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A new type of C2H2 binding site in a cis-bridging hexafluorosilicate ultramicroporous material that offers trace C2H2 capture

  • Bai Qiao Song
  • , Mei Yan Gao
  • , Lisa Mercene van Wyk
  • , Cheng Hua Deng
  • , Alan C. Eaby
  • , Shi Qiang Wang
  • , Shaza Darwish
  • , Dan Li
  • , Shao Jie Qin
  • , Yun Lei Peng
  • , Qing Yuan Yang
  • , Leonard J. Barbour
  • , Michael J. Zaworotko
  • Chengdu University of Technology
  • University of Limerick
  • Stellenbosch University
  • China University of Petroleum - Beijing

科研成果: 期刊稿件文章同行评审

4 引用 (Scopus)

摘要

Hybrid ultramicroporous materials (HUMs) comprising hexafluorosilicate (SiF62−, SIFSIX) and their variants are promising physisorbents for trace acetylene (C2H2) capture and separation, where the inorganic anions serve as trans-bridging pillars. Herein, for the first time, we report a strategy of fluorine binding engineering in these HUMs via switching the coordination mode of SIFSIX from traditional trans to rarely explored cis. The first example of a rigid HUM involving cis-bridging SIFSIX, SIFSIX-bidmb-Cu (bidmb = 1,4-bis(1-imidazolyl)-2,5-dimethylbenzene), is reported. The resulting self-interpenetrated network is found to be water stable and exhibits strong binding to C2H2 but weak binding to C2H4 and CO2, affording a high Qst of 55.7 kJ mol−1 for C2H2, a high C2H2 uptake of 1.86 mmol g−1 at 0.01 bar and high ΔQst values. Breakthrough experiments comprehensively demonstrate that SIFSIX-bidmb-Cu can efficiently capture and recover C2H2 from 50/50 or 1/99 C2H2/CO2 and C2H2/C2H4 binary mixtures. In situ single crystal X-ray diffraction (SCXRD) combined with dispersion-corrected density functional theory (DFT-D) calculations reveals that the C2H2 binding site involves two cis-SiF62− anions in close proximity (F⋯F distance of 7.16 Å), creating a new type of molecular trap that affords six uncoordinated fluoro moieties to chelate each C2H2via sixfold C-H⋯F hydrogen bonds. This work therefore provides a new strategy for binding site engineering with selective C2H2 affinity to enable trace C2H2 capture.

源语言英语
页(从-至)9010-9019
页数10
期刊Chemical Science
16
20
DOI
出版状态已出版 - 23 4月 2025

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