State Key Laboratory of Pollution Control and Resource Reuse, School of the Environment, Nanjing University, Nanjing, 210023, People's Republic of China.
Environ Sci Pollut Res Int. 2016 Jan;23(2):1898-904. doi: 10.1007/s11356-015-5454-y. Epub 2015 Sep 26.
As widely used chemicals intended to protect human being from infection of microorganisms, disinfectants are ubiquitous in the environment. Among them chlorine-substituted phenol is a basic structure in many disinfectant molecules. Removal of these pollutants from wastewater is of great concern. The oxidative degradation of antimicrobial agents such as triclosan, chlorofene, and dichlorofene by a Fenton-like system Cu(2+)/H2O2 was examined. Reaction conditions such as temperature, initial concentrations of H2O2 and Cu(2+), and pH were optimized using triclosan as a representative. The degradation kinetics of the above disinfectants followed pseudo-first-order kinetics under the investigated conditions. Fourteen chlorophenols (CPs) with different chlorine substitution were also studied to evaluate the influence of molecular structure on the degradation process in the Cu(2+)/H2O2 system. Fourteen structure-related parameters were calculated using Gaussian 09 program. A quantitative structure-activity relationship (QSAR) model was established using SPSS software with measured rate constant (k) as dependent variable and calculated molecular descriptors as independent variables. A three-parameter model including energy of HOMO (E homo), molar heat capacity at constant volume (Cv(θ)), and the most positive net charge of hydrogen atoms (qH(+)) was selected for k prediction, with correlation coefficient R(2) = 0.878. Analyses of the model demonstrated that the Cv(θ) was the most significant factor affecting the k of chlorophenols. Variance analysis and standard t-value test were used to validate the model.
作为广泛用于保护人类免受微生物感染的化学品,消毒剂在环境中无处不在。其中氯取代酚是许多消毒剂分子的基本结构。从废水中去除这些污染物是人们非常关注的问题。采用类 Fenton 体系 Cu(2+)/H2O2 氧化降解了三氯生、氯仿和二氯仿等抗菌剂。以三氯生为例,优化了温度、H2O2 和 Cu(2+)初始浓度以及 pH 等反应条件。在研究条件下,上述消毒剂的降解动力学符合准一级动力学。还研究了 14 种具有不同氯取代基的氯酚 (CP),以评估分子结构对 Cu(2+)/H2O2 体系中降解过程的影响。使用 Gaussian 09 程序计算了 14 种结构相关参数。使用 SPSS 软件建立了定量构效关系 (QSAR) 模型,以实测速率常数 (k) 为因变量,计算得到的分子描述符为自变量。选择包括最高占据分子轨道能量 (E homo)、摩尔等压热容 (Cv(θ))和最正氢原子净电荷 (qH(+))在内的三参数模型进行 k 预测,相关系数 R(2)为 0.878。模型分析表明,Cv(θ)是影响氯酚 k 的最主要因素。方差分析和标准 t 值检验用于验证模型。