Center for Advanced Low-Dimension Materials, State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 201620, China.
Center for Advanced Low-Dimension Materials, State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Innovation Center for Textile Science and Technology, Donghua University, Shanghai, 201620, China.
Chemosphere. 2022 Feb;289:133205. doi: 10.1016/j.chemosphere.2021.133205. Epub 2021 Dec 8.
Herein, we obtained porous hollow carboxyl-polysulfone (PH-CPSF) microspheres through non-solvent-induced phase separation (NIPS) method and simple modification, used as highly efficient adsorbents for removing cationic dyes from sewage. The resulting PH-CPSF microspheres possess a hollow core and sponge-like shell structure, with high surface area, durable chemical inertness and structural stability. The as-synthesized PH-CPSF microspheres deliver a desirable adsorption effect after deprotonation treatment, with an adsorption capacity reaching up to 154.5 mg g at 25 °C (pH = 7) of methylene blue (MB). The inter-molecular interactions between MB and the surface of the PH-CPSF, including π-π interaction, hydrogen bonding, strong charge attraction and weak charge attraction endow the adsorption ability of the PH-CPSF. The pseudo-second-order kinetic model pronounces in the adsorption behavior, and the adsorption equilibrium data is fitted to the Langmuir model. Moreover, PH-CPSF microspheres can also be used as adsorption fillers for large-scale water purification, and a removal rate of 94.0% for MB can be achieved under a flow rate of 8000 L m h. The reusability of 95.3% removal effect for PH-CPSF microspheres after 20 consecutive cycles can be attained by a simple regeneration treatment. The adsorption efficiency of the PH-CPSF microspheres was evaluated by variety of cationic and anionic dyes, with high adsorption capacity toward cationic dyes (100%) and less than 10% toward anionic dyes. These results manifest that PH-CPSF microspheres are a potential adsorbent with long-term purification capabilities, which are expected to be used in small and large-scale sewage treatment.
在此,我们通过非溶剂致相分离(NIPS)法和简单的修饰得到了多孔空心羧基-聚砜(PH-CPSF)微球,将其用作从污水中去除阳离子染料的高效吸附剂。所得的 PH-CPSF 微球具有空心核和海绵状壳结构,具有高比表面积、持久的化学惰性和结构稳定性。合成的 PH-CPSF 微球经过脱质子化处理后具有良好的吸附效果,在 25°C(pH = 7)下对亚甲蓝(MB)的吸附容量达到 154.5 mg g。MB 与 PH-CPSF 表面之间的分子间相互作用,包括π-π相互作用、氢键、强电荷吸引和弱电荷吸引,赋予了 PH-CPSF 的吸附能力。吸附行为符合拟二级动力学模型,吸附平衡数据符合 Langmuir 模型。此外,PH-CPSF 微球还可用作大规模水净化的吸附填料,在流速为 8000 L m h 时,对 MB 的去除率可达 94.0%。通过简单的再生处理,PH-CPSF 微球可重复使用 20 次,仍保持 95.3%的去除效果。通过对各种阳离子和阴离子染料的吸附效率评估,PH-CPSF 微球对阳离子染料(100%)具有高吸附容量,对阴离子染料的吸附率小于 10%。这些结果表明 PH-CPSF 微球是一种具有长期净化能力的潜在吸附剂,有望用于小型和大型污水处理。