3-phenylisoxazoline-5-carboxamide compound, and preparation method, herbicidal composition, and use thereof

By developing 3-phenylisoxazoline-5-carboxamide compounds, the shortcomings of existing herbicides in terms of weed control performance and selectivity have been overcome, achieving efficient control of weeds and safety for crops, making them suitable for a variety of economic crops and genetically modified crops.

WO2025223566A1PCT designated stage Publication Date: 2025-10-30QINGDAO KINGAGROOT CHEM COMPOUNDS CO LTD
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Patent Information

Application Number
PCT/CN2025/091373
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-07-08
Filing Date
2025-04-26
Publication Date
2025-10-30

AI Technical Summary

Technical Problem

Existing herbicides are not entirely satisfactory in terms of weed control performance and crop selectivity against harmful plants, and there are issues related to market expansion, weed resistance, pesticide lifespan, and economics. Therefore, there is a need to develop efficient, safe, and economical herbicides with different modes of action.

Method used

Develop 3-phenylisooxazoline-5-carboxamide compounds and their preparation methods. Through the design of compounds with specific structures, achieve excellent herbicidal activity against weeds while maintaining safety for crops.

Benefits of technology

It achieves efficient control of a variety of weeds, especially herbicides against monocotyledonous and dicotyledonous harmful plants, and does not harm economic crops such as wheat, barley, and corn. It is suitable for genetically modified crops and ornamental plants, and has selective weed control effects.

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Abstract

Provided are a 3-phenylisoxazoline-5-carboxamide compound, and a preparation method, a herbicidal composition, and a use thereof, belonging to the technical field of pesticides. The compound is represented by general formula I, where X is hydrogen, alkyl, alkenyl, etc.; Y1 and Y2 are independently selected from hydrogen, halogen, alkyl, alkenyl, alkynyl, etc.; Z1 and Z2 are independently selected from hydrogen, alkyl, alkenyl, alkynyl, etc.; Q1, Q2, and Q3 independently represent hydrogen, halogen, alkyl, or haloalkyl; R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, alkyl, alkenyl, alkynyl, etc. The compound has excellent herbicidal activity and crop safety.
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Description

3-Phenylozoline-5-carboxamide compounds, their preparation methods, herbicidal compositions and applications Technical Field

[0001] This invention belongs to the field of pesticide technology, specifically relating to a 3-phenylisooxazoline-5-carboxamide compound, its preparation method, herbicidal composition, and application. Background Technology

[0002] Weed control is a crucial aspect of achieving efficient agriculture. Although a wide variety of herbicides are available on the market, the weed-control performance and crop selectivity of these known compounds are not entirely satisfactory. Furthermore, due to the expanding market, weed resistance, herbicide lifespan, economic considerations, and increasing environmental awareness, scientists need to continuously research and develop new, efficient, safe, economical herbicides with different modes of action. Summary of the Invention

[0003] This invention provides a 3-phenylisooxazoline-5-carboxamide compound, its preparation method, herbicidal composition, and application. The compound exhibits excellent herbicidal activity and crop safety.

[0004] The technical solution adopted in this invention is as follows:

[0005] A 3-phenylisoxazoline-5-carboxamide compound or a salt thereof, as shown in Formula I:

[0006] Wherein, X is hydrogen, alkyl, alkenyl, alkynyl, haloalkyl, haloalkenyl, haloalkynyl, cycloalkyl, cycloalkylalkyl, heterocyclic, heterocyclic alkyl, aryl or arylalkyl;

[0007] Y1 and Y2 are independently selected from hydrogen, halogen, alkyl, alkenyl, alkynyl, haloalkyl, haloalkenyl, haloalkynyl, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -alkylene-OR, -alkylene-(CO)OR, -alkylene-SR, -alkylene-(SO)R, -alkylene-(SO2)R, -alkylene-N(R)2, -alkylene-(CO)N(R)2, aryl, heterocyclic, arylalkyl or heterocyclic alkyl; or Y1 and Y2 together form -(CH2)n;

[0008] n represents 3, 4, or 5;

[0009] Z1 and Z2 are independently selected from hydrogen, alkyl, alkenyl, alkynyl, and alkyl, alkenyl, alkenyl, cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2 or cyano groups, respectively, and are substituted with at least one of the following groups: halogen, cycloalkyl, cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-alkylene-ON=C(R)2, -O-alkylene-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together form an unsubstituted or substituted heterocyclic group with a nitrogen atom at the 1-position;

[0010] Q1, Q2, and Q3 each independently represent hydrogen, halogen, alkyl, or haloalkyl;

[0011] R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, alkyl, alkenyl, alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -alkylene-OR, -alkylene-SR, -alkylene-SOR, -alkylene-(SO2)R, -alkylene-N(R)2, -alkylene-(CO)R, -alkylene-(CO)N(R)2, cyano, nitro, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, haloalkyl, haloalkenyl, haloalkynyl, aryl, heterocyclic, arylalkyl, or heterocyclic alkyl.

[0012] The aforementioned cycloalkyl, cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, alkyl, alkenyl, ynyl, cycloalkyl, cycloalkylalkyl, haloalkyl, haloalkenyl, haloynyl, -OR, -SR, -alkylene-OR, -alkylene-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2;

[0013] R independently represents hydrogen, alkyl, alkenyl, alkynyl, alkyl, alkenyl or alkynyl group substituted with at least one group selected from halogen, hydroxyl, alkoxy, alkylthio, alkyl sulfoxide, alkyl sulfonyl, cyano or alkoxy carbonyl, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, halocycloalkyl, halocycloalkylalkyl, halocycloalkenyl, halocycloalkenylalkyl, aryl, arylalkyl, heterocyclic, heterocyclic alkyl, or aryl, arylalkyl, heterocyclic or heterocyclic alkyl group substituted with at least one group selected from halogen, cyano, nitro, alkyl, haloalkyl, alkoxy carbonyl, alkylthio, alkyl sulfonyl, alkoxy or haloalkoxy.

[0014] In one specific embodiment, X is hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 alkynyl, halo-C1-C8 alkyl, halo-C2-C8 alkenyl, halo-C2-C8 alkynyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl-C1-C8 alkyl, heterocyclic, heterocyclic-C1-C8 alkyl, aryl or aryl-C1-C8 alkyl;

[0015] Y1 and Y2 are independently selected from hydrogen, halogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, halogenated C1-C8 alkyl, halogenated C2-C8 alkenyl, halogenated C2-C8 ynyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -(C1- -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-(CO)OR, -(C1-C8 alkylene)-SR, -(C1-C8 alkylene)-(SO)R, -(C1-C8 alkylene)-(SO2)R, -(C1-C8 alkylene)-N(R)2, -(C1-C8 alkylene)-(CO)N(R)2, aryl, heterocyclic, aryl C1-C8 alkyl or heterocyclic C1-C8 alkyl; or Y1 and Y2 together form -(CH2)n;

[0016] n represents 3, 4, or 5;

[0017] Z1 and Z2 are independently selected from hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, and C1-C8 alkyl, C2-C8 alkenyl, or C2-C8 ynyl groups substituted with at least one group selected from halogen, C3-C8 cycloalkyl, C3-C8 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2, or cyano, respectively. C3-C8 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-(C1-C8 alkylene)-ON=C(R)2, -O-(C1-C8 alkylene)-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together to form Among them, the It is either unsubstituted or substituted with at least one group selected from cyano, halogen, N(R)2, NR(NO2), oxo, C1-C8 alkyl or C1-C8 alkoxycarbonyl;

[0018] Q1, Q2, and Q3 independently represent hydrogen, halogen, C1-C8 alkyl, or halo-C1-C8 alkyl, respectively;

[0019] R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-SR, -(C1-C8 alkylene)-SOR, and -(C1-C8 alkylene)-(SO2) )R, -(C1-C8 alkylene)-N(R)2, -(C1-C8 alkylene)-(CO)R, -(C1-C8 alkylene)-(CO)N(R)2, cyano, nitro, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, halo-C1-C8 alkyl, halo-C2-C8 alkenyl, halo-C2-C8 alkynyl, aryl, heterocyclic, aryl C1-C8 alkyl or heterocyclic C1-C8 alkyl;

[0020] The aforementioned C3-C8 cycloalkyl, C3-C8 cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, C3-C8 cycloalkyl, C3-C8 cycloalkylC1-C8 alkyl, halogenated C1-C8 alkyl, halogenated C2-C8 alkenyl, halogenated C2-C8 ynyl, -OR, -SR, -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2;

[0021] R independently represents hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, C1-C8 alkyl, C2-C8 alkenyl, or C2-C8 ynyl substituted with at least one group selected from halogen, hydroxyl, C1-C8 alkoxy, C1-C8 alkylthio, C1-C8 alkyl sulfoxide, C1-C8 alkyl sulfonyl, cyano, or C1-C8 alkoxycarbonyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, halogenated C3-C8 cyclo ... The aryl, aryl C1-C8 alkyl, heterocyclic, or heterocyclic C1-C8 alkyl group is substituted with at least one group selected from halogen, cyano, nitro, C1-C8 alkyl, halo-C1-C8 alkyl, C1-C8 alkoxycarbonyl, C1-C8 alkylthio, C1-C8 alkylsulfonyl, C1-C8 alkoxy, or halo-C1-C8 alkoxy.

[0022] In another specific embodiment, X is hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, halo-C1-C6 alkyl, halo-C2-C6 alkenyl, halo-C2-C6 alkynyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl-C1-C6 alkyl, heterocyclic, heterocyclic-C1-C6 alkyl, aryl or aryl-C1-C6 alkyl;

[0023] Y1 and Y2 are independently selected from hydrogen, halogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 ynyl, halogenated C1-C6 alkyl, halogenated C2-C6 alkenyl, halogenated C2-C6 ynyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -(C1- -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-(CO)OR, -(C1-C6 alkylene)-SR, -(C1-C6 alkylene)-(SO)R, -(C1-C6 alkylene)-(SO2)R, -(C1-C6 alkylene)-N(R)2, -(C1-C6 alkylene)-(CO)N(R)2, aryl, heterocyclic, aryl C1-C6 alkyl or heterocyclic C1-C6 alkyl; or Y1 and Y2 together form -(CH2)n;

[0024] n represents 3, 4, or 5;

[0025] Z1 and Z2 are each independently selected from hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 ynyl, and C1-C6 alkyl, C2-C6 alkenyl, or C2-C6 ynyl groups substituted with at least one group selected from halogen, C3-C6 cycloalkyl, C3-C6 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2, or cyano, respectively. C3-C6 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-(C1-C6 alkylene)-ON=C(R)2, -O-(C1-C6 alkylene)-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together to form Among them, the It is either unsubstituted or substituted with at least one group selected from cyano, halogen, N(R)2, NR(NO2), oxo, C1-C6 alkyl or C1-C6 alkoxycarbonyl;

[0026] Q1, Q2, and Q3 independently represent hydrogen, halogen, C1-C6 alkyl, or halogenated C1-C6 alkyl, respectively;

[0027] R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-SR, -(C1-C6 alkylene)-SOR, and -(C1-C6 alkylene)-(SO2) -(C1-C6 alkylene)-N(R)2, -(C1-C6 alkylene)-(CO)R, -(C1-C6 alkylene)-(CO)N(R)2, cyano, nitro, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, halo-C1-C6 alkyl, halo-C2-C6 alkenyl, halo-C2-C6 alkynyl, aryl, heterocyclic, aryl C1-C6 alkyl or heterocyclic C1-C6 alkyl;

[0028] The aforementioned C3-C6 cycloalkyl, C3-C6 cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, C3-C6 cycloalkyl, C3-C6 cycloalkylC1-C6 alkyl, halogenated C1-C6 alkyl, halogenated C2-C6 alkenyl, halogenated C2-C6 alkynyl, -OR, -SR, -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2;

[0029] R independently represents hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, C1-C6 alkyl, C2-C6 alkenyl, or C2-C6 alkynyl substituted with at least one group selected from halogen, hydroxyl, C1-C6 alkoxy, C1-C6 alkylthio, C1-C6 alkylsulfonyl, C1-C6 alkylsulfonyl, cyano, or C1-C6 alkoxycarbonyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, halogenated C3-C6 cyclo ... The aryl, aryl C1-C6 alkyl, heterocyclic, or heterocyclic C1-C6 alkyl group is substituted with at least one group selected from halogen, cyano, nitro, C1-C6 alkyl, halo-C1-C6 alkyl, C1-C6 alkoxycarbonyl, C1-C6 alkylthio, C1-C6 alkylsulfonyl, C1-C6 alkoxy, or halo-C1-C6 alkoxy.

[0030] In another specific embodiment, Z1 and Z2 are each independently selected from hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 alkynyl, halo-C1-C8 alkyl, halo-C2-C8 alkenyl, halo-C2-C8 alkynyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, heterocyclic, heterocyclic C1-C8 alkyl, aryl, aryl C1-C8 alkyl, cyano C1-C8 alkyl, -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-SR, -OR, -SR, -(SO)R, -(SO2)R, -N(R)2 or -SO2N(R)2; or -NZ1Z2 are formed together. Among them, the It is either unsubstituted or substituted with at least one group selected from oxo, C1-C8 alkyl or C1-C8 alkoxycarbonyl.

[0031] In another specific embodiment, Z1 and Z2 are each independently selected from hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, halo-C1-C6 alkyl, halo-C2-C6 alkenyl, halo-C2-C6 alkynyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl-C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl-C1-C6 alkyl, heterocyclic, heterocyclic-C1-C6 alkyl, aryl, aryl-C1-C6 alkyl, cyano-C1-C6 alkyl, -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-SR, -OR, -SR, -(SO)R, -(SO2)R, -N(R)2 or -SO2N(R)2; or -NZ1Z2 are formed together. Among them, the It is either unsubstituted or substituted with at least one group selected from oxo, C1-C6 alkyl or C1-C6 alkoxycarbonyl.

[0032] In another specific embodiment, compounds in general formula I where X is hydrogen, Y1 is hydrogen, and Z1 is -OR are excluded.

[0033] In the definitions of compounds shown in the above general formulas and in all the following structural formulas, the technical terms used, whether alone or in compound terms, represent the following substituents: alkyl groups having more than two carbon atoms can be straight-chain or branched. For example, in the compound term "-alkylene-OR", alkylene can be -CH2-, -CH2CH2-, -CH(CH3)-, -C(CH3)2-, etc. Alkyl groups are, for example, C1 alkyl-methyl; C2 alkyl-ethyl; C3 alkyl-propyl such as n-propyl or isopropyl; C4 alkyl-butyl such as n-butyl, isobutyl, tert-butyl, or 2-butyl; C5 alkyl-pentyl such as n-pentyl; C6 alkyl-hexyl such as n-hexyl, isohexyl, and 1,3-dimethylbutyl. Similarly, alkenyl groups are, for example, vinyl, allyl, 1-methylprop-2-en-1-yl, 2-methylprop-2-en-1-yl, but-2-en-1-yl, but-3-en-1-yl, 1-methylbut-3-en-1-yl, and 1-methylbut-2-en-1-yl. Alkynyl groups are, for example, ethynyl, propynyl, but-2-yn-1-yl, but-3-yn-1-yl, and 1-methylbut-3-yn-1-yl. Multiple bonds can be in any position in each unsaturated group. Cycloalkyl groups are carbocyclic saturated ring systems having, for example, three to six carbon atoms, such as cyclopropyl, cyclobutyl, cyclopentyl, or cyclohexyl. Similarly, cycloalkenyl groups are monocyclic alkenyl groups having, for example, three to six carbon ring members, such as cyclopropenyl, cyclobutenyl, cyclopentenyl, and cyclohexenyl, wherein double bonds can be in any position. Halogens are fluorine, chlorine, bromine, or iodine.

[0034] Unless otherwise specified, the term "aryl" in this invention includes, but is not limited to, phenyl, naphthyl, and... The "heterocyclic group" includes, but is not limited to, saturated or unsaturated non-aromatic cyclic groups. And, including but not limited to, heteroaryl groups, i.e., aromatic cyclic groups containing, for example, 3 to 6 ring atoms and optionally fused with benzo[a] rings, wherein 1 to 4 (e.g., 1, 2, 3, or 4) heteroatoms are selected from oxygen, nitrogen, and sulfur, for example

[0035] If a group is substituted by another group, this should be understood to mean that the group is substituted by one or more identical or different groups selected from those groups mentioned. Furthermore, the identical or different substitution characters contained in the identical or different substituents are chosen independently and may be identical or different. This also applies to ring systems formed from different atoms and units. Meanwhile, the scope of the claims excludes compounds that are chemically unstable under standard conditions, as known to those skilled in the art.

[0036] Furthermore, unless otherwise specified, the phrase "replaced by at least one group" in this invention refers to being replaced by, for example, 1, 2, 3, 4, or 5 groups; groups without specific attachment positions (including heterocyclic groups, aryl groups, etc.) can be attached at any position, including positions attached to C or N; if it is substituted, the substituent can also be substituted at any position, as long as it conforms to the rules of chemical bond attachment. For example, a heteroaryl group substituted by one methyl group. Can represent wait.

[0037] When Y1 and Y2 are different, the present invention also provides a 3-phenylisoxazoline-5-carboxamide compound or a salt thereof having a chiral center as shown in Formula I':

[0038] The definitions of substituents X, Y1, Y2, Z1, Z2, Q1, Q2, Q3, R1, R2, R3, R4, and R5 are as described above;

[0039] Based on the content of stereoisomers with R and S configurations at position 2, it has a stereochemical purity of 60-100% (S), preferably 70-100% (S), more preferably 80-100% (S), further preferably 90-100% (S), and even more preferably 95-100% (S); or it has a stereochemical purity of 60-100% (R), preferably 70-100% (R), more preferably 80-100% (R), further preferably 90-100% (R), and even more preferably 95-100% (R);

[0040] And / or, based on the carbon atom at position 5 being the chiral center, and based on the content of stereoisomers having R and S configurations at that position, it has a stereochemical purity of 60-100% (S), preferably 70-100% (S), more preferably 80-100% (S), further preferably 90-100% (S), and even more preferably 95-100% (S); or it has a stereochemical purity of 60-100% (R), preferably 70-100% (R), more preferably 80-100% (R), further preferably 90-100% (R), and even more preferably 95-100% (R).

[0041] "Stereochemical purity" refers to the percentage of the amount of the stereoisomer relative to the total amount of stereoisomers that generate chiral centers.

[0042] In this invention, the stereochemical configurations at positions 5 and 2 of Formula I' are determined according to the Cahn-Ingold-Prelog system; however, the subject matter of this invention also relates to all stereoisomers at other positions included in Formulas I and I', and mixtures thereof. Such Formula I and I' compounds contain, for example, one or more additional asymmetric carbon atoms or other double bonds not specifically described in Formulas I and I'. It should be understood that this invention includes pure isomers and mixtures thereof enriched to varying degrees with pure isomers, wherein at labeled position 5 and / or labeled position 2, or in the mixture, the compound or a compound with the same chemical structure has the configuration at the labeled position, or is present in a proportion where the compound having the configuration is predominantly present (at least 60% of the configuration), while other asymmetric carbon atoms may be present in racemic form or may be resolved to varying degrees. Possible stereoisomers defined by specific spatial forms, such as enantiomers, diastereomers, Z- and E-isomers, are included in Formula I and Formula I', provided that the stereochemical configuration conditions at the marked positions are met. They can be obtained from mixtures of stereoisomers by conventional methods or prepared by stereoselective reactions in conjunction with stereochemically pure initial substances.

[0043] If various functional groups are present, the present invention also includes any ketone and enol tautomer forms, mixtures thereof, and salts thereof.

[0044] The method for preparing the 3-phenylisoxazoline-5-carboxamide compound includes the following steps:

[0045] (1) The compound represented by general formula II is reacted with the compound represented by general formula III or its salt (such as hydrochloride) to prepare the compound represented by general formula I. The reaction equation is as follows:

[0046] Or (2) react the compound represented by general formula IV with the compound represented by general formula V or its salt to obtain the compound represented by general formula I, and the reaction equation is as follows:

[0047] Or (3) react the compound represented by general formula VI with the compound represented by general formula VII to obtain the compound represented by general formula I, and the reaction equation is as follows:

[0048] Where M and M1 represent OH or halogens independently, Hal represents halogens, and the substituents R1, R2, R3, R4, R5, X, Y1, Y2, Q1, Q2, Q3, Z1 and Z2 are defined as described above.

[0049] In one embodiment, reactions (1) and (2) are carried out in the presence of a solvent. In another embodiment, a base and / or a condensing agent are added during the reaction.

[0050] In another specific embodiment, the base is selected from at least one of inorganic bases (such as K2CO3, Na2CO3, Cs2CO3, NaHCO3, KHCO3, KF, CsF, KI, NaI, K3PO4, K2HPO4, LiOH, NaOH, KOH, NaH, KH, etc.) or organic bases (such as DMAP, pyrazole, triethylamine, DIEA / DIPEA, potassium trimethylsilanol, AcOK, AcONa, MeONa, EtONa, t-BuONa, etc.).

[0051] In another specific embodiment, the condensing agent is selected from at least one of Py-BOP, Py-AOP, EDCI, HOBT, DCC, HBTU, or HATU.

[0052] In another specific embodiment, the solvent is selected from at least one of DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate.

[0053] In one specific embodiment, the reaction (3) is carried out in the presence of a base and a solvent;

[0054] In another specific embodiment, the base is selected from at least one of inorganic bases (such as K2CO3, Na2CO3, Cs2CO3, NaHCO3, KHCO3, KF, CsF, KI, NaI, K3PO4, K2HPO4, LiOH, NaOH, KOH, NaH, KH, etc.) or organic bases (such as DMAP, pyrazole, triethylamine, DIEA / DIPEA, potassium trimethylsilanol, AcOK, AcONa, MeONa, EtONa, t-BuONa, etc.).

[0055] In another specific embodiment, the solvent is selected from at least one of methanol, ethanol, isopropanol, DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate.

[0056] In one specific embodiment, when M is OH, the compound represented by general formula II is prepared by hydrolysis of the compound represented by general formula IV, and the reaction equation is as follows:

[0057] Wherein, W is a C1-C6 alkyl or phenyl group.

[0058] In one specific embodiment, the reaction is carried out in the presence of a base and a solvent.

[0059] In one specific embodiment, the base is selected from at least one of inorganic bases (such as K2CO3, Na2CO3, Cs2CO3, NaHCO3, KHCO3, KF, CsF, KI, NaI, K3PO4, K2HPO4, LiOH, NaOH, KOH, NaH, KH, etc.) or organic bases (such as DMAP, pyrazole, triethylamine, DIEA, potassium trimethylsilanol, AcOK, AcONa, MeONa, EtONa, t-BuONa, etc.).

[0060] In one embodiment, the solvent is selected from at least one of DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate.

[0061] In addition, the compounds described in this invention can be prepared by referring to the methods shown in CN201280017007.3, etc.

[0062] An intermediate, as described in Formula II, Formula III, Formula V or Formula VI above.

[0063] A herbicide composition comprising at least one of the 3-phenylisoxazoline-5-carboxamide compounds in an effective amount for weed control; preferably, it further comprises a formulation adjuvant; more preferably, it further comprises other active ingredients.

[0064] A method for controlling weeds, comprising applying a herbicidal effective amount of at least one of the 3-phenylisooxazoline-5-carboxamide compounds or the herbicide composition thereof to plants or weedy areas.

[0065] The use of at least one of the 3-phenylisooxazoline-5-carboxamide compounds or the herbicide composition thereof in weed control, preferably, the use of the 3-phenylisooxazoline-5-carboxamide compounds in controlling weeds in useful crops, said useful crops being transgenic crops or crops treated with genome editing technology.

[0066] For many economically important monocotyledonous and dicotyledonous pests, the compounds of Formula I of this invention exhibit outstanding herbicidal activity. The active substances of this invention are also effective against perennial weeds that grow from rhizomes, stems, or other perennial organs and are difficult to control. In this regard, it is generally not important whether the substance is used before sowing, before germination, or after germination. Representative examples of monocotyledonous and dicotyledonous weed populations that can be controlled by the compounds of this invention are specifically mentioned, without limiting the specific species. Examples of weed species to which the active substances are effective include monocotyledons: annuals of *Oat*, *Rye*, *Grass*, *Alopecurus*, *Fararis*, *Barnyardgrass*, *Digitaria*, *Setaria*, and *Sedge*, and perennials of *Agrostis*, *Bermudagrass*, *Imperata*, and *Sorghum*, as well as perennials of *Sedge*.

[0067] Regarding dicotyledonous weed species, its effects can be extended to annual species such as *Galium aparine*, *Viola*, *Veronica*, *Sesamum indicum*, *Stellaria*, *Amaranthus*, *Sinapis*, *Ipomoea*, *Heliotropium*, *Chaenomeles*, and *Abutilon*, and perennial weeds such as *Convolvulus*, *Thistle*, *Rumex*, and *Artemisia*. The active substances of this invention effectively control harmful plants such as barnyard grass, *Sagittaria*, *Alisma*, *Eupatorium*, *Sedum*, and *Sedge* under the undetermined condition of rice sowing. If the compounds of this invention are applied to the soil surface before germination, weed seedlings can be completely prevented before they emerge, or growth can be stopped when the weeds develop cotyledons, eventually leading to their complete death after three to four weeks. The compounds of this invention exhibit particularly excellent activity against the following plants: *Apira*, *Sesamum indicum*, *Polygonum cuspidatum*, *Stellaria*, *Veronica ivy*, *Veronica arabiculata*, *Viola tricolor* and *Amaranthus*, *Galium aparine*, and *Kochia scoparia*.

[0068] While the compounds of this invention exhibit excellent herbicidal activity against both monocot and dicot weeds, they cause little to no damage to important economic crops such as wheat, barley, rye, rice, corn, sugar beets, cotton, and soybeans. They are particularly compatible with cereal crops, such as wheat, barley, and corn, especially wheat. Therefore, the compounds of this invention are highly suitable for the selective control of unwanted plants in agricultural or ornamental crops.

[0069] Due to their herbicidal properties, these active substances can be used to control harmful plants in known or future genetically engineered plant cultivation. Transgenic plants typically possess superior traits, such as resistance to specific insecticides, particularly specific herbicides, and resistance to plant diseases or pathogenic microorganisms, such as specific insects or fungi, bacteria, or viruses. Other specific traits relate to conditions such as quantity, quality, storage stability, composition, and special components of the product. Thus, it is known that transgenic plant products have increased starch content or improved starch quality or different fatty acid compositions.

[0070] The compounds of Formula I of the present invention, or salts thereof, are preferably used in the cultivation of economically important genetically modified crops and ornamental plants, such as cereals, including wheat, barley, rye, oats, millet, rice, cassava, and corn, or in the cultivation of sugar beets, cotton, soybeans, rapeseed, potatoes, tomatoes, peas, and other vegetable plants. The compounds of Formula I are preferably used as herbicides for the cultivation of useful plants that are resistant or have been genetically engineered to resist the toxic effects of the herbicides.

[0071] Traditional methods for breeding plants with improved morphology compared to known plants include, for example, conventional mating methods and mutant breeding. In other words, new plants with improved traits can be obtained using genetic engineering methods (see, for example, EP-0221044A, EP-0131624A). Several methods have been described, for example:

[0072] - To improve starch synthesis in plants, genetic engineering is used to modify crop plants (e.g., WO 92 / 11376, WO 92 / 14827, WO 91 / 19806);

[0073] - Transgenic crop plants resistant to specific herbicides, such as glufosinate-methyl (e.g., EP-0242236A, EP-0242246A), glyphosate-based herbicides (WO 92 / 00377), or sulfonylurea herbicides (EP-0257993A, US-5013659A);

[0074] - For example, genetically modified cotton plants can produce Bt toxins, which can defend against certain pests (EP-0142924A, EP-0193259A).

[0075] - A genetically modified crop plant with improved fatty acid composition (WO91 / 13972).

[0076] Many molecular biotechnologies for preparing transgenic plants with improved traits are known (see, for example, Sambrook et al., 1989, Molecular Amplification, Laboratory Manual, 2nd ed., Cold Spring Harbor Laboratory, Cold Spring Harbor, New York; or Winnacker, “Gene and Cloning,” VCH Weinheim, 2nd ed., 1996; or Christou, “Trends in Plant Science,” 1 (1996) 423-431). To perform genetic engineering operations, nucleic acid molecules may be introduced into plasmids, resulting in mutations or sequence alterations through DNA sequence recombination. Using standard methods, such as exchanging substrates, removing portions of the sequence, or adding natural or synthetic sequences, can be employed. To link DNA fragments together, it is possible to attach conjugates or linkers to the fragments.

[0077] Plant cells containing reduced-activity gene products can be prepared by methods such as expressing at least one appropriate antisense RNA or sense RNA to achieve co-inhibition, or by expressing at least one appropriately constructed ribozyme that specifically cleaves the transcript of the aforementioned gene product.

[0078] For this purpose, it is possible to use a DNA molecule containing the entire coding sequence of the gene product, including any possible flanking sequences, or a DNA molecule containing only a portion of the coding sequence, which must be long enough to achieve an antisense effect in the cell. Alternatively, a sequence that is highly homologous to but not identical to the coding sequence of the gene product can also be used.

[0079] When nucleic acid molecules are expressed in plants, the synthesized proteins can be localized in any desired plant cell compartment. However, to localize in a specific compartment, it is possible, for example, to link the coding region to a DNA sequence to ensure localization at a specific location. These sequences are known to those skilled in the art (see, for example, Braun et al., EMBO J.11 (1992) 3219-3227; Wolter et al., Proc. Natl. Acad. Sci. USA 65 (1988), 846-850; Sonnewald et al., Plant J.1 (1991), 95-106).

[0080] Using known techniques, transgenic plant cells can be recombined into the entire plant. Transgenic plants can be any desired plant variety, i.e., monocots and dicots. In this way, it is possible to obtain transgenic plants with improved traits by overexpressing, inhibiting or suppressing homologous (=natural) genes or gene sequences, or by expressing heterologous (=external) genes or gene sequences.

[0081] When the active substances of this invention are used on genetically modified crops, in addition to the inhibitory effect on harmful plants observed in other crops, they often exhibit specific effects on the corresponding genetically modified crops. For example, they can improve or expand the range of weed control, improve the application rate, preferably combine the herbicide resistance of the genetically modified crop with the performance of the herbicide, and affect the growth and yield of the genetically modified crop. Therefore, this invention also provides the use of the compounds as herbicides to control harmful plants in genetically modified crop plants.

[0082] Furthermore, the compounds of this invention can significantly regulate crop growth. By modulating plant metabolism, these compounds can be used to directionally control plant components and promote harvesting, for example, by causing plant drying and dwarfing. They are also suitable for regulating and inhibiting unwanted plant growth without disrupting crop growth. Inhibiting plant growth plays a crucial role in many monocot and dicot crops because it can reduce or completely prevent lodging.

[0083] The compounds of the present invention can be applied using common formulations, including wettable powders, concentrated emulsions, sprayable solutions, powders, or granules. Thus, the present invention also provides herbicide compositions comprising compounds of formula I. Compounds of formula I can be formulated in various ways depending on typical biological and / or chemical physical parameters. Examples of suitable formulation choices include: wettable powders (WP), water-soluble powders (SP), water-soluble concentrates, concentrated emulsions (EC), emulsions such as oil dispersed in water and water dispersed in oil (EW), sprayable solutions, suspension concentrates (SC), dispersible oil suspensions (OD), suspensions diluted with oil or water, solutions miscible with oil, powders (DP), capsule suspensions (CS), seeddressing compositions, granules for broadcasting and soil application, spray granules, coating granules and absorbent granules, water-dispersible granules (WG), water-soluble granules (SG), ULV (ultra-low volume) formulations, microcapsules, and wax products. These individual formulation types are known and described in the following literature, for example, Winnacker-Küchler, “Chemische Techonologie” [Chemical Processes], Vol. 7, C. Hauser Verlag Munich, 4th ed. 1986; Wade van Valkenburg, “Pesticide Formulations”, Marcel Dekker, NY, 1973; K. Martens, “Spray Drying” Handbook, 3rd ed. 1979, G. Goodwin Ltd. London.

[0084] Necessary formulation adjuvants, such as inert substances, surfactants, solvents, and other additives, are also known and described in the following documents, for example, Watkins's "Handbook of Powder Diluents, Insecticides, and Carriers," 2nd ed., Darland, Caldwell, NJ; Hv01phen's "Introduction to Clay Colloid Chemistry," 2nd ed., J. Wiley and Sons, NY; C. Marsden's "Solvent Guide," 2nd ed., Interscience, NY 1963; McCutcheon's "Annual Report on Detergents and Emulsifiers," MC Publishing, Ridgewood, NJ; Sisley and Wood, "Encyclopedia of Surfactants," Chemical Publishing, NY 1964; of [Ethylene oxide adduct surfactants], Wiss. Verlagagesell. Stuttgart 1976; Winnacker-Küchler, “Chemische Technologie” [Chemical Processes], Vol. 7, C. Hauser Verlag Munich, 4th edition 1986.

[0085] Wettable powders are uniformly dispersible in water and, in addition to the active ingredient, include diluents or inert substances, ionic and nonionic surfactants (wetting agents, dispersants), such as polyethoxyalkylphenols, polyethoxy fatty alcohols, polyoxyethyl aliphatic amines, fatty alcohol polyethylene glycol ether sulfates, alkyl sulfonates, alkyl phenyl sulfonates, sodium lignosulfonate, sodium 2,2'-dinaphthylmethane-6,6'-disulfonate, sodium dibutylnaphthalenesulfonate, or sodium oleoylmethyl taurate. To prepare wettable powders, the active ingredient of the herbicide is finely ground, for example using common equipment such as hammer mills, fan mills, and jet mills, while adjuvants are mixed in simultaneously or sequentially.

[0086] Concentrated emulsions are prepared by dissolving active ingredients in an organic solvent, such as butanol, cyclohexanone, dimethylformamide, xylene, or a mixture of higher-boiling aromatic compounds or hydrocarbons, and then adding one or more ionic and / or nonionic surfactants (emulsifiers). Examples of emulsifiers that can be used include, for example, calcium alkylaryl sulfonate of calcium dodecylbenzenesulfonate, or nonionic emulsifiers such as fatty acid polyethylene glycol esters, alkyl aromatic polyethylene glycol ethers, fatty alcohol polyethylene glycol ethers, propylene oxide-ethylene oxide condensation products, alkyl polyethers, sorbitan esters such as sorbitan fatty acid esters, or polyethylene oxide sorbitan esters such as polyethylene oxide sorbitan fatty acid esters.

[0087] The active substance and finely ground solid material are ground to obtain a powder. The solid material may be talc, natural clay such as kaolin, bentonite, and pyrophyllite, or diatomaceous earth. A water- or oil-based suspension may be prepared, for example, by wet grinding using a commercially available glass bead mill, with or without the addition of a surfactant of the other formulation type mentioned above.

[0088] Emulsions, such as oil-in-water (EW) emulsions, can be prepared using an aqueous organic solvent, a stirrer, a colloid mill, and / or a static mixer, and if necessary, by adding a surfactant of another formulation type as described above.

[0089] Granules can be prepared by spraying the active material onto an adsorbent and granulating it using an inert material, or by concentrating the active material onto the surface of a carrier such as sand or kaolinite and granulating it using a binder such as polyvinyl alcohol, sodium polyacrylate, or mineral oil. Suitable active materials can be granulated using methods for preparing fertilizer granules, and fertilizers can be mixed in if necessary. Aqueous suspension granules can be prepared using conventional methods such as spray-drying, fluidized bed granulation, disc granulation, mixing using a high-speed mixer, and extrusion without solid inert material.

[0090] For methods of preparing granules using grinding discs, fluidized beds, extruders, and spraying, see the following processes, for example, “Spray Drying Handbook,” 3rd edition, 1979, G. Goodwin Ltd., London; J.E. Browning, “Agglomeration,” Chemicals and Engineering, 1967, 147ff; “Perry’s Chemical Engineer’s Handbook,” 5th edition, McGraw-Hill, New York, 1973, 8–57. For information on formulations of crop protection products, see, for example, G.K. C. Lingman, “Weed Control as a Science,” John Wiley and Sons, New York, 1961, 181–96; and JD. F. Greyer, SAEvans, “Weed Control Handbook,” 5th edition, Blackwell Scientific Rublications, Oxford University Press, 1968, 101–103.

[0091] Agricultural chemical formulations typically contain 0.1% to 99%, particularly 0.1% to 95%, of active ingredient Formula I by weight. The concentration of active ingredient in wettable powders is, for example, from about 10% to 99% by weight, with the usual formulation components constituting the remainder to 100% by weight. The concentration of active ingredient in concentrated emulsions can be from about 1% to 90% by weight, preferably 5% to 80%. Powder formulations contain 1% to 30% active ingredient by weight, typically preferably 5% to 20% by weight; however, sprayable solutions contain about 0.05% to 80% by weight, preferably 2% to 50% by weight. The content of active ingredient in aqueous suspension granules depends primarily on whether the active ingredient is liquid or solid, and on the adjuvants, fillers, etc., used during granulation. The content of active ingredient in aqueous suspension granules is, for example, between 1% and 95% by weight, preferably between 10% and 80% by weight.

[0092] The formulation of the active substance may also include thickeners, wetting agents, dispersants, emulsifiers, penetrants, preservatives, antifreeze agents, solvents, fillers, carriers, colorants, defoamers, evaporation inhibitors, and pH and viscosity adjusters that are commonly used in all cases.

[0093] Based on these formulations, they may also be mixed with other insecticidal active substances such as insecticides, acaricides, herbicides and fungicides, or with safeners, fertilizers and / or plant growth regulators. The mixing method may be pre-mixed or bottled.

[0094] Suitable active substances that can be mixed with the active substances of the present invention in compound formulations or tank-mixed formulations include, for example, known substances in the "World Encyclopedia of New Pesticide Varieties Technology", China Agricultural Science and Technology Press, 2010.9 and the literature cited herein. For example, the following herbicidal active substances can be mixed with mixtures of Formula I (Note: the name of the compound, either the common name according to the International Organization for Standardization (ISO) or the chemical name, with a code where appropriate): acetochlor, butachlor, metolachlor, isopropachlor, isopropachlor, succinyl-metolachlor, propachlor, chlorpyrifos, chlorpyrifos, naphthalenepropanoyl-methyl, R-L-naphthalenepropanoyl-methyl, propachlor, benzylthiamethoxam, bisbenzylthiamethoxam, pyrifluquinazon, chlorpyrifos, flubutyroxychlor, brobutyroxychlor, dimethoate, high-efficiency dimethoate, ethoxybenzyl-methyl, flubutyroxychlor, methoxythiamethoxam, pyrifluquinazon, isoxachlor, high-efficiency methylparaben, high-efficiency methylparaben. Acetaminophen, clethodim, butyrazosulfuron, cyprochloraz, flusulfuron, heptanosulfuron, isobutyrazosulfuron, propyzamide, terbutyrazosulfuron, methylparaben, metolachlor, methylcyclohexane, chlorpyrifos, propyzamide, pendimethalin, carbaryl, succinylmethrin, tricyclomethrin, butyrazosulfuron, succinylmethrin, bensulfuron-methyl, naphthylmethrin, acetochlor, naphthylmethrin, thiamethoxam, pyrimethanil, bensulfuron-methyl, chlorpyrifos, butyrazosulfuron, flupyrazole, atrazine, simazine, promethazine, cypermethrin, cypermethrin, atrazine, pyrazosulfuron, isopropazine, flumethrin, terbutyraz, terbutyraz, triazine flumethrin, cyprochlorazine, glyphosate, chlorpyrifos Phosphatidylcholine, Simazine, Ziziphus jujuba, Dichlorvos, Isoamyl acetate, Cyprodinil, Atrazine, Butyraz, Butyraz, Terbutaline, Methoxypropazine, Cypermethrin, Herbicides, Clonazine, Atrazine, Methoxypropazine, Glycyrrhizin, Cyanobacterium trioxide, Indaziflam, Greensulfuron, Methsulfuron-methyl, Benzylsulfuron, Chlorpyrifos, Bensulfuron-methyl, Thisulfuron-methyl, Pyrimisulfuron-methyl, Methiosulfuron-methyl, Sodium formamide sulfuron, Ethersulfuron-methyl, Etherbensulfuron-methyl, Methsulfuron-methyl, Nicosulfuron-methyl, Aminosulfuron-methyl, Acylsulfuron-methyl, Ethoxysulfuron-methyl, Cyprosulfuron-methyl, Sulfadiazine, Tetraazolidinylsulfuron, Pyrimisulfuron, Monosulfuron-methyl, Fluazolidinylsulfuron, Flupyrimisulfuron, Flupyrimisulfuron, Epimethrin Sulfuric acid, pyrazosulfuron, flusulfuron, propanil, trifluprosulfuron, sulfonylsulfuron, trifluralin, flusulfanil, trifluralin, mesosulfuron sodium salt, flupyrsulfuron, thiosulfuron, pyrimethanil, propyrisulfuron, pyrazosulfuron, trifluralin, flusulfanilamide, quizalofop-p-ethyl, ethoxysulfuron, glufosinate, bensulfuron, chlorfluazuron ethyl, methylfluzoxystrobin, trifluralin, methoxysulfuron, trifluralin, flufenoxuron, flufenoxuron, oxysulfuron, metolachlor, sulfadiazine, flufenoxuron, oxysulfuron, metolachlor, flufenoxuron, flufenoxuron, halosafen, chlormequat chloride, isoproturon, linuron, diuronSaprolegnia, fluroxypyr, bensulfuron, methyl bensulfuron, bensulfuron, sulfothiamethoxam, isoxaflutole, terbutaline, clodinafop-methyl, chlorobromosulfuron, methyl methoxysulfuron, methyl methoxysulfuron, bromosulfuron, methoxysulfuron, chlorpyrifos, metribuzin, cycloroxysulfuron, felsulfuron, flusulfuron, glufosinate, fensulfuron, cyproconazole, thiamethoxam, fensulfuron, chlorpyrifos, methamidophos, thiamethoxam, trimethourea, oxazolium, Monisouron, Anisuron, Methiuron, Chloreturon, tetraflufenozide, betaine, betaine-ethyl, betaine, sulfonamide, terbutaline, fensulfuron-methyl, fensulfuron-methyl, fensulfuron-methyl, fensulfuron-methyl, chlorpyrifos, carboxazo le, Chlorprocarb, Fenasulam, BCPC, CPPC, Carbasulam, Butyrazosulfan, Clethodim, Metrazine, Clethodim, Wild Grass, Permethrin, Clethodim, Barnyardgrass, Cypermethrin, Oat Grass, Dimethoate, Ethylmethazine, Methiobencarb, Clethodim, Benzoate, Methiobencarb, Thionylmethazine, Methiobencarb, 2,4-D Butyl Acetate, 2,4-D Sodium Chloride, 2,4-D Isooctyl Acetate, 2,4-D Sodium Salt, 2,4-D Dimethylamine Salt, 2,4-D Chlorethyl Thiate, 2,4-D Chloride, 2,4-D Propionic Acid, High 2,4-D Propionate, 2,4-D Butyric Acid, 2,4-D Chlorpropionic Acid, 2,4-D Propionate 2,4,5-chlorobutyric acid, 2,4,5-propylpropionic acid, 2,4,5-propylbutyric acid, 2,4,5-chloromethacin, MCPA, dicamba, quizalofop-p-ethyl, cyhalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, cyhalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl, quizalofop-p-ethyl In, proponitrophenol, glyphosate, barnyardphos, glufosinate, methyl parathion, glyphosate, piperazine, diammonium phosphate, dimethoate, phosmet, fenpropathrin, fenpropathrin, fenpropathrin, dimethoate, fenpropathrin, imidacloprid, imidacloprid acetic acid, imidacloprid quinolinic acid, methoxymethylene, methoxymethylene ammonium salt, imidacloprid acetic acid, imidacloprid, clopyralid, clopyralid isooctyl ester, dichloropyridine acid, aminopyridine acid, trichloropyridine acid, fluthion, haloxypyridine, trichloropyridine phenol, thiamethoxam, flupyridine, clopyralid, flupyridine hydrazone, trichloropyridine butoxyethyl ester, cliodinate, clethodim, thiamethoxam, quizalofop-p-ethyl, cyclobenzanone, butenazine, oxadiazine, pyranazine, buthidazole, cyproconazoleAmetridione, Amibuzin, bromobenzonitrile, octanoyl bromobenzonitrile, octanoyl iodobenzonitrile, iodobenzonitrile, diphenylacetonitrile, bispyribac-sodium, hydroxybispyribac-sodium, Iodobonil, pyrimisulfuron-methyl, diflubenzuron, penoxsulam, sulfadiazine, chlorpyrifos-sulfuron-methyl, dichlorvos-sulfuron-methyl, flumethrin, bispyribac-sodium, pyrimisulfuron-methyl, pyrimisulfuron-methyl, pyrimisulfuron-methyl, bispyribac-sodium, nicosulfuron-methyl, sulfadiazine, Tembotrione, Tefuryltrione, Bicyclopyrone, Ketodpiradox, isoxasulfuron-methyl, isoxasulfuron-methyl, Fenoxasulfone, M ethiozolin, isopropalazine, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, bensulfuron, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, flumetsulam, pyrazosulfuron, pyrazosulfuron, flumethrin, pyrazosulfuron, flupropacil, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, flupropacil ... Herbicides, fluazinam, methyl methacrylate, tetrazolium chlorpyrifos, flupyridamole, chlorpyrifos, bromochlor, dimethomorph, pyrazosulfuron, cyprodinil, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, pyrazosulfuron, cyprodinil, pyrazosulfuron, bentazon, pyrazosulfuron, oxadiazon, cyprodinil, isoxadiazon, cyprodinil, isopropyl methoxysulfuron, cyprodinil, indicarb, sodium chlorate Herbicides, trichloroacetic acid, monochloroacetic acid, hexachloroacetone, tetrafluoropropionic acid, forage grass, bromophenol oxime, triazole sulfonate, methomyl, furazolidone, furazolidone, ethoxysulfuron, pyrimethanil, chlorpyrifos, flurfluthrin, barnyardgrass, acrolein, bensulfuron-methyl, metribuzin, oat ester, thiamethoxam, styracil, hydroxylone, methoxybenzone, pyrimethanil, chlorpyrifos, trichloropropionic acid, Al orac, Diethamquat, Etnipromid, Iprymidam, Ipfencarbazone, Thiencarbazone-methyl, Pyrimisulfan, Chlorflurazole, Tripropindan, Sulglycapin, methylsulfuron, Cambendichlor, Cyproterinic acid, Thiamethoxam, cypermethrin, cypermethrin, cypermethrin, cypermethrin, cypermethrin, cypermethrin, cypermethrin, pyrazole cypermethrin, furazolidone, oxadiazon, bis(oxazolyl)acrylic acid, dichloropropenylamine, fluorochloropyridinium, DOW fluorochloropyridinium, UBH-509D489,LS 82-556, KPP-300, NC-324, NC-330, KH-218, DPX-N8189, SC-0744, DOWCO535, D K-8910, V-53482, PP-600, MBH-001, KIH-9201, ET-751, KIH-6127 and KIH-2023. ,

[0095] When used, commercially available formulations are diluted in a common manner if necessary, such as with water for wettable powders, concentrated emulsions, suspensions, and granules suspended in water. Powders, granules for soil application, or solutions for broadcasting and spraying generally do not require further dilution with an inert substance before use. The required dosage of Formula I compound varies with external conditions, such as temperature, humidity, and the nature of the herbicide used. It can vary considerably, for example, from 0.001 to 1.0 kg ai / ha, or more active ingredient, but is preferably between 0.005 and 750 g ai / ha, particularly between 0.005 and 250 g ai / ha. Detailed Implementation

[0096] The following examples are for illustrative purposes only and should not be construed as limiting the invention in any way. The scope of protection of this invention is defined by the claims.

[0097] Given the economic efficiency and diversity of the compounds, we preferentially synthesized a number of compounds, some of which are listed in Table 1 below. Specific compound structures and corresponding compound information are shown in Tables 1-2. The compounds in Table 1 are only for better illustration of the present invention and do not limit the invention. Those skilled in the art should not interpret this as limiting the scope of the above-mentioned subject matter of the invention to the following compounds.

[0098] Table 1. Compound Structures

[0099] Table 2 Compounds 1 H NMR

[0100] Table AF is constructed in the same way as Table 1 above, except that the general formula I is replaced with the general formula I' which has a chiral center. In Table A, the entries under the "Serial Number" column heading are described as 1(2R)-115(2R), 118(2R)-126(2R), 128(2R)-150(2R), 152(2R)-280(2R), and 283(2R)-289(2R). For example, 1(2R) corresponds to the compound in Table 1 where position 2 is the R configuration. In Table B, the entries under the "Serial Number" column heading are described as 1(2S)-115(2S), 118(2S)-126(2S), 128(2S)-150(2S), 152(2S)-280(2S), and 283(2S)-289(2S). For example, 1(2S) corresponds to the compound in Table 1 where position 2 is the S configuration. In Table C, the entries under the "Serial Number" column heading are listed sequentially as 1(5S)-289(5S). For example, 1(5S) corresponds to the compound in Table 1 where position 5 is the S configuration. In Table D, the entries under the "Serial Number" column heading are listed sequentially as 1(5R)-289(5R). For example, 1(5R) corresponds to the compound in Table 1 where position 5 is the R configuration. In Table EH, the entries under the "Serial Number" column heading are described as follows: 1(2S,5S)-115(2S,5S), 118(2S,5S)-126(2S,5S), 128(2S,5S)-150(2S,5S), 152(2S,5S)-280(2S,5S), 283(2S,5S)-289(2S,5S), 1(2S,5R)-115(2S,5R), 118(2S,5R)-126(2S,5R), 128(2S,5R)-150(2S,5R), 152(2S,5R)-280(2S,5R), 283(2S,5R)-289(2S,5S), 1(2S,5R)-115(2S,5R), 118(2S,5R)-126(2S,5R), 128(2S,5R)-150(2S,5R), 152(2S,5R)-280(2S,5R), 283(2S,5R)-289(2S,5R). )-289(2S,5R), 1(2R,5S)-115(2R,5S), 118(2R,5S)-126(2R,5S), 128(2R,5S)-150(2R,5S), 152(2R,5S)-280(2R,5S), 283(2R,5S)-289( 2R,5S), 1(2R,5R)-115(2R,5R), 118(2R,5R)-126(2R,5R), 128(2R,5R)-150(2R,5R), 152(2R,5R)-280(2R,5R), 283(2R,5R)-289(2R,5R). For example, 1(2S,5S) corresponds to the compound in Table 1 where both positions 2 and 5 are S configurations, and 1(2R,5S) corresponds to the compound in Table 1 where position 2 is R configuration and position 5 is S configuration.

[0101] Several methods for preparing the compounds of the present invention are described in detail in the following schemes and examples. The raw materials can be commercially available or prepared by methods known in the literature or as detailed in the description. Those skilled in the art will understand that other synthetic routes can also be used to synthesize the compounds of the present invention. Although specific raw materials and conditions in the synthetic routes have been described below, they can be easily replaced with other similar raw materials and conditions. Such variations or modifications to the preparation methods of the present invention, such as various isomers of the compounds, are all included within the scope of the present invention. Furthermore, the preparation methods described below can be further modified according to the disclosure of the present invention using conventional chemical methods well known to those skilled in the art. For example, protecting appropriate groups during the reaction process, etc.

[0102] The following method examples are provided to further illustrate the preparation methods of the present invention. The specific substances, types, and conditions used are intended to further explain the invention and are not intended to limit its reasonable scope. The reagents used in the synthetic compounds shown in the table below are either commercially available or can be easily prepared by those skilled in the art.

[0103] Examples of representative compounds are given below. The synthesis methods of other compounds are similar and will not be described in detail here.

[0104] 1. Synthesis of compound 14 (2S, 5S)

[0105] (1) Compound 14-2 (66.5 g, 0.38 mol) was dissolved in 300 mL of THF. Under nitrogen protection, n-BuLi (150 mL, 2.5 M, 0.38 mol) was added dropwise at -78 °C. After reacting at -78 °C for 1 hour, a THF solution of compound 14-1 (85 g, 0.31 mol) was added dropwise. After the addition was complete, the reaction was carried out at -78 °C for 1 hour. The reaction product was monitored as the main peak by LCMS. The reaction solution was poured into a saturated ammonium chloride solution, extracted with ethyl acetate, and the organic phase was washed with water and saturated brine. The solution was dried and concentrated. The residue was purified by column chromatography (EA:PE = 1:3) to obtain compound 14-3 (40 g, yield 31%, de = 90%, white solid).

[0106] (2) Compounds 14-3 (650 mg, 1.5 mmol), 14-4 (314 mg, 2.3 mmol), triethylamine (303 mg, 3.0 mmol), and 4-dimethylaminopyridine (98 mg, 0.8 mmol) were dissolved in 5 mL of dichloromethane and reacted at 45 °C for 12 h. The reaction was monitored by LCMS until complete. The reaction solution was diluted with dichloromethane, the organic phase was washed with water and saturated brine, dried and concentrated, and the residue was purified by column chromatography (EA:PE = 1:5) to give compound 14-5 (400 mg, 75%, white solid).

[0107] (3) Compound 14-5 (400 mg, 1.2 mmol) was dissolved in 3 mL of tetrahydrofuran, and lithium hydroxide (43 mg, 1.8 mmol) was dissolved in 1 mL of water. The lithium hydroxide aqueous solution was added dropwise to the starting solution at room temperature, and the reaction was allowed to proceed for 1 h. The reaction was monitored by LCMS until complete. The reaction solution was diluted with water, the aqueous phase was extracted with ethyl acetate, the pH of the aqueous phase was adjusted to 4-5, the aqueous phase was extracted with ethyl acetate, the organic phase was washed with saturated brine, dried and concentrated to give compound 14-6 (350 mg, 91%, white solid).

[0108] (4) Compounds 14-6 (350 mg, 1.1 mmol), 14-7 (480 mg, 4.4 mmol), triethylamine (222 mg, 2.2 mmol), HOBT (223 mg, 1.6 mmol), and EDCI (307 mg, 1.6 mmol) were dissolved in 5 mL of dichloromethane and stirred overnight at room temperature. The reaction was monitored by LCMS until complete. The reaction solution was diluted with dichloromethane, the organic phase was washed with water and saturated brine, dried and concentrated, and the residue was purified by column chromatography (EA:PE = 1:3) to give compound 14 (2S, 5S) (98 mg, yield 21%, pale yellow oil).

[0109] 2. Synthesis of compound 94 (2S, 5S)

[0110] (1) Dissolve 94-1 (253 mg, 1 mmol, 1 eq) in 20 mL of DCM, then add 94-2 (105.6 mg, 1.2 mmol, 1.2 eq), triethylamine (303 mg, 3 mmol, 3 eq), and Py-BOP (624 mg, 1.2 mmol, 1.2 eq) sequentially. React at room temperature for 2 h, monitoring the reaction until the starting material disappears. Concentrate the reaction solution, and purify the residue by column chromatography to obtain compound 94-3 (223 mg, yield 69%, white solid).

[0111] (2) Compound 94-3 (223 mg, 0.7 mmol, 1 eq) was dissolved in 20 ml of tetrahydrofuran, and 94-4 DMF-DMA (167 mg, 1.4 mmol, 2 eq) was added. The mixture was reacted at 60 °C for 3 hours, and the reaction was monitored until the starting material disappeared. The reaction solution was concentrated to obtain crude compound 94-5 (214 mg, pale yellow oil).

[0112] (3) Compound 94-5 (214 mg, 0.6 mmol, 1 eq) was dissolved in 20 mL of dioxane, and sodium acetate (98 mg, 1.2 mmol, 2 eq) and 94-6 (99 mg, 1.2 mmol, 2 eq) were added sequentially. The reaction was carried out at room temperature for 3 hours, and the reaction was monitored until the starting material disappeared. The reaction solution was concentrated, and the residue was purified by column chromatography to obtain compound 94 (2S, 5S) (132 mg, yield 61%, white solid).

[0113] Bioactivity evaluation:

[0114] The activity level standards for plant damage (i.e., growth control rate) are as follows:

[0115] Level 9: Complete death;

[0116] Level 8: Growth control rate is greater than or equal to 90% and less than 100%;

[0117] Level 7: Growth control rate is greater than or equal to 80% and less than 90%;

[0118] Level 6: Growth control rate is greater than or equal to 70% and less than 80%;

[0119] Level 5: Growth control rate is greater than or equal to 50% and less than 70%;

[0120] Level 4: Growth control rate is greater than or equal to 30% and less than 50%;

[0121] Level 3: Growth control rate greater than or equal to 20% and less than 30%;

[0122] Level 2: Growth control rate greater than or equal to 10% and less than 20%;

[0123] Level 1: Growth control rate less than 10%;

[0124] Level 0: No effect.

[0125] The above growth control rates are fresh weight control rates.

[0126] Post-emergence testing:

[0127] Seeds of monocot and dicot weeds, as well as seeds of major crops, were placed in plastic pots filled with soil and covered with 0.5-2 cm of soil. The plants were then allowed to grow in a suitable greenhouse environment. Two weeks after sowing, test plants were treated at the 2-3 leaf stage. The tested compound of this invention was dissolved in acetone, and then Tween 80 was added. Methyl oleate emulsifiable concentrate at 1.5 L / ha was used as a synergist, and the solution was diluted with water to a specific concentration. The solution was then sprayed onto the plants using a spray tower. After three weeks of cultivation in the greenhouse following application, the experimental effects on weeds were statistically analyzed. Representative data are listed in Table 3.

[0128] Table 3 Results of post-emergence weed control experiment Note: N represents no data; reference compound A:

[0129] Pre-seeding test:

[0130] Seeds of monocotyledonous and dicotyledonous weeds, as well as seeds of major crops, were placed in plastic basins filled with soil and covered with 0.5-2 cm of soil. The tested compounds of this invention were dissolved in acetone, then Tween 80 was added, and the solutions were diluted with water to a certain concentration. The solutions were sprayed immediately after sowing. The results were observed after 4 weeks of cultivation in a greenhouse. Representative data are listed in Table 4.

[0131] Table 4 Results of Pre-emergence Weed Trial Note: N represents no data; reference compound A:

[0132] Meanwhile, through testing on major weeds in wheat and rice fields, we found that the compounds described in this invention generally have good weed control efficacy. In particular, we noted that they have extremely high activity against broadleaf weeds and sedges resistant to ALS inhibitors, such as arrowhead, fireweed, sedge, shepherd's purse, shepherd's purse, cleavers, nutgrass, and nutgrass, and have very good commercial value.

[0133] Safety evaluation of transplanted rice and weed control efficacy evaluation in paddy fields:

[0134] After filling 1 / 1,000,000-hectare tanks with paddy field soil, sow seeds of barnyard grass, rush, and wolfsbane, and gently cover them with soil. Then, place the tanks in a greenhouse with water at a depth of 0.5-1 cm. The tubers of arrowhead are then planted the next day or two later. The water depth is maintained at 3-4 cm. When the barnyard grass, rush, and wolfsbane reach the 0.5-leaf stage, and the arrowhead reaches the initial leaf stage, a water-diluted solution of the wettable powder or suspension of the compound of this invention, prepared according to conventional formulation methods, is evenly dripped using a pipette to achieve the specified effective ingredient concentration.

[0135] In addition, after filling the 1 / 1,000,000-hectare tank with paddy field soil, the soil is leveled to a water depth of 3-4 cm. The next day, 3-leaf stage rice (japonica rice) is transplanted at a transplanting depth of 3 cm. The compound of the present invention is treated in the same way as described above on the 5th day after transplanting.

[0136] The growth status of barnyard grass, fireweed, wolfberry, and arrowhead was observed with the naked eye on day 14 after treatment, and the growth status of rice was observed on day 21 after treatment. The effects were evaluated according to the above-mentioned activity standard level. Many compounds showed excellent activity and selectivity.

[0137] Note: The seeds of barnyard grass, fireweed, and wolfsbane were all collected from Heilongjiang, China, and tests showed that they were resistant to conventional doses of pyrimisulfuron.

[0138] Furthermore, numerous tests have revealed that the compounds and their compositions described in this invention exhibit excellent selectivity against many grassy lawns, including Zoysia japonica, Bermuda grass, tall fescue, Kentucky bluegrass, ryegrass, and seashore paspalum, effectively controlling many key grassy weeds as well as broadleaf weeds. Tests on sugarcane, soybeans, cotton, sunflowers, potatoes, fruit trees, and vegetables under different application methods also demonstrated excellent selectivity and commercial value.

[0139] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the present invention.

Claims

1. A 3-phenylisoxazoline-5-carboxamide compound as shown in general formula I, or a salt thereof: in, X is hydrogen, alkyl, alkenyl, alkynyl, haloalkyl, haloalkenyl, haloalkynyl, cycloalkyl, cycloalkylalkyl, heterocyclic, heterocyclic alkyl, aryl, or arylalkyl; Y1 and Y2 are independently selected from hydrogen, halogen, alkyl, alkenyl, alkynyl, haloalkyl, haloalkenyl, haloalkynyl, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -alkylene-OR, -alkylene-(CO)OR, -alkylene-SR, -alkylene-(SO)R, -alkylene-(SO2)R, -alkylene-N(R)2, -alkylene-(CO)N(R)2, aryl, heterocyclic, arylalkyl or heterocyclic alkyl; or Y1 and Y2 together form -(CH2)n; n represents 3, 4, or 5; Z1 and Z2 are independently selected from hydrogen, alkyl, alkenyl, alkynyl, and alkyl, alkenyl, alkenyl, cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2 or cyano groups, respectively, and are substituted with at least one of the following groups: halogen, cycloalkyl, cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-alkylene-ON=C(R)2, -O-alkylene-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together form an unsubstituted or substituted heterocyclic group with a nitrogen atom at the 1-position; Q1, Q2, and Q3 each independently represent hydrogen, halogen, alkyl, or haloalkyl; R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, alkyl, alkenyl, alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -alkylene-OR, -alkylene-SR, -alkylene-SOR, -alkylene-(SO2)R, -alkylene-N(R)2, -alkylene-(CO)R, -alkylene-(CO)N(R)2, cyano, nitro, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, haloalkyl, haloalkenyl, haloalkynyl, aryl, heterocyclic, arylalkyl, or heterocyclic alkyl. The aforementioned cycloalkyl, cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, alkyl, alkenyl, ynyl, cycloalkyl, cycloalkylalkyl, haloalkyl, haloalkenyl, haloynyl, -OR, -SR, -alkylene-OR, -alkylene-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2; R independently represents hydrogen, alkyl, alkenyl, alkynyl, alkyl, alkenyl or alkynyl group substituted with at least one group selected from halogen, hydroxyl, alkoxy, alkylthio, alkyl sulfoxide, alkyl sulfonyl, cyano or alkoxy carbonyl, cycloalkyl, cycloalkylalkyl, cycloalkenyl, cycloalkenylalkyl, halocycloalkyl, halocycloalkylalkyl, halocycloalkenyl, halocycloalkenylalkyl, aryl, arylalkyl, heterocyclic, heterocyclic alkyl, or aryl, arylalkyl, heterocyclic or heterocyclic alkyl group substituted with at least one group selected from halogen, cyano, nitro, alkyl, haloalkyl, alkoxy carbonyl, alkylthio, alkyl sulfonyl, alkoxy or haloalkoxy.

2. A 3-phenylisoxazoline-5-carboxamide compound or a salt thereof according to claim 1, characterized in that: X is hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 alkynyl, halo-C1-C8 alkyl, halo-C2-C8 alkenyl, halo-C2-C8 alkynyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl-C1-C8 alkyl, heterocyclic, heterocyclic-C1-C8 alkyl, aryl or aryl-C1-C8 alkyl; Y1 and Y2 are independently selected from hydrogen, halogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, halogenated C1-C8 alkyl, halogenated C2-C8 alkenyl, halogenated C2-C8 ynyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -(C1- -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-(CO)OR, -(C1-C8 alkylene)-SR, -(C1-C8 alkylene)-(SO)R, -(C1-C8 alkylene)-(SO2)R, -(C1-C8 alkylene)-N(R)2, -(C1-C8 alkylene)-(CO)N(R)2, aryl, heterocyclic, aryl C1-C8 alkyl or heterocyclic C1-C8 alkyl; or Y1 and Y2 together form -(CH2)n; n represents 3, 4, or 5; Z1 and Z2 are independently selected from hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, and C1-C8 alkyl, C2-C8 alkenyl, or C2-C8 ynyl groups substituted with at least one group selected from halogen, C3-C8 cycloalkyl, C3-C8 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2, or cyano, respectively. C3-C8 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-(C1-C8 alkylene)-ON=C(R)2, -O-(C1-C8 alkylene)-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together to form Among them, the It is either unsubstituted or substituted with at least one group selected from cyano, halogen, N(R)2, NR(NO2), oxo, C1-C8 alkyl or C1-C8 alkoxycarbonyl; Q1, Q2, and Q3 independently represent hydrogen, halogen, C1-C8 alkyl, or halo-C1-C8 alkyl, respectively; R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-SR, -(C1-C8 alkylene)-SOR, and -(C1-C8 alkylene)-(SO2) )R, -(C1-C8 alkylene)-N(R)2, -(C1-C8 alkylene)-(CO)R, -(C1-C8 alkylene)-(CO)N(R)2, cyano, nitro, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, halo-C1-C8 alkyl, halo-C2-C8 alkenyl, halo-C2-C8 alkynyl, aryl, heterocyclic, aryl C1-C8 alkyl or heterocyclic C1-C8 alkyl; The aforementioned C3-C8 cycloalkyl, C3-C8 cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, C3-C8 cycloalkyl, C3-C8 cycloalkylC1-C8 alkyl, halogenated C1-C8 alkyl, halogenated C2-C8 alkenyl, halogenated C2-C8 ynyl, -OR, -SR, -(C1-C8 alkylene)-OR, -(C1-C8 alkylene)-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2; R independently represents hydrogen, C1-C8 alkyl, C2-C8 alkenyl, C2-C8 ynyl, C1-C8 alkyl, C2-C8 alkenyl, or C2-C8 ynyl substituted with at least one group selected from halogen, hydroxyl, C1-C8 alkoxy, C1-C8 alkylthio, C1-C8 alkyl sulfoxide, C1-C8 alkyl sulfonyl, cyano, or C1-C8 alkoxycarbonyl, C3-C8 cycloalkyl, C3-C8 cycloalkyl C1-C8 alkyl, C3-C8 cycloalkenyl, C3-C8 cycloalkenyl C1-C8 alkyl, halogenated C3-C8 cyclo ... The aryl, aryl C1-C8 alkyl, heterocyclic, or heterocyclic C1-C8 alkyl group is substituted with at least one group selected from halogen, cyano, nitro, C1-C8 alkyl, halo-C1-C8 alkyl, C1-C8 alkoxycarbonyl, C1-C8 alkylthio, C1-C8 alkylsulfonyl, C1-C8 alkoxy, or halo-C1-C8 alkoxy.

3. A 3-phenylisoxazoline-5-carboxamide compound or a salt thereof according to claim 1 or 2, characterized in that: X is hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, halo-C1-C6 alkyl, halo-C2-C6 alkenyl, halo-C2-C6 alkynyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl-C1-C6 alkyl, heterocyclic, heterocyclic-C1-C6 alkyl, aryl or aryl-C1-C6 alkyl; Y1 and Y2 are independently selected from hydrogen, halogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 ynyl, halogenated C1-C6 alkyl, halogenated C2-C6 alkenyl, halogenated C2-C6 ynyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, -OR, -SR, -N(R)2, -(CO)R, -(CO)OR, -(CO)N(R)2, -(C1- -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-(CO)OR, -(C1-C6 alkylene)-SR, -(C1-C6 alkylene)-(SO)R, -(C1-C6 alkylene)-(SO2)R, -(C1-C6 alkylene)-N(R)2, -(C1-C6 alkylene)-(CO)N(R)2, aryl, heterocyclic, aryl C1-C6 alkyl or heterocyclic C1-C6 alkyl; or Y1 and Y2 together form -(CH2)n; n represents 3, 4, or 5; Z1 and Z2 are each independently selected from hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 ynyl, and C1-C6 alkyl, C2-C6 alkenyl, or C2-C6 ynyl groups substituted with at least one group selected from halogen, C3-C6 cycloalkyl, C3-C6 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -N(R)2, -(CO)OR, -ON=C(R)2, or cyano, respectively. C3-C6 cycloalkenyl, heterocyclic, aryl, -OR, -SR, -(SO)R, -(SO2)R, -(CO)OR, -CR=NOR, -O-(C1-C6 alkylene)-ON=C(R)2, -O-(C1-C6 alkylene)-(CO)-N=S(R)2=O, -N(R)2, -NR(COOR) or -SO2N(R)2; or -NZ1Z2 together to form Among them, the It is either unsubstituted or substituted with at least one group selected from cyano, halogen, N(R)2, NR(NO2), oxo, C1-C6 alkyl or C1-C6 alkoxycarbonyl; Q1, Q2, and Q3 independently represent hydrogen, halogen, C1-C6 alkyl, or halogenated C1-C6 alkyl, respectively; R1, R2, R3, R4, and R5 independently represent hydrogen, halogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, -OR, -SR, -SOR, -(SO2)R, -O(SO2)R, -N(R)2, -(CO)R, -O(CO)R, -(CO)N(R)2, -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-SR, -(C1-C6 alkylene)-SOR, and -(C1-C6 alkylene)-(SO2) -(C1-C6 alkylene)-N(R)2, -(C1-C6 alkylene)-(CO)R, -(C1-C6 alkylene)-(CO)N(R)2, cyano, nitro, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, halo-C1-C6 alkyl, halo-C2-C6 alkenyl, halo-C2-C6 alkynyl, aryl, heterocyclic, aryl C1-C6 alkyl or heterocyclic C1-C6 alkyl; The aforementioned C3-C6 cycloalkyl, C3-C6 cycloalkenyl, aryl, or heterocyclic groups are optionally substituted by at least one group selected from oxo, halogen, cyano, nitro, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, C3-C6 cycloalkyl, C3-C6 cycloalkylC1-C6 alkyl, halogenated C1-C6 alkyl, halogenated C2-C6 alkenyl, halogenated C2-C6 alkynyl, -OR, -SR, -(C1-C6 alkylene)-OR, -(C1-C6 alkylene)-SR, -O(CO)R, -(CO)R, -(CO)OR, -(CO)N(R)2, -SOR, -SO2R, -OSO2R, or -N(R)2; R independently represents hydrogen, C1-C6 alkyl, C2-C6 alkenyl, C2-C6 alkynyl, C1-C6 alkyl, C2-C6 alkenyl, or C2-C6 alkynyl substituted with at least one group selected from halogen, hydroxyl, C1-C6 alkoxy, C1-C6 alkylthio, C1-C6 alkylsulfonyl, C1-C6 alkylsulfonyl, cyano, or C1-C6 alkoxycarbonyl, C3-C6 cycloalkyl, C3-C6 cycloalkyl C1-C6 alkyl, C3-C6 cycloalkenyl, C3-C6 cycloalkenyl C1-C6 alkyl, halogenated C3-C6 cyclo ... The aryl, aryl C1-C6 alkyl, heterocyclic, or heterocyclic C1-C6 alkyl group is substituted with at least one group selected from halogen, cyano, nitro, C1-C6 alkyl, halo-C1-C6 alkyl, C1-C6 alkoxycarbonyl, C1-C6 alkylthio, C1-C6 alkylsulfonyl, C1-C6 alkoxy, or halo-C1-C6 alkoxy. Preferably, the compound is selected from any one of Table 1 and AH.

4. A 3-phenylisoxazoline-5-carboxamide compound having a chiral center as shown in Formula I', or a salt thereof: in, The substituents X, Y1, Y2, Z1, Z2, Q1, Q2, Q3, R1, R2, R3, R4, and R5 are defined as described in any one of claims 1-3, and Y1 and Y2 are different; Based on the content of stereoisomers with R and S configurations at position 2, it has a stereochemical purity of 60-100% (S), preferably 70-100% (S), more preferably 80-100% (S), further preferably 90-100% (S), and even more preferably 95-100% (S); or it has a stereochemical purity of 60-100% (R), preferably 70-100% (R), more preferably 80-100% (R), further preferably 90-100% (R), and even more preferably 95-100% (R); And / or, based on the carbon atom at position 5 being the chiral center, and based on the content of stereoisomers having R and S configurations at that position, it has a stereochemical purity of 60-100% (S), preferably 70-100% (S), more preferably 80-100% (S), further preferably 90-100% (S), and even more preferably 95-100% (S); or it has a stereochemical purity of 60-100% (R), preferably 70-100% (R), more preferably 80-100% (R), further preferably 90-100% (R), and even more preferably 95-100% (R).

5. A method for preparing a 3-phenylisooxazoline-5-carboxamide compound or a salt thereof as described in any one of claims 1-4, characterized in that, Includes the following steps: (1) The compound of general formula II is reacted with the compound of general formula III or its salt to prepare the compound of general formula I. The reaction equation is as follows: Or (2) react the compound represented by general formula IV with the compound represented by general formula V or its salt to obtain the compound represented by general formula I, and the reaction equation is as follows: Or (3) react the compound represented by general formula VI with the compound represented by general formula VII to obtain the compound represented by general formula I, and the reaction equation is as follows: Wherein, M and M1 independently represent OH or halogen, Hal represents halogen, and the substituents R1, R2, R3, R4, R5, X, Y1, Y2, Q1, Q2, Q3, Z1 and Z2 are defined as described in any one of claims 1-4; Preferably, reactions (1) and (2) are carried out in the presence of a solvent; More preferably, an alkali and / or a condensing agent are added during the reaction; More preferably, the alkali is selected from at least one of inorganic alkalis or organic alkalis; More preferably, the condensing agent is selected from at least one of Py-BOP, Py-AOP, EDCI, HOBT, DCC, HBTU, or HATU; More preferably, the solvent is selected from at least one of DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate; Preferably, the reaction (3) is carried out in the presence of a base and a solvent; More preferably, the base is selected from at least one of inorganic bases or organic bases; More preferably, the solvent is selected from at least one of methanol, ethanol, isopropanol, DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate.

6. The preparation method according to claim 5, characterized in that, When M is OH, the compound represented by general formula II is prepared by hydrolysis of the compound represented by general formula IV, and the reaction equation is as follows: Wherein, W is a C1-C6 alkyl or phenyl group; Preferably, the reaction is carried out in the presence of a base and a solvent; More preferably, the base is selected from at least one of inorganic bases or organic bases; More preferably, the solvent is selected from at least one of DMF, DMA, acetonitrile, dichloroethane, DMSO, dioxane, dichloromethane, tetrahydrofuran, or ethyl acetate.

7. A herbicide composition, characterized in that, The herbicide includes at least one of the 3-phenylisoxazoline-5-carboxamide compounds or their salts as described in any one of claims 1-4; preferably, it also includes formulation adjuvants; more preferably, it also includes other active ingredients.

8. A method for controlling weeds, characterized in that, This includes applying an effective amount of at least one of the 3-phenylisoxazolin-5-carboxamide compounds of any one of claims 1-4 or a salt thereof, or the herbicide composition of claim 7, to plants or weedy areas.

9. Use of at least one of the 3-phenylisooxazoline-5-carboxamide compounds or their salts as described in any one of claims 1-4, or the herbicide composition as described in claim 7, in controlling weeds, preferably, the 3-phenylisooxazoline-5-carboxamide compound or its salt is used to control weeds in a useful crop, said useful crop being a transgenic crop or a crop treated with genome editing technology.

10. An intermediate as described in Formula II, III, V or VI of claim 5.

Citation Information

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