Research Institute of Advanced Energy Technology, Kyungpook National University, Daegu, Republic of Korea.
School of Architectural, Civil, Environmental, and Energy Engineering, Kyungpook National University, Daegu, Republic of Korea.
Environ Technol. 2022 Jun;43(15):2241-2251. doi: 10.1080/09593330.2021.1871659. Epub 2021 Jan 28.
A method of chemically bonding copper ferrocynide (CuFC) to the surface of a PVDF hollow-fibre membrane (PVDF-CuFC) was designed and the resulting PVDF-CuFC was applied to the effective removal of aqueous cesium (Cs). In order to chemically immobilize CuFC on the surface of the PVDF hollow-fibre membrane, carboxyl groups were introduced onto the membrane surface (PVDF-COOH) to peptide bond with amine groups from CuFC. The introduction of the carboxyl group onto the surface of the PVDF hollow-fibre membrane was confirmed by Fourier-transform infrared spectroscopy (FT-IR), while the immobilization of CuFC was confirmed by scanning electron microscopy with energy dispersed spectroscopy, FT-IR, and thermogravimetric analysis. The PVDF-CuFC showed higher Cs adsorption kinetics and adsorption capacity than PVDF-COOH. Moreover, as the initial pH increased, the amount of Cs adsorption by PVDF-CuFC also increased. However, the amount of Cs adsorption at pH 10 was slightly less. The applicability of PVDF-CuFC as a filter type adsorbent for the treatment of a Cs-contaminated water source is demonstrated by continuous filtration experiments.
设计了一种将铜铁氰化物(CuFC)化学结合到聚偏氟乙烯中空纤维膜(PVDF-CuFC)表面的方法,并将得到的 PVDF-CuFC 应用于有效去除水溶液中的铯(Cs)。为了将 CuFC 化学固定在 PVDF 中空纤维膜的表面上,将羧基引入到膜表面(PVDF-COOH)上,以与 CuFC 的氨基形成肽键。通过傅里叶变换红外光谱(FT-IR)证实了 PVDF 中空纤维膜表面上引入羧基,而通过扫描电子显微镜与能量色散光谱、FT-IR 和热重分析证实了 CuFC 的固定化。PVDF-CuFC 表现出比 PVDF-COOH 更高的 Cs 吸附动力学和吸附容量。此外,随着初始 pH 值的增加,PVDF-CuFC 吸附的 Cs 量也增加。然而,在 pH 10 时吸附的 Cs 量略少。通过连续过滤实验证明了 PVDF-CuFC 作为过滤型吸附剂用于处理含 Cs 水源的适用性。