School of Metallurgy and Environment, Central South University, Changsha, Hunan, 410083, China.
Department of Chemistry, University of South Florida, Tampa, FL, 33620, USA.
Small. 2021 May;17(20):e2007994. doi: 10.1002/smll.202007994. Epub 2021 Mar 21.
Rhenium is one of the most valuable elements found in nature, and its capture and recycle are highly desirable for resource recovery. However, the effective and efficient collection of this material from industrial waste remains quite challenging. Herein, a tetraphenylmethane-based cationic polymeric network (CPN-tpm) nanotrap is designed, synthesized, and evaluated for ReO recovery. 3D building units are used to construct imidazolium salt-based polymers with positive charges, which yields a record maximum uptake capacity of 1133 mg g for ReO collection as well as fast kinetics ReO uptake. The sorption equilibrium is reached within 20 min and a k value of 8.5 × 10 mL g is obtained. The sorption capacity of CPN-tpm remains stable over a wide range of pH values and the removal efficiency exceeds 60% for pH levels below 2. Moreover, CPN-tpm exhibits good recyclability for at least five cycles of the sorption-desorption process. This work provides a new route for constructing a kind of new high-performance polymeric material for rhenium recovery and rhenium-contained industrial wastewater treatment.
铼是自然界中最有价值的元素之一,从工业废料中有效和高效地回收这种物质以进行资源回收是非常可取的。在此,设计、合成并评估了一种基于四苯甲烷的阳离子聚合网络(CPN-tpm)纳米陷阱,以回收 ReO。使用 3D 建筑单元构建带正电荷的基于离子液体的聚合物,从而实现了记录最高的 ReO 收集容量 1133mg g,以及快速的 ReO 吸收动力学。吸附平衡在 20 分钟内达到,k 值为 8.5×10 mL g。CPN-tpm 的吸附容量在很宽的 pH 值范围内保持稳定,去除效率超过 60%,pH 值低于 2。此外,CPN-tpm 在吸附-解吸过程中至少循环五次仍具有良好的可回收性。这项工作为构建一种用于回收铼和含铼工业废水处理的新型高性能聚合物材料提供了一条新途径。