Ding Siping, Wang Dong, Wang Xuefen
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, PR China.
Sep Purif Technol. 2022 Nov 15;301:122033. doi: 10.1016/j.seppur.2022.122033. Epub 2022 Sep 2.
The global outbreak and prevalence of coronavirus disease 2019 (COVID-19) has triggered an urgent demand for family hemodialysis equipment. It is particularly vital to design and apply superior adsorbents to adsorb toxins for reducing the usage of dialysate. In this work, hierarchically structural MgAl layered double oxides (LDO) with stretchable nanopores were exploited through a facile one-pot trisodium citrate (TSC) assistant hydrothermal reaction followed by calcination treatment for effectively adsorbing protein-bound uremic toxins such as hippuric acid (HA) or indoxyl sulfate (IS). The optimized MgAl LDO possessed flower-like spherical morphology, ultrahigh specific surface area (187.3 m/g) and uniquely stretchable nanopores, which were more conducive to incorporating anions due to their unique memory effect endowing them with promising adsorption capacities for HA or IS. And the adsorption data could be better conformed to pseudo-second-order kinetic model and Langmuir isotherm determining that the maximum adsorption capacity of HA and IS was 129.8 mg/g and 63.1 mg/g, respectively. Furthermore, the computation of molecular size paired with the analysis of adsorption mechanism accurately revealed that high-efficiency toxin capture was mainly attributed to electrostatic interaction for internal intercalation and surface adsorption. Therefore, the application of such delicate LDO as new premium adsorbent would facilitate the development and popularization of family hemodialysis equipment.
2019年冠状病毒病(COVID-19)的全球爆发和流行引发了对家庭血液透析设备的迫切需求。设计和应用优质吸附剂来吸附毒素以减少透析液的使用尤为重要。在这项工作中,通过简便的一锅法柠檬酸钠(TSC)辅助水热反应,随后进行煅烧处理,开发出具有可拉伸纳米孔的分级结构MgAl层状双氢氧化物(LDO),以有效吸附蛋白质结合的尿毒症毒素,如马尿酸(HA)或硫酸吲哚酚(IS)。优化后的MgAl LDO具有花状球形形态、超高比表面积(187.3 m²/g)和独特的可拉伸纳米孔,由于其独特的记忆效应使其更有利于结合阴离子,赋予它们对HA或IS有良好的吸附能力。吸附数据能更好地符合准二级动力学模型和朗缪尔等温线,确定HA和IS的最大吸附容量分别为129.8 mg/g和63.1 mg/g。此外,分子尺寸计算与吸附机理分析准确表明,高效毒素捕获主要归因于内部插层和表面吸附的静电相互作用。因此,这种精致的LDO作为新型优质吸附剂的应用将促进家庭血液透析设备的开发和普及。