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Primary Faculty » Energy, Environment, and Sustainability

Our faculty develop processes, materials, and technologies that address challenges in energy production, resource use, and environmental sustainability. Research spans molecular separations and membranes, catalysis and reaction engineering, energy and semiconductor materials, sustainable manufacturing, and the design and analysis of resource-efficient processes. We integrate experiments, molecular and materials design, modeling, and systems-level analysis to improve how materials and energy are produced, separated, recovered, and used while reducing resource consumption and environmental impact.

Faculty

Photo of Travis J. Anderson Travis Anderson Ph.D. Recruitment Coordinator & Professor
(352) 294-7584

My group studies the fabrication of semiconductor devices. We study the relationship between material properties and electrical behavior to solve problems associated with doping, contacts, defects, and interfaces. We also develop novel process steps to understand and mitigate performance-limiting issues such as thermal management and reliability in order to advance the next generation of semiconductors to realize the full potential promised by the advanced material properties.…

Photo of Won Tae Choi Won Tae Choi Assistant Professor
(352) 392-9102

My research group focuses on rational design and engineering of next generation electrochemical systems for human convenience, energy, environment, and sustainability. We seek to address key questions related to the electrochemical systems by leveraging electrochemistry, materials chemistry, and device engineering. Our interests include (1) synthesis of new materials for electrochemical devices, (2) combining electroanalytical chemistry (i.e.…

Photo of Helena Hagelin-Weaver Helena Hagelin-Weaver Associate Professor, and Dr. and Mrs. Frederick C. Edie Term Professor
(352) 392-6585

WE WORK ON HETEROGENEOUS CATALYST DEVELOPMENT in my laboratory and our ultimate goal is to obtain a fundamental understanding of these catalysts at the atomic level. Our approach is to synthesize well-defined heterogeneous catalysts using nanoparticle oxides with various shapes and sizes as supports and carefully control the deposition of active metal onto these supports using atomic layer deposition (ALD), or other more conventional catalyst synthesis methods, such as precipitation-deposition or incipient wetness impregnation.…

Photo of Peng Jiang Peng Jiang Professor
(352) 392-2189

WE ARE BROADLY INTERESTED IN DEVELOPING new chemical, physical, engineering, and biological applications related to self-assembled nanostructured materials. Our current research is focused on the following four topics:

SELF-ASSEMBLED PHOTONIC & PLASMONIC CRYSTALS Photonic crystals and plasmonic crystals offer unprecedented opportunities for the realization of all-optical integrated circuits and high-speed optical computation. Our group is developing a number of scalable colloidal self-assembly technologies to control, manipulate, and amplify light on the sub-wavelength scale.…

Photo of Joshua D. Moon Joshua Moon Assistant Professor
901-569-7522

Our group focuses on designing advanced polymer materials for clean energy, clean water, and environmental sustainability.  We combine modular polymer synthesis with experimental tools that probe both molecular-scale and macroscopic transport in polymers with the goal of informing predictive design of the next generation of materials for membrane-driven separations.

A few areas of interest to our group are:

Predicting gas separation membrane performance in realistic environments

Polymer membranes offer a competitive option for energy-efficient carbon capture and hydrocarbon purification; however, many promising materials developed in the lab fail to perform as well in the field. …

Photo of Juan Manuel Restrepo-Flórez Juan Manuel Restrepo-Flórez Assistant Professor
(352) 392-6591

In my group, we leverage our expertise in optimization and multhyphysics simulations to formulate mathematical models enabling the identification of new, sustainable, and innovative processes, and materials. We are motivated by the grand-challenges in sustainability: (1) the need to develop carbon-neutral processes to produce energy and chemicals, (2) the need to minimize waste generation, and (3) the urgency to find mitigation strategies to alleviate the damage already done.…

Photo of Janani Sampath Janani Sampath Assistant Professor

WE STUDY POLYMERS, PROTEINS, AND THEIR HYBRIDS TO DESIGN THE NEXT GENERATION OF SOFT MATERIALS using molecular dynamics simulations, high throughout computations, and enhanced sampling methods. To sustain materials discovery in the future given the limited resources at our disposal, predictive engineering techniques must be employed to allow for efficient design and optimization of materials.…

Photo of Jason F. Weaver Jason Weaver Dow Chemical Company Foundation Term Professor
(352) 392-0869

OUR RESEARCH FOCUSES ON ADVANCING THE MOLECULAR-LEVEL understanding of surface chemical reactions that are important in applications of heterogeneous catalysis. My students and I investigate chemical reactions on solid surfaces using a wide array of analysis methods based on ultrahigh vacuum (UHV) surface chemistry and physics, including methods that provide information about surface reaction kinetics, adsorbed intermediates, atomic scale surface structure and the chemical states of adsorbed molecules and atoms of the solid.…

Photo of Kirk J. Ziegler Kirk Ziegler Charles A. Stokes Endowed Professor
(352) 392-3412

NEARLY ALL NANOMATERIAL APPLICATIONS REQUIRE an interface with other materials, including, for example, polymers in composites, electrodes in devices, pharmaceuticals in drug delivery, body fluids and cells in bioimaging and biosensors, or analytes in chemical sensors. Our group focuses on developing a fundamental understanding of interfaces in nanoscale systems, which can have far-reaching implications to various fields of nanotechnology.…