Fu Peng, Linwei He, Ruwei Chen, Yang Yang, Jinming Zheng, Ke He, Zhonglin Ma, Wenqi Zhang, Yunnan Tao, Lingyi Li, Qixin Guo, Xu Guo, Jie Li, Guo‐Hao Zhang, Junchang Chen, S. H. Tang, Xing‐Hui Qi, Long Chen, Xiaoqin Nie, Chao Zhao, Zhifang Chai, Shuao Wang
Efficient capture of radioactive iodine is crucial for nuclear safety and environmental protection, yet it remains challenging under dynamic, high-temperature off-gas conditions. Herein, we systematically evaluated the in-depth iodine removal performance of two antimony sulfide frameworks, a 2D-layered and a 3D-channeled architecture (denoted as the 2D-Sb 2 S 3 framework and 3D-Sb 2 S 3 framework), featuring electron-rich sulfide sites and soft Lewis acid antimony ions. Both materials exhibit modest static iodine uptake capacities (3.32 and 3.12 g g –1, respectively), while the 3D framework achieves a superior dynamic capacity of 1.25 g g –1 at 373 K, outperforming benchmark materials such as SCU-SnS (0.88 g g –1 ) and Ag-loaded silica gel (0.54 g g –1 ). The application potential of the 3D framework was further confirmed by the continuous accumulation of 131 I 2 in a radioactive dynamic adsorption setup. Mechanism analysis combined with powder X-ray diffraction, X-ray photoelectron spectroscopy, and time-dependent Raman spectroscopy reveals that iodine uptake proceeds via multiple pathways, including charge-transfer interactions with incorporated macrocyclic polyamines and the redox-induced formation of SbI 3 . This work introduces a new design paradigm for redox-active metal sulfide adsorbents by leveraging soft acid/base interactions and framework reactivity, offering a viable approach for advanced iodine capture in nuclear waste management.