Ghojavand Sajjad, Dib Eddy, Mintova Svetlana
Normandie Université, ENSICAEN, UNICAEN, CNRS, Laboratoire Catalyse et Spectrochimie (LCS) 14000 Caen France
Chem Sci. 2023 Oct 23;14(44):12430-12446. doi: 10.1039/d3sc03934j. eCollection 2023 Nov 15.
Numerous pieces of evidence in the literature suggest that zeolitic materials exhibit significant intrinsic flexibility as a consequence of the spring-like behavior of Si-O and Al-O bonds and the distortion ability of Si-O-Si and Al-O-Si angles. Understanding the origin of flexibility and how it may be tuned to afford high adsorption selectivity in zeolites is a big challenge. Zeolite flexibility may be triggered by changes in temperature, pressure, or chemical composition of the framework and extra-framework compounds, as well as by the presence of guest molecules. Therefore, zeolite flexibility can be classified into three categories: (i) temperature and pressure-induced flexibility; (ii) guest-induced flexibility; and (iii) compositionally-induced flexibility. An outlook on zeolite flexibility and the challenges met during the precise experimental evaluations of zeolites will be discussed. Overcoming these challenges will provide an important tool for designing novel selective adsorbents.
文献中的大量证据表明,由于Si-O键和Al-O键的弹簧状行为以及Si-O-Si和Al-O-Si角的扭曲能力,沸石材料表现出显著的固有柔韧性。理解柔韧性的起源以及如何对其进行调节以在沸石中实现高吸附选择性是一项巨大的挑战。沸石的柔韧性可能由骨架和骨架外化合物的温度、压力或化学成分的变化以及客体分子的存在引发。因此,沸石的柔韧性可分为三类:(i)温度和压力诱导的柔韧性;(ii)客体诱导的柔韧性;(iii)组成诱导的柔韧性。将讨论沸石柔韧性的展望以及在沸石精确实验评估过程中遇到的挑战。克服这些挑战将为设计新型选择性吸附剂提供重要工具。