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Software and Methods for Computational Inverse Design of Soft Materials with Physical Relevance


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dc.contributor.advisorHoward, Michael
dc.contributor.authorPetix, C. Levi
dc.date.accessioned2026-07-29T16:16:54Z
dc.date.available2026-07-29T16:16:54Z
dc.date.issued2026-07-29
dc.identifier.urihttps://etd.auburn.edu/handle/10415/10504
dc.description.abstractSoft materials are used in a wide range of applications, but they remain difficult to design because their properties emerge from coupled molecular interactions and struc- tures. This dissertation develops and applies computational methods for inverse design of soft materials, with an emphasis on physically meaningful models, reproducible work- flows, and practical simulation tools. First, open-source Python software is developed to make molecular-simulation workflows for optimization more transparent, reusable, and extensible. Second, surrogate models based on Chebyshev interpolation and Smolyak sparse grids are used to reduce the cost of relative-entropy-based inverse design for low- dimensional interaction potentials. Third, relative-entropy minimization is used to coarse- grain star poly(ethylene glycol) into simpler bead-spring models. Finally, molecular sim- ulations are used to determine how polymer architecture affects axial dispersion in mi- crochannels. Together, these studies provide practical approaches for modeling, design- ing, and understanding soft materials using molecular simulation.en_US
dc.rightsEMBARGO_NOT_AUBURNen_US
dc.subjectChemical Engineeringen_US
dc.titleSoftware and Methods for Computational Inverse Design of Soft Materials with Physical Relevanceen_US
dc.typePhD Dissertationen_US
dc.embargo.lengthMONTHS_WITHHELD:60en_US
dc.embargo.statusEMBARGOEDen_US
dc.embargo.enddate2031-07-29en_US
dc.creator.orcid0000-0002-0483-7495en_US

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