Khalfaoui M, Knani S, Hachicha M A, Lamine A Ben
Laboratoire de Physique Quantique, Département de Physique, Faculté des Sciences de Monastir 5019, Tunisia.
J Colloid Interface Sci. 2003 Jul 15;263(2):350-6. doi: 10.1016/s0021-9797(03)00139-5.
New theoretical expressions to model the five adsorption isotherm types have been established. Using the grand canonical ensemble in statistical physics, we give an analytical expression to each of five physical adsorption isotherm types classified by Brunauer, Emett, and Teller, often called BET isotherms. The establishment of these expressions is based on statistical physics and theoretical considerations. This method allowed estimation of all the mathematical parameters in the models. The physicochemical parameters intervening in the adsorption process that the models present could be deduced directly from the experimental adsorption isotherms by numerical simulation. We determine the adequate model for each type of isotherm, which fixes by direct numerical simulation the monolayer, multilayer, or condensation character. New equations are discussed and results obtained are verified for experimental data from the literature. The new theoretical expressions that we have proposed, based on statistical physics treatment, are rather powerful to better understand and interpret the various five physical adsorption type isotherms at a microscopic level.
已建立了用于模拟五种吸附等温线类型的新理论表达式。利用统计物理学中的巨正则系综,我们给出了由布鲁瑙尔、埃米特和泰勒分类的五种物理吸附等温线类型(通常称为BET等温线)中每一种的解析表达式。这些表达式的建立基于统计物理学和理论考量。该方法能够估计模型中的所有数学参数。模型中涉及吸附过程的物理化学参数可通过数值模拟直接从实验吸附等温线推导得出。我们确定了每种等温线类型的合适模型,通过直接数值模拟确定其单层、多层或凝聚特性。对新方程进行了讨论,并对文献中的实验数据验证了所得结果。我们基于统计物理处理提出的新理论表达式,对于在微观层面更好地理解和解释各种五种物理吸附类型等温线相当有力。