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聚合物辅助修饰金属有机框架MIL-96(Al):部分水解聚丙烯酰胺浓度对粒径、晶体形态及有害环境污染物全氟辛酸去除的影响

Polymer-assisted modification of metal-organic framework MIL-96 (Al): influence of HPAM concentration on particle size, crystal morphology and removal of harmful environmental pollutant PFOA.

作者信息

Mohd Azmi Luqman Hakim, Williams Daryl R, Ladewig Bradley P

机构信息

Barrer Centre, Department of Chemical Engineering, Imperial College London, South Kensington Campus, SW7 2AZ, London, United Kingdom; Grantham Institute - Climate Change and the Environment, Imperial College London, South Kensington Campus, SW7 2AZ, London, United Kingdom; Surfaces and Particle Engineering Laboratory (SPEL), Department of Chemical Engineering, Imperial College London, South Kensington Campus, SW7 2AZ, London, United Kingdom.

Surfaces and Particle Engineering Laboratory (SPEL), Department of Chemical Engineering, Imperial College London, South Kensington Campus, SW7 2AZ, London, United Kingdom.

出版信息

Chemosphere. 2021 Jan;262:128072. doi: 10.1016/j.chemosphere.2020.128072. Epub 2020 Aug 22.

Abstract

A new synthesis method was developed to prepare an aluminum-based metal organic framework (MIL-96) with a larger particle size and different crystal habits. A low cost and water-soluble polymer, hydrolyzed polyacrylamide (HPAM), was added in varying quantities into the synthesis reaction to achieve >200% particle size enlargement with controlled crystal morphology. The modified adsorbent, MIL-96-RHPAM2, was systematically characterized by SEM, XRD, FTIR, BET and TGA-MS. Using activated carbon (AC) as a reference adsorbent, the effectiveness of MIL-96-RHPAM2 for perfluorooctanoic acid (PFOA) removal from water was examined. The study confirms stable morphology of hydrated MIL-96-RHPAM2 particles as well as a superior PFOA adsorption capacity (340 mg/g) despite its lower surface area, relative to standard MIL-96. MIL-96-RHPAM2 suffers from slow adsorption kinetics as the modification significantly blocks pore access. The strong adsorption of PFOA by MIL-96-RHPAM2 was associated with the formation of electrostatic bonds between the anionic carboxylate of PFOA and the amine functionality present in the HPAM backbone. Thus, the strongly held PFOA molecules in the pores of MIL-96-RHPAM2 were not easily desorbed even after eluted with a high ionic strength solvent (500 mM NaCl). Nevertheless, this simple HPAM addition strategy can still chart promising pathways to impart judicious control over adsorbent particle size and crystal shapes while the introduction of amine functionality onto the surface chemistry is simultaneously useful for enhanced PFOA removal from contaminated aqueous systems.

摘要

开发了一种新的合成方法来制备具有更大粒径和不同晶体习性的铝基金属有机框架(MIL-96)。将低成本且水溶性的聚合物水解聚丙烯酰胺(HPAM)以不同量添加到合成反应中,以在控制晶体形态的同时实现粒径增大>200%。通过扫描电子显微镜(SEM)、X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)、比表面积分析仪(BET)和热重-质谱联用仪(TGA-MS)对改性吸附剂MIL-96-RHPAM2进行了系统表征。以活性炭(AC)作为参考吸附剂,研究了MIL-96-RHPAM2从水中去除全氟辛酸(PFOA)的效果。研究证实了水合MIL-96-RHPAM2颗粒形态稳定,尽管其表面积相对于标准MIL-96较低,但对PFOA的吸附容量优异(340 mg/g)。由于改性显著阻碍了孔道进入,MIL-96-RHPAM2的吸附动力学较慢。MIL-96-RHPAM2对PFOA的强吸附与PFOA的阴离子羧酸盐与HPAM主链中存在的胺官能团之间形成静电键有关。因此,即使在用高离子强度溶剂(500 mM NaCl)洗脱后,MIL-96-RHPAM2孔中牢固吸附的PFOA分子也不容易解吸。然而,这种简单的HPAM添加策略仍然可以为明智地控制吸附剂粒径和晶体形状开辟有前景的途径,同时在表面化学中引入胺官能团对于增强从受污染水体系中去除PFOA也很有用。

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