Abstract <p>Discovering super-efficient herbicides with novel structures is one of the effective ways to solve the increasingly severe weed resistance problem and meet ecological requirements. In this work, a series of novel bromo-<i>p</i>-hydroxybenzamides were designed based on the molecular hybridization strategy, and rapidly synthesized by one-step amidation reaction, and then characterized by <sup>1</sup>H NMR, <sup>13</sup>C NMR and HRMS. The herbicidal activity assay indicated that most of the target compounds exhibited good-to-excellent inhibition effects on seed germination of two model plants. At a concentration of 100 mg/L, the inhibition rate of 3,5-dibromo-<i>N</i>-(4-bromo-3-chlorophenyl)-<i>p</i>-hydroxybenzamide reached up to 98 and 96% on the roots and stalks of the monocotyledonous barnyard grass (<i>E. crus-galli</i>), respectively. 3,5-Dibromo-<i>N</i>-(2-bromophenyl)-<i>p</i>-hydroxybenzamide showed excellent inhibitory activity on the roots and stalks of dicotyledonous rape (<i>B. napus</i>) at 100 mg/L, with an inhibitory rate of more than 90%. Furthermore, the concentration was reduced to 1 mg/L, the inhibitory rate of 3,5-dibromo-<i>N</i>-(2-bromophenyl)-<i>p</i>-hydroxybenzamide on the roots of <i>B. napus</i> was still as high as 90%. This work provides a novel molecular scaffold for the development and research of new super-efficient herbicides.</p>

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Design, Efficient One-Step Synthesis of Bromo-p-hydroxybenzamides and Herbicidal Activity Evaluation

  • J. Wang,
  • Y. Zhou,
  • X. Wu,
  • X. Zhou,
  • Y. Sun,
  • W. Wu,
  • X. Wang

摘要

Abstract

Discovering super-efficient herbicides with novel structures is one of the effective ways to solve the increasingly severe weed resistance problem and meet ecological requirements. In this work, a series of novel bromo-p-hydroxybenzamides were designed based on the molecular hybridization strategy, and rapidly synthesized by one-step amidation reaction, and then characterized by 1H NMR, 13C NMR and HRMS. The herbicidal activity assay indicated that most of the target compounds exhibited good-to-excellent inhibition effects on seed germination of two model plants. At a concentration of 100 mg/L, the inhibition rate of 3,5-dibromo-N-(4-bromo-3-chlorophenyl)-p-hydroxybenzamide reached up to 98 and 96% on the roots and stalks of the monocotyledonous barnyard grass (E. crus-galli), respectively. 3,5-Dibromo-N-(2-bromophenyl)-p-hydroxybenzamide showed excellent inhibitory activity on the roots and stalks of dicotyledonous rape (B. napus) at 100 mg/L, with an inhibitory rate of more than 90%. Furthermore, the concentration was reduced to 1 mg/L, the inhibitory rate of 3,5-dibromo-N-(2-bromophenyl)-p-hydroxybenzamide on the roots of B. napus was still as high as 90%. This work provides a novel molecular scaffold for the development and research of new super-efficient herbicides.