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吸附滞后:一种统计热力学涨落理论。

Sorption Hysteresis: A Statistical Thermodynamic Fluctuation Theory.

作者信息

Shimizu Seishi, Matubayasi Nobuyuki

机构信息

York Structural Biology Laboratory, Department of Chemistry, University of York, Heslington, York YO10 5DD, United Kingdom.

Division of Chemical Engineering, Graduate School of Engineering Science, Osaka University, Toyonaka, Osaka 560-8531, Japan.

出版信息

Langmuir. 2024 Jun 4;40(22):11504-11515. doi: 10.1021/acs.langmuir.4c00606. Epub 2024 May 23.

Abstract

Hysteresis is observed commonly in sorption isotherms of porous materials. Still, there has so far been no unified approach that can both model hysteresis and assess its underlying energetics. Standard approaches, such as capillary condensation and isotherms based on interfacial equations of state, have not proved to be up to the task. Here, we show that a statistical thermodynamic approach can achieve the following needs simultaneously: (i) showing why adsorption and desorption transitions may be sharp yet continuous; (ii) providing a simple (analytic) isotherm equation for hysteresis branches; (iii) clarifying the energetics underlying sorption hysteresis; and (iv) providing macroscopic and nanoscopic perspectives to understanding hysteresis. This approach identifies the two pairs of parameters (determinable by fitting experimental data) that are required to describe the hysteresis: the free energy per molecule within the pore clusters and the cluster size in the pores. The present paper focuses on providing mechanistic insights to IUPAC hysteresis types H1, H2(a), and H2(b) and can also be applied to the isotherm types IV and V.

摘要

滞后现象在多孔材料的吸附等温线中普遍存在。然而,迄今为止,尚无一种统一的方法能够对滞后现象进行建模并评估其潜在的能量学原理。诸如毛细凝聚和基于界面状态方程的等温线等标准方法,尚未证明能够胜任这项任务。在此,我们表明一种统计热力学方法能够同时满足以下需求:(i)解释吸附和解吸转变为何可能是急剧但连续的;(ii)为滞后分支提供一个简单的(解析的)等温线方程;(iii)阐明吸附滞后现象背后的能量学原理;以及(iv)从宏观和纳米尺度视角理解滞后现象。这种方法确定了描述滞后现象所需的两对参数(可通过拟合实验数据确定):孔簇内每个分子的自由能以及孔中的簇尺寸。本文着重于为国际纯粹与应用化学联合会(IUPAC)的滞后类型H1、H2(a)和H2(b)提供机理见解,并且也可应用于IV型和V型等温线。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/814e/11155257/7cc3cada3d93/la4c00606_0001.jpg

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