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首页> 外文期刊>Journal of Environmental Management >Systematic utilization of layered double hydroxide nanosheets for effective removal of methyl orange from an aqueous system by π-π stacking-induced nanoconfinement
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Systematic utilization of layered double hydroxide nanosheets for effective removal of methyl orange from an aqueous system by π-π stacking-induced nanoconfinement

机译:通过π-π堆叠诱导的纳米序将分层双氢氧化物纳米片的系统利用分层双氢氧化物纳米片中从水性体系中除去甲基橙

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摘要

Systematic utilization of carbonated Mg-Al layered double hydroxide (LDH) nanosheets for methyl orange removal was investigated with respect to particle dimensions. LDHs with the smallest dimensions were carefully synthesized to have a small lateral size as well as high dispersibility. The other particles, with medium and large sizes, were prepared by hydrothermal treatment and urea hydrolysis to have larger sizes and higher crystallinity. According to kinetics and isotherm analyses, the smallest LDH showed efficient adsorption of methyl orange (1250 mg/g-LDH), which was remarkably higher than the adsorption by the other LDHs with larger lateral sizes. Unlike the larger lateral-sized LDHs, the small ones were shown to utilize all accessible adsorption sites on the nanosheets, generating nanoconfinement of methyl orange molecules. Transmission electron microscopy (TEM) and powder X-ray diffraction (PXRD) patterns indicated that the LDHs with lateral dimensions of ~40 nm fully utilized interlayer nanospace. Monte Carlo simulation suggested that the intercalated methyl orange was stabilized not only through electrostatic interactions with the LDH layer but also by π-π stacking between the methyl orange molecules, which is thought to be the driving force for replacement of carbonate anions.
机译:关于颗粒尺寸研究了用于甲基橙清除甲基橙清除的碳酸Mg-Al层层双氢氧化物(LDH)纳米液的系统利用。仔细合成具有最小尺寸的LDH,以具有小的横向尺寸以及高分散性。通过水热处理和尿素水解制备其他颗粒,具有较大的尺寸和更高的结晶度。根据动力学和等温分析,最小的LDH显示出高效吸附甲基橙(1250mg / g-LDH),其比具有较大横向尺寸的其他LDH的吸附非常高。与较大的横向尺寸的LDH不同,显示小于纳米蛋白片上的所有可偏转吸附位点,产生甲基橙分子的纳米序。透射电子显微镜(TEM)和粉末X射线衍射(PXRD)图案表明,LDH具有横向尺寸的〜40nm的完全利用层间纳米周。蒙特卡罗模拟表明,嵌入甲基橙不仅通过与LDH层的静电相互作用而稳定,而且在甲基橙子分子之间堆叠π-π堆叠,这被认为是替代碳酸盐阴离子的驱动力。

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