Huiping Tang, Zhi Chen
The development of adsorbents that combine high efficiency, selectivity, and long-term stability under extreme conditions remains a critical challenge for the practical remediation of radioactive 99 TcO 4 – in nuclear wastewater. Herein, we report a three-dimensional porous cationic covalent organic polymer (3D-PiCOP) fabricated via a postsynthetic modification strategy. Benzene-rich framework with permanently charged – + N– si. This material features a stable betes, which not only delivers a high ReO 4 – uptake capacity of 390.376 mg/g and rapid equilibrium within 5 min but also exhibits exceptional stability after exposure to harsh environments, retaining over 198.956 mg/g capacity after being separately treated with 800 kGy γ-irradiation and 12 M HNO 3 . Moreover, 3D-PiCOP maintains >50% capture efficiency in multianion systems and can be reused over 8 cycles, achieving 91.7% capture in simulated high-salinity Hanford wastewater. Mechanistic studies reveal that the high performance arises from an electrostatic-attraction-driven ion-exchange process, as supported by spectroscopic and Density Functional Theory (DFT) analyses. This work highlights a stable and scalable material design that effectively addresses the durability bottleneck in treating challenging radioactive effluents.