 Alkoxy C 1 ~C 4 It is alkyl; R 6 is hydrogen, C 1 ~C 3 Alkyl or C 1 ~C 3 It is an alkoxy; R 7 is halogen, C 1 ~C 3 Alkyl or C 1 ~C 3 It is an alkoxy; R 8 These are halogen, cyano, and C 1 ~C 3 Alkyl or C 1 ~C 3 (It is an alkoxy) A compound of the same, or its salt or N-oxide.
2. R 1 C 1 ~C 4 The compound according to claim 1, wherein it is alkyl.
3. R 2 It contains phenyl, and the phenyl portion is R 7 The compound according to claim 1 or 2, which may be optionally substituted with one, two, or three groups, which may be the same or different, represented by .
4. R 2 R 7 The compound according to any one of claims 1 to 3, which is a phenyl that is optionally substituted with one or two groups that may be the same or different, represented by .
5. R 3 is hydrogen, C 1 to C 6 alkyl, N,N - di(C 1 to C 3 alkyl)amino, C 1 to C 3 haloalkyl, C 3 to C 6 cycloalkyl, C 3 to C 6 cycloalkyl C 1 to C 3 alkyl, C 1 to C 4 alkoxy C 1 to C 2 alkyl, C 2 to C 3 alkenyl, C 2 to C 3 alkynyl, phenyl or phenyl C 1 to C 2 alkyl, and the phenyl moiety is optionally substituted with one, two or three groups, which may be the same or different, represented by R 8 The compound according to any one of claims 1 to 4.
6. R 3 is hydrogen, C 1 ~C 4 Alkyl or N,N-di(C) 1 ~C 3 A compound according to any one of claims 1 to 5, wherein it is an alkylamino compound.
7. R 4 C 2 ~C 6 Alkenil, C 2 ~C 6 Alkinyl, C 1 ~C 6 The compound according to any one of claims 1 to 6, wherein it is an alkylcarbonyl or a hydroxycarbonyl.
8. R 5 C 1 ~C 4 A compound according to any one of claims 1 to 7, wherein it is alkyl.
9. R 7 The compound according to any one of claims 1 to 8, wherein is a halogen, methyl, ethyl, methoxy, or ethoxy.
10. The compound according to any one of claims 1 to 9, wherein X is O.
11. A herbicidal composition comprising a compound according to any one of claims 1 to 10 and an agriculturally acceptable compounding agent.
12. The herbicidal composition according to claim 11, further comprising at least one additional pesticide.
13. The herbicidal composition according to claim 12, wherein the additional pesticide is a herbicide or a herbicide toxicity mitigator.
14. 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 10 or a herbicidal composition according to any one of claims 11 to 13 to the undesirable plants or their habitat.
15. Use of a compound of formula (I) according to any one of claims 1 to 10 as a herbicide.
Citation Information
Patent Citations
Aryl-4-oxonicotinate
JP1982114573A
Induction of haploid of angiospermae
JP1984205922A
Herbicidal composition
JP1987192305A
5-cyanopyridine-3-carboxamide compound and plant growth retardant
JP1988014770A
Pyridine-3-carboxylic acid phenyl ester derivative and plant growth retarder
JP1988060967A