硼
吸附
多元醇
共价键
堆积
结晶度
化学工程
材料科学
金属有机骨架
密度泛函理论
晶体工程
卤水
纳米技术
盐(化学)
化学
无机化学
分子
高分子化学
水溶液
有机化学
螯合作用
齿合度
碳化硼
机械化学
羧酸盐
作者
Wenqing Wang,Hao Li,Yanan Huang,Yongquan Zhou,Jianming Pan,Zhongyi Jiang
标识
DOI:10.1002/anie.202520582
摘要
Abstract Covalent organic frameworks (COFs) hold grand promise in chemical separations owing to their tunable pore architectures and rich functionalities. However, their practical efficacy is often plagued by disordered stacking and restricted accessibility of functional groups. In this study, we present a side‐chain engineering strategy, which synergistically manipulates pore‐wall functionalization, dynamic structural reconstruction, and bond stabilization, to fabricate hollow, stable, and polyol‐functionalized COFs (HSPCOF) adsorbents for high‐efficiency capture of boron from brine. For the first time, we demonstrate that side‐chain‐engineering can be employed to introduce polyol groups, enabling boron chelation while concurrently enhancing the crystallinity of COFs. The resultant HSPCOF exhibits a high specific surface area, interconnected channels, and exceptional boron adsorption capacity of 150.05 mg g −1 at 298 K, within 180 min, 10.29‐fold higher than commercial resin MK51. Density functional theory (DFT) simulations reveal that the HSPCOF preferentially binds borate anions via bidentate cyclic ester formation with polyol groups, affording strong affinity and high selectivity. Remarkably, HSPCOF maintains robust borate anion adsorption performance in harsh Salt Lake brine, achieving 848.79 mg g −1 capacity and 91.51% removal efficiency, validating its practical utility. This work affords generic guidelines for designing crystal and functionally precise COF materials by side‐chain engineering.
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