Magnetic resonance insights into engineered biofilm-inspired systems

dc.contributor.advisorChairperson, Graduate Committee: Catherine Kirklanden
dc.contributor.authorWillett, Matthew Richarden
dc.contributor.otherThis is a manuscript style paper that includes co-authored chapters.en
dc.date.accessioned2025-12-24T19:59:29Z
dc.date.available2025-12-24T19:59:29Z
dc.date.issued2025en
dc.description.abstractThis dissertation explores how nuclear magnetic resonance (NMR) techniques can be applied to study engineered biofilm-inspired systems in environmental and geologic settings. Two systems were investigated: (1) aerobic granular sludge (AGS), biofilm aggregates used in wastewater treatment, and (2) microbially-induced calcium carbonate precipitation (MICP), a biofilm-based sealing strategy applied to seal fractures in subsurface shale rock formations. In the first system, magnetic resonance imaging (MRI) was used to characterize the relaxation-weighted contrast of model biofilms (or "phantoms") constructed to mimic the extracellular polymeric substances (EPS) found in AGS. Key biofilm components were studied for their contributions to T1 and T2 contrast, including gel-forming polysaccharides, extracellular proteins, and bacterial cells. Results revealed that biopolymer structure and composition can play a major role in MRI contrast, demonstrating the potential of relaxation-weighted MRI to study biofilm heterogeneity without invasive labeling or sectioning. In the second system, NMR relaxometry and magnetic resonance velocimetry (MRV) was used to monitor MICP-treatment in shale fractures at elevated temperatures (60 °C). T2 relaxation profiles tracked porosity changes during biomineralization and 3D velocity mapping provided insight into the evolution of flow channeling and tortuosity as sealing progressed. NMR findings were also complemented by X-ray microtomography (micro-CT) imaging analysis and 2D local cubic law (LCL) flow simulations. Overall, effective permeability reductions were observed, though polymer additives and surfactants were explored to make MICP-treatment more efficient. Together, these studies highlight the versatility of NMR in assessing both biological structure and reactive transport processes in opaque systems. Future work should build on these methods by incorporating additional imaging contrast mechanisms (for example, CEST and CHESS) and exploring dynamic in situ measurements.en
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/19448en
dc.language.isoenen
dc.publisherMontana State University - Bozeman, College of Engineeringen
dc.rights.holderCopyright 2025 by Matthew Richard Willetten
dc.subject.lcshNuclear magnetic resonanceen
dc.subject.lcshBiofilmsen
dc.subject.lcshMicrobial biotechnologyen
dc.subject.lcshMagnetic resonance imagingen
dc.titleMagnetic resonance insights into engineered biofilm-inspired systemsen
dc.typeDissertationen
mus.data.thumbpage101en
thesis.degree.committeemembersMembers, Graduate Committee: Adrienne J. Phillips; Brent M. Peyton; Joseph D. Seymouren
thesis.degree.departmentChemical & Biological Engineeringen
thesis.degree.genreDissertationen
thesis.degree.namePhDen
thesis.format.extentfirstpage1en
thesis.format.extentlastpage244en

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