Choi Hyun June, Bruce Elliott L, Kencana Kevin S, Hong Jingeon, Wright Paul A, Hong Suk Bong
Center for Ordered Nanoporous Materials Synthesis, Division of Environmental Science and Engineering, POSTECH, 37673, Pohang, Korea.
EaStCHEM School of Chemistry, University of St Andrews, Purdie Building, North Haugh, KY16 9ST, St Andrews, UK.
Angew Chem Int Ed Engl. 2023 Sep 4;62(36):e202305816. doi: 10.1002/anie.202305816. Epub 2023 Jun 30.
An understanding of the CO adsorption mechanisms on small-pore zeolites is of practical importance in the development of more efficient adsorbents for the separation of CO from N or CH . Here we report that the CO isotherms at 25-75 °C on cesium-exchanged phillipsite zeolite with a Si/Al ratio of 2.5 (Cs-PHI-2.5) are characterized by a rectilinear step shape: limited uptake at low CO pressure (P ) is followed by highly cooperative uptake at a critical pressure, above which adsorption rapidly approaches capacity (2.0 mmol g ). Structural analysis reveals that this isotherm behavior is attributed to the high concentration and large size of Cs ions in dehydrated Cs-PHI-2.5. This results in Cs cation crowding and subsequent dispersal at a critical loading of CO , which allows the PHI framework to relax to its wide pore form and enables its pores to fill with CO over a very narrow range of P . Such a highly cooperative phenomenon has not been observed for other zeolites.
了解小孔沸石上的CO吸附机制对于开发更高效的用于从N或CH中分离CO的吸附剂具有实际重要性。在此我们报道,在25 - 75°C下,硅铝比为2.5的铯交换丝光沸石(Cs - PHI - 2.5)上的CO等温线具有直线阶梯形状:在低CO压力(P)下吸附量有限,随后在临界压力下出现高度协同吸附,高于该临界压力吸附迅速接近饱和容量(2.0 mmol g)。结构分析表明,这种等温线行为归因于脱水Cs - PHI - 2.5中Cs离子的高浓度和大尺寸。这导致Cs阳离子拥挤,并在CO的临界负载量下随后分散,这使得PHI骨架松弛到其宽孔形式,并使其孔在非常窄的P范围内充满CO。这种高度协同的现象在其他沸石中尚未观察到。