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The development of a comprehensive toolbox based on multi-level,high-throughput screening of MOFs for CO/N2 separations
Authors:Nakul Rampal  Abdulmalik Ajenifuja  Andi Tao  Christopher Balzer  Matthew S. Cummings  Arwyn Evans  Rocio Bueno-Perez  David J. Law  Leslie W. Bolton  Camille Petit  Flor Siperstein  Martin P. Attfield  Megan Jobson  Peyman Z. Moghadam  David Fairen-Jimenez
Abstract:The separation of CO/N2 mixtures is a challenging problem in the petrochemical sector due to the very similar physical properties of these two molecules, such as size, molecular weight and boiling point. To solve this and other challenging gas separations, one requires a holistic approach. The complexity of a screening exercise for adsorption-based separations arises from the multitude of existing porous materials, including metal–organic frameworks. Besides, the multivariate nature of the performance criteria that needs to be considered when designing an optimal adsorbent and a separation process – i.e. an optimal material requires fulfillment of several criteria simultaneously – makes the screening challenging. To address this, we have developed a multi-scale approach combining high-throughput molecular simulation screening, data mining and advanced visualization, as well as process system modelling, backed up by experimental validation. We have applied our recent advances in the engineering of porous materials'' morphology to develop advanced monolithic structures. These conformed, shaped monoliths can be used readily in industrial applications, bringing a valuable strategy for the development of advanced materials. This toolbox is flexible enough to be applied to multiple adsorption-based gas separation applications.

The separation of challenging mixtures through adsorption is a multidimensional problem that requires a holistic approach. Our toolbox combines experiments, molecular and process simulations with data visualization to find optimal, porous materials.
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