Department of Environmental Science, Faculty of Science and Technology, Thammasat University, Pathum Thani, 12120, Thailand.
Department of Chemical Engineering, Ming Chi University of Technology, New Taipei City, 24301, Taiwan, ROC.
Chemosphere. 2022 Dec;308(Pt 1):136267. doi: 10.1016/j.chemosphere.2022.136267. Epub 2022 Aug 30.
Low cost FeO-based sorbents with an exceptional selectivity toward the targeted As(V) pollutant have gained extensive attention in water treatment. However, their structural features often influence removal performance. In this respect, we present herein a rational design of silica-supported FeO sorbents with an enhanced morphological structure based on a simple temperature-induced process. Low-hydrothermal temperature synthesis (60 and 100 °C) provided a large silica-cluster size with a close packed structure (S-60 and S-100), contributing to an increase in mass transport resistance. FeO/S-60 with 6.2-nm pore width silica achieved a maximum As(V) uptake capacity (q) of only 3.5 mg g. Supporting FeO on S-100 with an approximately two-fold increase in the pore size (13 nm) did not lead to any evident enhancement in q (3.7 mg g). However, expanding the pore window up to 22.6 nm (S-140) and 39.5 nm (S-180), along with changing from close-packed to sponge-like loose structures induced by high-temperature synthesis (140 °C and 180 °C), resulted in substantial increases in q. FeO/S-140 had 1.7 and 1.6 times higher q (5.9 mg g) than FeO/S-100 and FeO/S-60, respectively. The highest q (7.4 mg g) was achieved for FeO/S-180, which was attributed to its relatively small-sized silica cluster and the largest cavities that facilitated easier access by As(V) to adsorbing sites.
具有对目标 As(V)污染物的特殊选择性的低成本 FeO 基吸附剂在水处理中受到广泛关注。然而,它们的结构特征通常会影响去除性能。在这方面,我们在此提出了一种基于简单的温度诱导过程的具有增强形态结构的硅基负载 FeO 吸附剂的合理设计。低水热温度合成(60 和 100°C)提供了具有紧密堆积结构的大硅烷簇尺寸(S-60 和 S-100),导致传质阻力增加。具有 6.2nm 孔径的 FeO/S-60 硅达到了仅 3.5mg/g 的最大 As(V)吸附量(q)。在 S-100 上负载 FeO,其孔径增加约两倍(13nm),q 没有明显提高(3.7mg/g)。然而,将孔径扩大到 22.6nm(S-140)和 39.5nm(S-180),并通过高温合成(140°C 和 180°C)从紧密堆积转变为海绵状松散结构,导致 q 显著增加。FeO/S-140 的 q 分别比 FeO/S-100 和 FeO/S-60 高 1.7 倍和 1.6 倍(5.9mg/g)。对于 FeO/S-180,达到了最高的 q(7.4mg/g),这归因于其相对较小的硅烷簇尺寸和最大的空腔,使 As(V)更容易进入吸附位点。