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氢键组装与阴离子配位化学相遇:用于氙/氪分离的框架塑造和极性调节

Hydrogen-Bonding Assembly Meets Anion Coordination Chemistry: Framework Shaping and Polarity Tuning for Xenon/Krypton Separation.

作者信息

Xie Yi, Ding Xiaojun, Wang Jianchen, Ye Gang

机构信息

Collaborative Innovation Center of Advanced Nuclear Energy Technology, Institute of Nuclear and New Energy Technology, Tsinghua University, 100084, Beijing, China.

出版信息

Angew Chem Int Ed Engl. 2023 Dec 4;62(49):e202313951. doi: 10.1002/anie.202313951. Epub 2023 Nov 6.

Abstract

Hybrid hydrogen-bonded (H-bonded) frameworks built from charged components or metallotectons offer diverse guest-framework interactions for target-specific separations. We present here a study to systematically explore the coordination chemistry of monovalent halide anions, i.e., F , Cl , Br , and I , with the aim to develop hybrid H-bond synthons that enable the controllable construction of microporous H-bonded frameworks exhibiting fine-tunable surface polarity within the adaptive cavities for realistic xenon/krypton (Xe/Kr) separation. The spherical halide anions, especially Cl , Br , and I , are found to readily participate in the charge-assisted H-bonding assembly with well-defined coordination behaviors, resulting in robust frameworks bearing open halide anions within the distinctive 1D pore channels. The activated frameworks show preferential binding towards Xe (IAST Xe/Kr selectivity ca. 10.5) because of the enhanced polarizability and the pore confinement effect. Specifically, dynamic column Xe/Kr separation with a record-high separation factor (SF=7.0) among H-bonded frameworks was achieved, facilitating an efficient Xe/Kr separation in dilute, CO -containing gas streams exactly mimicking the off-gas of spent nuclear fuel (SNF) reprocessing.

摘要

由带电组分或金属构造单元构建的混合氢键框架为目标特异性分离提供了多样的客体 - 框架相互作用。我们在此展示一项研究,旨在系统地探索单价卤化物阴离子(即F⁻、Cl⁻、Br⁻和I⁻)的配位化学,目的是开发混合氢键合成子,以实现微孔氢键框架的可控构建,这些框架在适应性空腔内具有可微调的表面极性,用于实际的氙/氪(Xe/Kr)分离。发现球形卤化物阴离子,尤其是Cl⁻、Br⁻和I⁻,易于通过明确的配位行为参与电荷辅助氢键组装,从而在独特的一维孔道内形成带有开放卤化物阴离子的坚固框架。由于极化率增强和孔限效应,活化后的框架对Xe表现出优先吸附(IAST Xe/Kr选择性约为10.5)。具体而言,在氢键框架中实现了创纪录的高分离因子(SF = 7.0)的动态柱Xe/Kr分离,促进了在精确模拟乏核燃料(SNF)后处理废气的含CO₂稀气流中高效的Xe/Kr分离。

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