New Strategy To Enhance Phosphate Removal from Water by Hydrous Manganese Oxide

被引:162
作者
Pan, Bingcai [1 ]
Han, Feichao [1 ]
Nie, Guangze [1 ]
Wu, Bing [1 ]
He, Kai [1 ]
Lu, Lv [1 ]
机构
[1] Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Nanjing 210023, Jiangsu, Peoples R China
关键词
ADSORPTION-DESORPTION REVERSIBILITY; FERRIC-OXIDE; METAL-IONS; SIZE; PH; NANOPARTICLES; PHOSPHORUS; ARSENATE; RECOVERY; DIOXIDE;
D O I
10.1021/es5004044
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hydrous manganese oxide (HMO) is generally negatively charged at circumneutral pH and cannot effectively remove anionic pollutants such as phosphate. Here we proposed a new strategy to enhance HMO-mediated phosphate removal by immobilizing nano-HMO within a polystyrene anion exchanger (NS). The resultant nanocomposite HMO@NS exhibited substantially enhanced phosphate removal in the presence of sulfate, chloride, and nitrate at greater levels. This is mainly attributed to the pH(pzc) shift from 6.2 for the bulky HMO to 10.5 for the capsulated HMO nanoparticles, where HMO nanoparticles are positively charged at neutral pH. The ammonium groups of NS also favor phosphate adsorption through the Donnan effect. Cyclic column adsorption experiment indicated that the fresh HMO@NS could treat 460 bed volumes (BV) of a synthetic influent (from the initial concentration of 2 mg P[PO43-]/L to 0.5 mg P[PO43-]/L), while only 80 BV for NS. After the first time of regeneration by NaOH-NaCl solution, the capacity of HMO@NS was lowered to similar to 300 BV and then kept constant for the subsequent 5 runs, implying the presence of both the reversible and irreversible adsorption sites of nano-HMO. Additional column adsorption feeding with a real bioeffluent further validated great potential of HMO@NS in advanced wastewater treatment. This study may provide an alternative approach to expand the usability of other metal oxides in water treatment.
引用
收藏
页码:5101 / 5107
页数:7
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