Qiu Xinhong, Sasaki Keiko, Xu Shuang, Zhao Jiawen
School of Chemistry and Environmental Engineering , Wuhan Institute of Technology , Wuhan 430073 , China.
Department of Earth Resources Engineering , Kyushu University , Fukuoka 819-0395 , Japan.
Langmuir. 2019 May 14;35(19):6267-6278. doi: 10.1021/acs.langmuir.8b04196. Epub 2019 Apr 11.
Layered double hydroxides (LDHs) are a typical class of anionic clay minerals whose structural memory effect has been widely used in pollutant adsorption. However, the influencing mechanism of humic acid (HA) on the structural memory effect in adsorption is not clear. In this study, HA was extracted from black soil and sediments, and its effect on the structural memory effect of LDHs with different divalent metals was evaluated in adsorption. Borate complexed with HAs and HAs promoted the dissolution of magnesium-calcined LDHs (Mg-CLDH), which enhanced their adsorption rate by Mg-CLDH. However, the adsorbed HA caused a decline in the crystallinity of the regenerated Mg-LDH and an incomplete structural transformation, thereby resulting in decreased adsorption capacity. After the complexation of HAs with borate, the resulting compound was adsorbed on the surface of Zn-CLDH. The adsorption rate of borate was effectively improved in the initial stage, but at the same time slowed down the hydration and structural regeneration of Zn-CLDH. Meanwhile, the surface-adsorbed HAs also prevented borate from entering the newly formed layer inside the particles and led to a significant decrease in adsorption performance. When Ca-CLDH was used to adsorb borate, the process mainly occurred through the formation of ettringite. However, the presence of HAs enhanced the stability of the restructured LDHs and hindered the dissolution of Ca-CLDH and the reaction with B(OH) to form ettringite during the regeneration process, which severely inhibited the sorption of borate.
层状双氢氧化物(LDHs)是一类典型的阴离子粘土矿物,其结构记忆效应已广泛应用于污染物吸附。然而,腐殖酸(HA)对吸附过程中结构记忆效应的影响机制尚不清楚。本研究从黑土和沉积物中提取了HA,并评估了其在吸附过程中对不同二价金属LDHs结构记忆效应的影响。硼酸盐与HA络合,HA促进了镁煅烧LDHs(Mg-CLDH)的溶解,提高了Mg-CLDH的吸附速率。然而,吸附的HA导致再生Mg-LDH的结晶度下降和结构转变不完全,从而导致吸附容量降低。HA与硼酸盐络合后,生成的化合物吸附在Zn-CLDH表面。硼酸盐的吸附速率在初始阶段得到有效提高,但同时减缓了Zn-CLDH的水化和结构再生。同时,表面吸附的HA也阻止了硼酸盐进入颗粒内部新形成的层,导致吸附性能显著下降。当使用Ca-CLDH吸附硼酸盐时,该过程主要通过钙矾石的形成发生。然而,HA的存在增强了重构LDHs的稳定性,在再生过程中阻碍了Ca-CLDH的溶解以及与B(OH)反应形成钙矾石,严重抑制了硼酸盐的吸附。