首页> 外文期刊>Environmental toxicology and chemistry >HYDROLYSIS AND BIODEGRADATION OF SULFONYLUREA HERBICIDES IN AQUEOUS BUFFERS AND ANAEROBIC WATER-SEDIMENT SYSTEMS: ASSESSING FATE PATHWAYS USING MOLECULAR DESCRIPTORS
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HYDROLYSIS AND BIODEGRADATION OF SULFONYLUREA HERBICIDES IN AQUEOUS BUFFERS AND ANAEROBIC WATER-SEDIMENT SYSTEMS: ASSESSING FATE PATHWAYS USING MOLECULAR DESCRIPTORS

机译:亚磺酰脲类除草剂在厌水和厌氧水系统中的水解和生物分解:使用分子描述子评估命运的途径

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The degradation of 12 sulfonylurea herbicides in buffers at different pH levels and in anaerobic sediments was investigated in laboratory studies. Reaction products, which are not commercially available, were synthesized in order to follow degradation kinetics. Different hydrolysis processes were shown to occur under acidic, neutral, and alkaline conditions. At 40℃, pseudo-first-order reaction rate constants between pH 4 and 10 covered two orders of magnitude. Activation energies of the acid-catalyzed hydrolysis were about 100 kJ/mol. Reaction rate-pH profiles were different for all compounds. In native sediments at neutral pH, microbial degradation was prevalent. At lower pH, chemical hydrolysis became more important. Pseudo-first-order dissipation rate constants between 12.50 X 10~(-2) d~(-1) and 0.19 X 10~(-2) d~(-1) were determined. Quantum-chemical molecular descriptors were calculated with MOPAC, and steric, electronic, and geometrical descriptors with Molecular Modeling Pro. Quantitative structure-reactivity relationships were found between bond orders, atomic charges, lowest unoccupied molecular orbitals, and pK_a values on one hand and rate constants on the other. Disappearance rates in native sediments could be assessed with a multiple correlation considering calculated octanol water partition coefficients, parachors, and the atomic charges at the main reactive site of the molecules.
机译:在实验室研究中,研究了不同pH值缓冲液和厌氧沉积物中12种磺酰脲类除草剂的降解情况。合成了市售的反应产物,以遵循降解动力学。已证明在酸性,中性和碱性条件下会发生不同的水解过程。在40℃下,pH 4和10之间的拟一级反应速率常数涵盖两个数量级。酸催化水解的活化能为约100kJ / mol。所有化合物的反应速率-pH谱均不同。在中性pH的天然沉积物中,微生物降解普遍存在。在较低的pH值下,化学水解变得更为重要。确定在12.50 X 10〜(-2)d〜(-1)和0.19 X 10〜(-2)d〜(-1)之间的伪一阶耗散率常数。使用MOPAC计算量子化学分子描述符,并使用Molecular Modeling Pro计算空间,电子和几何描述符。在键序,原子电荷,最低未占据分子轨道和一方面的pK_a值以及另一方面的速率常数之间发现了定量的结构反应性关系。考虑到计算出的辛醇水分配系数,降落伞和分子主要反应位点的原子电荷,可以用多重相关性评估天然沉积物中的消失率。

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