Liaoning Key Laboratory of Lignocellulosic Chemistry and Biomaterials, College of Light Industry and Chemical Engineering, Dalian Polytechnic University, Dalian 116034, China.
Jinxi Research Institute of Chemical Industry Company Limited, Huludao 125000, China.
J Colloid Interface Sci. 2022 Nov;625:651-663. doi: 10.1016/j.jcis.2022.06.086. Epub 2022 Jun 23.
A separable spherical bio-adsorbent (CMC-Cr) was prepared for capturing heavy metal ions by simple coordination and cross-linking between targeted ions of Cr and carboxymethyl cellulose (CMC). A simple alternation of the CMC incorporation allowed the interconnected networks within the microspheres of preformed solid CMC to be adjusted. The excellent network structure could achieve the maximum collision between the adsorbent and the heavy metal cations in the wastewater. Through investigations, CMC-Cr-2 beads were determined as the optimal adsorbent. The adsorption performance of novel materials was evaluated by examining their adsorption behavior on Pb(II) and Co(II) under both static and dynamic conditions. The results showed that the adsorption behavior of CMC-Cr-2 beads on both two heavy metal cations could be fully reflected by the Freundlich model. Under the theoretical conditions, the maximum adsorption capacities were 97.26 and 144.74 mg/g. The kinetic results for the adsorption of two heavy metal cations on CMC-Cr-2 beads were consistent with the Pseudo-second-order kinetic model. Moreover, the correlation coefficient of the Thomas model was significant in the dynamic adsorption performance tests. Five regeneration cycle studies were successfully carried out on CMC-Cr-2 beads to evaluate reusability and stability. The applicability of CMC-Cr-2 beads in authentic aqueous solutions (both the single and binary pollutant systems) was also studied, and the results indicated that CMC-Cr-2 beads had a high potential for practical implementation. Furthermore, by analyzing the surface interactions of two heavy metal cations with the CMC-Cr-2 beads based on FTIR and XPS characterization, a basic understanding of the interaction between bio-sorbents and pollutants in wastewater can be obtained.
一种可分离的球形生物吸附剂(CMC-Cr)是通过目标 Cr 离子与羧甲基纤维素(CMC)之间的简单配位和交联来制备的,用于捕获重金属离子。简单改变 CMC 的加入量可以调整预形成的固体 CMC 微球内的互联网络。这种优异的网络结构可以实现吸附剂与废水中重金属阳离子之间的最大碰撞。通过研究,确定 CMC-Cr-2 珠粒是最佳吸附剂。通过在静态和动态条件下研究新型材料对 Pb(II)和 Co(II)的吸附行为,评估了新材料的吸附性能。结果表明,CMC-Cr-2 珠粒对两种重金属阳离子的吸附行为均能完全符合 Freundlich 模型。在理论条件下,最大吸附容量分别为 97.26 和 144.74 mg/g。两种重金属阳离子在 CMC-Cr-2 珠粒上的吸附动力学结果与拟二级动力学模型一致。此外,Thomas 模型的相关系数在动态吸附性能测试中显著。成功进行了五次 CMC-Cr-2 珠粒的再生循环研究,以评估其可重复使用性和稳定性。还研究了 CMC-Cr-2 珠粒在真实水溶液(单一组分和二元污染物体系)中的适用性,结果表明 CMC-Cr-2 珠粒具有很高的实际应用潜力。此外,通过基于 FTIR 和 XPS 表征分析两种重金属阳离子与 CMC-Cr-2 珠粒之间的表面相互作用,对生物吸附剂与废水中污染物之间的相互作用有了基本的了解。