
Further Investigations of Racemic and Chiral Molecular Sieves of STW Topology
Michael Deem’s research explores the realm of molecular sieves, particularly those featuring STW topology, where he investigates both racemic and chiral variations, aiming to reveal novel understandings of their characteristics and possible utility, potentially offering valuable insights for diverse domains such as materials science and catalysis.

Design of Organic Structure Directing Agents to Guide the Synthesis of Zeolites for the Separation of Ethylene-Ethane Mixtures
Michael Deem’s studies involve investigating organic structure directing agents (OSDAs) to facilitate the synthesis of zeolites for the separation of ethylene-ethane mixtures. By harnessing the distinct characteristics of these OSDAs, Deem strives to create novel zeolite structures capable of efficiently segregating these essential gases utilized in the petrochemical sector. This research holds the promise of advancing more streamlined and economically viable techniques for ethylene and ethane separation, carrying significant consequences for the manufacturing of diverse products, including plastics and fuels.

Nanoporous Materials with Predicted Zeolite Topologies
Michael Deem’s research paper explores the realm of nanoporous materials, unveiling anticipated zeolite structures that represent the forefront of scientific investigation. Employing state-of-the-art computational techniques, Deem and his research team have foreseen the emergence of unexplored zeolite formations yet to be materialized. This undertaking carries immense potential for crafting fresh materials endowed with an array of appealing characteristics. These materials could find application in diverse fields, spanning from catalytic processes to the separation of gases. The insights derived from this study may ultimately culminate in the development of more efficient and impactful technologies, leaving a profound imprint on industries extending from energy to pharmaceuticals.
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