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首页> 外文期刊>Journal of Cleaner Production >Application of response surface methodology for enhanced synthesis of chitosan tripolyphosphate/TiO_2 nanocomposite and adsorption of reactive orange 16 dye
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Application of response surface methodology for enhanced synthesis of chitosan tripolyphosphate/TiO_2 nanocomposite and adsorption of reactive orange 16 dye

机译:响应面方法的应用在壳聚糖三聚磷酸盐/ TiO_2纳米复合材料的增强合成及反应性橙16染料的吸附

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In this work, Box-Behnken design (BBD) in response surface methodology (RSM) was applied to optimize the synthesis condition of crosslinked chitosan-tripolyphosphate/TiO2 nanocompsite (CCTPP/TiO2 NC) as well as the adsorption conditions of reactive orange dye (RO16) from aqueous solution. The key input factors in this optimization process were loading of TiO2 nanoparticles into CCTPP polymeric matrix (A: 0%-50%), adsorbent dose (B: 0.04-0.14 g/50 mL), solution pH (C: 4-10), and temperature (D: 30-50 degrees C). The analysis of variance (ANOVA) was performed to evaluate the adequacy of the model, and significant factors were successfully indicated (p 0.05). The experimental results indicate that the highest RO16 removal efficiency of 92.7% was observed by significant interaction effects between AB (p-value = 0.02) and AC (p-value 0.0001). The optimum TiO2 loading, adsorbent dosage, solution pH, and temperature were (50% TiO2: 50% chitosan labeled as CCTPP/TiO2 NC-50), 0.09 g/50 mL, 4.0, and 40 degrees C. The adsorption of RO16 from aqueous solution by using CCTPP/TiO2 NC-50 in batch mode was evaluated. The adsorption kinetic results were well described by the pseudo-second order kinetic. The adsorption isotherm followed Freundlich model. The adsorption capacity of CCTPP/TiO2 NC-50 for RO16 was 618.7 mg/g. The adsorption mechanism included electrostatic attractions, n-pi stacking interactions, dipole-dipole hydrogen bonding interactions, and Yoshida H-bonding.(C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项工作中,应用了响应表面方法(RSM)的Box-Behnken设计(BBD)以优化交联的壳聚糖 - 三聚磷酸三磷酸盐/ TiO2纳米岩(CCTPP / TiO2 NC)的合成状况以及反应性橙色染料的吸附条件( RO16)来自水溶液。该优化过程中的关键输入因子是将TiO 2纳米颗粒加载到CCTPP聚合物基质(A:0%-50%),吸附剂剂量(B:0.04-0.14g / 50mL),溶液pH(C:4-10) ,温度(D:30-50℃)。进行方差分析(ANOVA)进行评估模型的充分性,成功显示了显着因素(P <0.05)。实验结果表明,通过AB(P值= 0.02)和AC(P值<0.000)之间的显着相互作用效应观察到92.7%的最高RO16去除效率。最佳TiO2负载,吸附剂剂量,溶液pH和温度(50%TiO 2:50%壳聚糖标记为CCTPP / TiO 2 NC-50),0.09g / 50ml,4.0和40℃。RO16的吸附来自评价通过使用CCTPP / TiO2 NC-50分批模式的水溶液。吸附动力学结果由伪二次阶动力学良好描述。吸附等温线跟踪Freundlich模型。 RO16的CCTPP / TiO2 NC-50的吸附容量为618.7mg / g。吸附机制包括静电景点,N-PI堆叠相互作用,偶极偶氮氢键相互作用,偶底乙醇键合相互作用和尤凡达H键合。(c)2019 Elsevier有限公司保留所有权利。

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