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Manos Mavrikakis

Manos Mavrikakis

Ernest Micek Distinguished Chair
James A. Dumesic Professor
Vilas Distinguished Achievement Professor

New materials with properties tailored to specific applications often represent the heart of novel chemical processes and important technological advances. The fundamental understanding of the correlation between materials structure and properties is the key to designing new materials with the desired properties. The primary focus of our research is on the atomic-scale materials design, based on first-principles electronic structure calculations. We are applying state-of-the-art theoretical methods to study a range of important surface phenomena including adsorption, diffusion and chemical reactions on a variety of thermal catalytic, electrocatalytic, and semiconductor surfaces.

These quantum chemical and solid-state physics methods take advantage of the impressive computational speed provided by modern supercomputers. Recent progress in theory allows for approximate solutions to the exact electronic structure problem to be obtained with reasonable accuracy, compared to experimental data. As a result, we can now calculate good estimates for binding energies and diffusion barriers of atoms and molecules on, for example, transition metal surfaces. Moreover, site preferences, adsorbate interactions, nature of specific bonds can all be investigated thoroughly and complement the information provided by advanced experimental techniques. Sophisticated computational algorithms are implemented for the determination of the detailed reaction paths connecting reactants and products of elementary reaction steps of important reaction schemes.

In the course of revealing all this information at the atomic and molecular level, important reaction intermediates, often spectroscopically elusive, can be discovered, thus guiding new experimental efforts towards unexplored territory. The detailed study of competing reaction paths, through the calculation of the corresponding activation energy barriers, allows for the isolation of electronic and geometric factors determining reaction selectivity in a way that is not accessible to experiments, where usually a set of overlapping factors act simultaneously.

Energetics from quantum mechanics is used in mean-field and stochastic microkinetic models that allow for direct comparison with experimentally determined quantities such as reactions rates, activation energy and reactions orders. Such a comparison allows for the iterative determination of the nature of the active site as a function of reaction conditions.

Our general research strategy is to study trends in chemical reactivity of solid surfaces and identify discontinuities in their behavior. Explaining trends and discontinuities can help us understand the fundamental reasons behind changes in reactivity. We can then proceed, in strong interaction with experiments, to design surfaces characterized by the desired properties. Modern machine learning methods are enabling us to study relevant phenomena with characteristic length/time scales much larger than those that direct quantum mechanical methods can handle.

The major focus of our current research efforts is on the fundamental reactivity studies for a wide range of important applications, including: fuel cells electrocatalysis, bimetallic catalysis, the development of novel low temperature and environmentally benign catalytic processes, and sensors based on chemoresponsive systems.

Department

Chemical & Biological Engineering

Contact

2010, Engineering Hall
1415 Engineering Dr
Madison, WI

  • PhD 1994, University of Michigan
  • MS 1993, University of Michigan
  • MS 1989, University of Michigan
  • Diploma 1988, National Technical University of Athens

  • thermodynamics
  • kinetics and catalysis
  • electrocatalysis
  • surface science
  • nanoscience
  • computational chemistry
  • electronic materials
  • fuel cells applications
  • environmental chemical engineering
  • sensors and chemoresponsive systems

  • 2023 Gordon Research, Chair, Gordon Research Conference on Chemical Reactions at Surfaces
  • 2021 Dept. of Chemical & Biological Engineering, University of Wisconsin-Madison, Ernest Micek Distinguished Chair
  • 2021 North American Catalysis Society , Robert Burwell Lectureship in Catalysis
  • 2019 University of Wisconsin-Madison, WARF Named Professor
  • 2019 American Chemical Society, Gabor A. Somorjai Award for Creative Research in Catalysis
  • 2019 Catalysis Club of Chicago, Herman Pines Award
  • 2019 Gordon Research, Vice-Chair, Gordon Research Conference on Chemical Reactions at Surfaces
  • 2018 Department of Chemistry, University of California – Berkeley, Visiting Miller Research Professor
  • 2018 Wiley, Top Downloaded Article 2017-18
  • 2017 American Vacuum Society, AVS Prairie Chapter Outstanding Researcher Award
  • 2017 Department of Chemical Engineering, University of South Carolina, Eastman Lecture
  • 2017 Michigan Catalysis Society, Giuseppe Parravano Memorial Award for Excellence in Catalysis Research
  • 2016 University of Wisconsin–Madison, Vilas Associate
  • 2016 Shanghai Ranking's Global Ranking of Academic Subjects 2016, Elsevier, Chemical Engineering Most Cited Researchers
  • 2016 American Vacuum Society, Fellow
  • 2016 University of Wisconsin-Madison, Hilldale Undergraduate/Faculty Research Fellowship
  • 2015 University of Wisconsin–Madison, Vilas Distinguished Achievement Professor
  • 2015 University of Wisconsin–Madison, Vilas Distinguished Achievement Professor
  • 2015 Chemical Engineering Department, Kansas State University, L. T. Fan Distinguished Lectureship
  • 2015 University of Wisconsin-Madison, LEED Scholar Professor
  • 2015 University of Wisconsin-Madison, Wisconsin Sophomore Research Fellowship
  • 2014 College of Engineering, University of Wisconsin-Madison, Byron Bird Award for Excellence in a Research Publication
  • 2014 American Association for the Advancement of Science, Fellow
  • 2014 University of Wisconsin-Madison, Hilldale Undergraduate/Faculty Research Fellowship
  • 2014 University of Wisconsin-Madison, Kellett Mid-Career Faculty Researcher Award
  • 2014 AIChE, R. H. Wilhelm Award in Chemical Reaction Engineering,
  • 2013 American Physical Society, Fellow
  • 2012 Surface Science, Editor-in-Chief
  • 2012 Nature Materials, Landmark paper, 1st decade of Nature Materials (2002-2012)
  • 2010 Thomson - Reuters, Top 100 Chemists for the decade 2000-2010
  • 2010 Surface Science, Top Cited Article 2005-2010
  • 2009 University of Wisconsin-Madison, H.I. Romnes Faculty Fellow
  • 2009 North American Catalysis Society, 2009 Paul H. Emmett Award in Fundamental Catalysis
  • 2009 University of Wisconsin-Madison, Hilldale Undergraduate/Faculty Research Fellowship
  • 2008 Dept. of Chemical & Biological Engineering, University of Wisconsin-Madison, Paul A. Elfers Professor
  • 2008 University Housing, University of Wisconsin-Madison, Honored Instructor Award
  • 2008 2008 Mesilla Chemistry Conference, “Frontiers of Electrocatalysis”,, Invited Participant and talk
  • 2007 Elsevier’s Catalysis journal, Top-50 most cited articles, 2003-2007
  • 2006 NAE 2006 German-American Frontiers of Engineering Symposium (GAFOE), Invited Participant
  • 2005 Samuel C. Johnson Distinguished Fellowship
  • 2004 Catalysis Letters, Most viewed article the March 2004 issue
  • 2002 National Science Foundation, NSF CAREER Award
  • 2002 3M, 3M Non-tenured Faculty Award
  • 2002 University of Wisconsin-Madison, Hilldale Undergraduate/Faculty Research Fellowship
  • 2001 University of Wisconsin-Madison, Holstrom Environmental Research Scholarship
  • 2001 University of Wisconsin-Madison, Holstrom Environmental Research Scholarship
  • 2000 Shell Oil Company Foundation, Faculty Career Initiation Award
  • 1998 9th Roermond Conference on Catalysis, Best Poster Award
  • 1997 European Science Foundation , Marie Curie Fellowship
  • 1992 Rackham School of Graduate Studies, The University of Michigan, Rackham Predoctoral Fellowship
  • 1992 College of Engineering, The University of Michigan, Distinguished Achievement Award
  • 1992 Chemical Engineering Department, The University of Michigan, Outstanding Graduate Seminar Award
  • 1988 Korgialenion Foundation, Korgialenion Fellowship
  • 1988 Engineering Chamber of Greece, TEE Scholarship
  • 1987 National Technical University of Athens., Thomaidion Award

  • Yu, H., Gold, J. I., Wolter, T. J., Bao, N., Smith, E., Zhang, H. A., Twieg, R. J., Mavrikakis, M., & Abbott, N. L. (2024). Actuating Liquid Crystals Rapidly and Reversibly by using Chemical Catalysis. Advanced Materials, 2309605.
  • Xu, L., & Mavrikakis, M. (2024). Adsorption Properties of Au- Ni Surface Alloys with a Nonstoichiometric Moiré Structure: A Density Functional Theory Study. The Journal of Physical Chemistry C.
  • Xu, W., Zeng, R., Rebarchik, M., Posada-Borb'on, Alvaro,, Li, H., Pollock, C. J., Mavrikakis, M., & Abru~na, H'ector D, (2024). Atomically Dispersed Zn/Co--N--C as ORR Electrocatalysts for Alkaline Fuel Cells. Journal of the American Chemical Society, 146(4), 2593--2603.
  • Liu, M., Zhou, S., Figueras-Valls, M., Ding, Y., Lyu, Z., Mavrikakis, M., & Xia, Y. (2024). Compressively Strained and Interconnected Platinum Cones with Greatly Enhanced Activity and Durability toward Oxygen Reduction. Advanced Functional Materials, 2404677.
  • G"oltl, Florian,, Bhandari, S., Lebr'on-Rodr'iguez, Edgard A,, Gold, J. I., Hutton, D. J., Zones, S. I., Hermans, I., Dumesic, J. A., & Mavrikakis, M. (2024). Exploring the Impact of Active Site Structure on the Conversion of Methane to Methanol in Cu-Exchanged Zeolites. Angewandte Chemie International Edition, e202403179.
  • Wu, J., Papanikolaou, K. G., Cheng, F., Addison, B., Cuthbertson, A. A., Mavrikakis, M., & Huber, G. W. (2024). Kinetic Study of Polyvinyl Chloride Pyrolysis with Characterization of Dehydrochlorinated PVC. ACS Sustainable Chemistry & Engineering, 12(19), 7402--7413.
  • Xu, L., Ye, R., Mavrikakis, M., & Chen, P. (2024). Molecular-scale Insights into Cooperativity Switching of x TAB Adsorption on Gold Nanoparticles. ACS Central Science, 10(1), 65--76.
  • Xu, L., & Mavrikakis, M. (2024). Structure sensitivity in adsorbate-induced adatom formation on FCC transition-metal surfaces. Journal of Catalysis, 115373.
  • Agrahari, K., Wolter, T. J., Smith, E., Abbott, N. L., Mavrikakis, M., Mighion, J. D., & Twieg, R. J. (2024). Synthesis and examination of alkoxycyanobiphenyl mesogens with a single fluorine atom at specific locations in the tail. Liquid Crystals, 1--10.
  • Pawlik, V. D., Zhao, X., Figueras-Valls, M., Wolter, T. J., Hood, Z. D., Ding, Y., Liu, J., Chi, M., Mavrikakis, M., & Xia, Y. (2024). Thermal Stability of Au Rhombic Dodecahedral Nanocrystals Can Be Greatly Enhanced by Coating Their Surface with an Ultrathin Shell of Pt. Nano Letters, 24(2), 549--556.

  • CBE 562 - Special Topics in Chemical Engineering (Spring 2025)
  • CBE 599 - Special Problems (Spring 2025)
  • CBE 890 - Pre-Dissertator's Research (Spring 2025)
  • CBE 990 - Thesis-Research (Spring 2025)
  • CBE 599 - Special Problems (Fall 2024)
  • CBE 735 - Kinetics and Catalysis (Fall 2024)
  • CBE 890 - Pre-Dissertator's Research (Fall 2024)
  • CBE 990 - Thesis-Research (Fall 2024)
  • CBE 890 - Pre-Dissertator's Research (Summer 2024)
  • CBE 990 - Thesis-Research (Summer 2024)
  • CBE 599 - Special Problems (Spring 2024)
  • CBE 890 - Pre-Dissertator's Research (Spring 2024)
  • CBE 990 - Thesis-Research (Spring 2024)
  • CBE 599 - Special Problems (Fall 2023)
  • CBE 735 - Kinetics and Catalysis (Fall 2023)
  • CBE 890 - Pre-Dissertator's Research (Fall 2023)
  • CBE 990 - Thesis-Research (Fall 2023)
  • CBE 890 - Pre-Dissertator's Research (Summer 2023)
  • CBE 990 - Thesis-Research (Summer 2023)