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Enhanced adsorption-coupled reduction of hexavalent chromium by 2D poly(m-phenylenediamine)-functionalized reduction graphene oxide

机译:通过2D聚(M-苯二胺) - 官能化还原石墨烯氧化物增强吸附偶联六价铬的减少

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摘要

To improve the mass transfer efficiency of poly(m-phenylenediamine) for the effective removal of hexavalent chromium (Cr (VI)) from aqueous solution, a facile and one-step method to prepare two-dimensional poly(m-phenylenediamine) functionalized reduction graphene oxide (rGO-PmPD) by dilution polymerization is developed. The structure and morphology of rGO-PmPD as well as rGO and PmPD were characterized by scanning electron microscope (SEM), transmission electron microscope (TEM), Brunauer-Emmett-Teller (BET), Fourier-transformed infrared spectroscopy (FT-IR), X-ray photoelectron spectroscopy (XPS), Raman, and X-ray diffraction (XRD). The preparation mechanism, adsorption performance, and mechanism of rGO-PmPD were then investigated in detail. The obtained rGO-PmPD exhibited thin 2D nanosheet morphology with much improved specific surface area and pore volume (18 and 25 times higher than that of PmPD, respectively). The Cr (VI) adsorption of rGO-PmPD was fitted well with the pseudo-second-order kinetic model and Langmuir isotherm model, and the maximum adsorption capacity of rGO-PmPD reached 588.26 mg g(-1), higher than that of PmPD (400 mg g(-1)) and rGO (156.25 mg g(-1)). Moreover, the regeneration efficiency of the rGO-PmPD nanosheet is also promising that the adsorption performance after five times of adsorption-desorption cycles still maintains more than 530 mg g(-1). The removal mechanism involved reduction coupled with adsorption and electrostatic interaction between rGO-PmPD and Cr (VI), and similar to 65% of Cr (VI) removal was attributed to reduction and similar to 35% was ascribed to adsorption and electrostatic interaction. This study thus provides a simple and effective route to achieve high accessible surface area of adsorbent materials with enhanced mass transfer efficiency and thereafter improved adsorption performance.
机译:提高聚(M-苯二胺)的传质效率,用于从水溶液,容易的和一步法中有效地除去六价铬(Cr(vi))以制备二维聚(M-苯二胺)的官能化还原通过稀释聚合制作石墨烯氧化物(RGO-PMPD)。扫描电子显微镜(SEM),透射电子显微镜(TEM),Brunauer-Emmett-Teller(Bet),傅里叶变换的红外光谱(FT-IR),表征RGO-PMPD以及RGO和PMPD的结构和形态。 ,X射线光电子能谱(XPS),拉曼和X射线衍射(XRD)。然后详细研究了RGO-PMPD的制备机理,吸附性能和机制。获得的RGO-PMPD分别表现出薄的2D纳米片形态,具有多大改善的比表面积和孔体积(分别高于PMPD的18倍和25倍)。 RGO-PMPD的Cr(VI)吸附很好,伪二阶动力学模型和Langmuir等温模型很好,RGO-PMPD的最大吸附容量达到588.26mg(-1),高于PMPD (400 mg(-1))和RGO(156.25mg(-1))。此外,RGO-PMPD纳米片的再生效率也很有希望,吸附 - 解吸循环五次后的吸附性能仍保持超过530mg(-1)。将涉及的去除机制与RGO-PMPD和Cr(VI)之间的吸附和静电相互作用相结合,并且类似于65%的Cr(VI)的去除归因于还原,类似于35%归因于吸附和静电相互作用。因此,该研究提供了一种简单且有效的途径,以实现具有增强的传质效率的吸附材料的高可接触表面区域,然后提高吸附性能。

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