Award Abstract # 1848478
CAREER: Precise Structural Control in Transformative Catalysts for Efficient Multielectron Carbon Dioxide Reduction

NSF Org: CHE
Division Of Chemistry
Recipient: THE UNIVERSITY OF MISSISSIPPI
Initial Amendment Date: February 28, 2019
Latest Amendment Date: April 27, 2020
Award Number: 1848478
Award Instrument: Continuing Grant
Program Manager: Tong Ren
tren@nsf.gov
 (703)292-8840
CHE
 Division Of Chemistry
MPS
 Direct For Mathematical & Physical Scien
Start Date: May 1, 2019
End Date: April 30, 2025 (Estimated)
Total Intended Award Amount: $563,972.00
Total Awarded Amount to Date: $563,972.00
Funds Obligated to Date: FY 2019 = $338,383.00
FY 2020 = $225,589.00
History of Investigator:
  • Jonah Jurss (Principal Investigator)
    jwjurss@olemiss.edu
Recipient Sponsored Research Office: University of Mississippi
113 FALKNER
UNIVERSITY
MS  US  38677-9704
(662)915-7482
Sponsor Congressional District: 01
Primary Place of Performance: University of Mississippi
322 Coulter Hall
University
MS  US  38677-1848
Primary Place of Performance
Congressional District:
01
Unique Entity Identifier (UEI): G1THVER8BNL4
Parent UEI:
NSF Program(s): Chemical Catalysis,
EPSCoR Co-Funding
Primary Program Source: 01001920DB NSF RESEARCH & RELATED ACTIVIT
01002021DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 1045, 8037, 8396, 8609, 8650, 9150, 9251
Program Element Code(s): 688400, 915000
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.049

ABSTRACT

Energy consumption is a critical factor in the economy and national security. Global energy is largely obtained from burning nonrenewable fossil fuels that release carbon dioxide (CO2) as the primary waste product. Successfully recycling CO2 emissions back into energy-rich chemical compounds could produce commodity chemicals and renewable fuels economically while reducing waste. However, CO2 is hard to react and requires additional complexes (catalysts) to assist in the conversion to other molecules. Despite considerable progress, significant gaps remain in our understanding of the principles that connect catalyst structure with catalyst performance. In this project, Dr. Jurss is developing new catalysts to understand how to develop more efficient CO2 catalysts. Dr. Jurss is actively engaged in recruiting and mentoring underrepresented undergraduates and Mississippi high school students through hands-on research programs. These programs promote careers in science, technology, engineering, and mathematics (STEM). Dr. Jurss and his students contribute to a series of engaging newspaper articles in Lafayette County, MS to increase public awareness and scientific literacy through the lens of renewable energy.

With funding from both the Chemical Catalysis Program of the Chemistry Division and the Established Program to Stimulate Competitive Research (EPSCoR) of NSF, Dr. Jurss (University of Mississippi) develops molecular catalysts based on two strategies involving highly tunable redox-active ligands and well-defined bimetallic catalysts, by which multiple redox equivalents can be accumulated at modest potentials to facilitate the efficient multielectron reduction of CO2. These complementary strategies center on understanding how geometric and electronic structure dictate activity, selectivity, and mechanism. In order to control catalyst structure, multidentate ligand frameworks with limited flexibility are developed to achieve more reactive geometries or explicit interactions between multiple metal active sites. Dr. Jurss is analyzing these systems with electrochemical and spectroscopic techniques, including UV-visible and infrared spectroelectrochemistry, to establish structure-activity relationships, to elucidate reaction mechanisms, and to validate design principles for catalyst development. In parallel, Dr. Jurss is providing research opportunities in his laboratory that aim to increase the involvement of underrepresented students in STEM disciplines. These summer research experiences, along with a public outreach activity in which Dr. Jurss is writing newspaper articles on emerging energy technologies for The Oxford Eagle, support the broader impacts of the project and highlight the role of scientists in addressing global energy challenges.

This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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Sinha Roy, Sayontani and Talukdar, Kallol and Sahil, Sha Tamanna and Jurss, Jonah W. "Electrochemical and light-driven CO2 reduction by amine-functionalized rhenium catalysts: A comparison between primary and tertiary amine substitutions" Polyhedron , v.224 , 2022 https://doi.org/10.1016/j.poly.2022.115976 Citation Details
Chen, Lizhu and Su, Xiaojun and Jurss, Jonah W. "Electrocatalytic hydrogen evolution from water at low overpotentials with cobalt complexes supported by redox-active bipyridyl-NHC donors" Chinese Journal of Catalysis , v.43 , 2022 https://doi.org/10.1016/S1872-2067(22)64151-2 Citation Details
Saha, Soumen and Sahil, Sha Tamanna and Mazumder, Md. Motiur and Stephens, Alexander M. and Cronin, Bryan and Duin, Evert C. and Jurss, Jonah W. and Farnum, Byron H. "Synthesis, characterization, and electrocatalytic activity of bis(pyridylimino)isoindoline Cu( ii ) and Ni( ii ) complexes" Dalton Transactions , v.50 , 2021 https://doi.org/10.1039/D0DT03030A Citation Details
Roy, Sayontani Sinha and Talukdar, Kallol and Jurss, Jonah W. "Electro? and Photochemical Reduction of CO 2 by Molecular Manganese Catalysts: Exploring the Positional Effect of Second?Sphere Hydrogen?Bond Donors" ChemSusChem , v.14 , 2020 https://doi.org/10.1002/cssc.202001940 Citation Details
Talukdar, Kallol and Sinha Roy, Sayontani and Amatya, Eva and Sleeper, Elizabeth A. and Le Magueres, Pierre and Jurss, Jonah W. "Enhanced Electrochemical CO 2 Reduction by a Series of Molecular Rhenium Catalysts Decorated with Second-Sphere Hydrogen-Bond Donors" Inorganic Chemistry , 2020 10.1021/acs.inorgchem.0c00154 Citation Details
Su, Xiaojun M. and McCardle, Kaitlin A. and Chen, Lizhu W. and Panetier, Julien and Jurss, Jonah "Robust and Selective Cobalt Catalysts Bearing Redox-Active Bipyridyl- N -heterocyclic Carbene Frameworks for Electrochemical CO 2 Reduction in Aqueous Solutions" ACS Catalysis , v.9 , 2019 10.1021/acscatal.9b00708 Citation Details
Talukdar, Kallol W. and Issa, Asala and Jurss, Jonah "Synthesis of a Redox-Active NNP-Type Pincer Ligand and Its Application to Electrocatalytic CO2 Reduction With First-Row Transition Metal Complexes" Frontiers in Chemistry , v.7 , 2019 10.3389/fchem.2019.00330 Citation Details

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