EXPLORING SOLID-LIQUID INTERFACIAL CHEMISTRY DURING CATALYST SYNTHESIS Christopher T. Williams, John R. Monnier, John R. Regalbuto USC Center for Rational.

Slides:



Advertisements
Similar presentations
Synthesis and Characterization of Water-Soluble Nanoparticles John R. Renehan, Joseph A. Giesen, April D. Dale, Laura A. Logan, and Deon T. Miles Department.
Advertisements

Heterogeneous Catalysis & Solid State Physics Dohyung Kim May 2, 2013 Physics 141A.
Chemsheets AS006 (Electron arrangement)
Preparation & Characterization of heterogeneous catalyst
“ !” completely different mechanisms. catalysis: the process by which a catalyst changes the rate and mechanism of a chemical reaction -- a catalyst is…
Prairie View A&M University HBCU/MI Environmental Technology Consortium Hylton G. McWhinney, Ph.D. Principal Investigator John R. Williams, Ph.D. Steering.
The NEA Sorption Project a multinational cooperative program to advance the use of Thermodynamic Sorption Models Mark Fuhrmann U.S. NRC Office of Nuclear.
1 Catalyst Deactivation 朱信 Hsin Chu Professor Dept. of Environmental Eng. National Cheng Kung University.
F. H. Ribeiro, J. M. Caruthers, W. N. Delgass, K. T. Thomson, V. Venkatasubramanian Dept. of Chemical Engineering, Purdue University NSF Workshop, Washington,
Continuous Catalytic Oxidation in Pharmaceutical Processing B. Frank Gupton VCU John Monnier USC Steve Fong VCU Center for Rational Catalyst Synthesis.
Taina Rauhala Fuel Cell Catalysts Based on Metal Nanoparticles.
Introduction to catalysis chemistry
Surface Enhanced Infrared Absorption (SEIRA) Spectroscopy
Surface Plasmon Resonance: antigen-antibody interactions Vamsi K. Mudhivarthi.
Catalysis and Catalysts - Infrared Spectroscopy Infrared Spectroscopy Applications:  Catalyst characterisation –direct measurement of catalyst IR spectrum.
Introduction In the recent years, many efforts have been made in the field of transformation the renewable resources into value added chemicals. New starting.
Continuous Production of Metal Nanoparticles Everett Carpenter VCU John Monnier USC Frank Gupton VCU Center for Rational Catalyst Synthesis University.
Hydrazine Adsorption Conformations on metal surfaces
Metal Nanoparticle/Carbon Nanotube Catalysts Brian Morrow School of Chemical, Biological and Materials Engineering University of Oklahoma.
P. 1 basic research needs workshop for Carbon Capture: Beyond 2020 Plenary Midpoint Session March 4, Potential scientific impactPotential impact.
Department of Chemistry A state-of-the-art instrumental park is available to purify and characterize the synthesized molecules The research activities.
Adsorption and Reaction of ortho-Carborane on Pt(111) David Siap August 3, 2006 REU Program Advisors: Professor Trenary Aashani Tillekaratne University.
WHAT CAN KINETICS LEARN FROM NONSTATIONARY THERMODYNAMICS Miloslav Pekař Faculty of Chemistry Institute of Physical and Applied Chemistry Brno University.
A Fundamental Study of Nanoparticle–Protein Mutual Interactions: Role of Nanoparticle Morphology and Size Funded by the NSF Grant number: # G. Pyrgiotakis.
Observation of transient surface-bound intermediates by interfacial matrix stabilization spectroscopy (IMSS) Nina K. Jarrah and David T. Moore Chemistry.
Selective hydrochlorination of acetylene to vinyl chloride using Au-containing catalysts J.R. Monnier 1, J.R. Regalbuto 1, and Donna A. Chen 2 1 Department.
June 25-26, 2002D&D Lessons Learned Workshop1 Tritium Decontamination Techniques and Technology C. A. Gentile, J. J. Parker D&D Lessons Learned Workshop.
Catalyst Design and Preparation Dr. King Lun Yeung Department of Chemical Engineering Hong Kong University of Science and Technology CENG 511 Lecture 3.
ChE 553 Lecture 20 Mechanisms On Metal Surfaces 1.
BCC Ti/BCC Nb HCP Ti/BCC Nb Phase Stability in Thin Metallic Multilayers Gregory B. Thompson, University of Alabama Tuscaloosa, DMR Intellectual.
5. ORR activity The catalytic layers used in proton exchange membrane fuel cell (PEMFC) are classically based on Pt particles supported on a high surface.
ChE 553 Lecture 29 Catalysis By Metals 1. Objective Apply what we have learned to reactions on metal surfaces 2.
Introduction To Surface Reactions
Stabilization of metal surfaces by formation of bimetallic compositions J.R. Monnier 1, S. Khanna 2, and J.R. Regalbuto 1 1 Department of Chemical Engineering,
Electronic Structure and Chemical Reactivity
1 Institute of Isotopes, Budapest, Hungary; 2 Research Institute for Technical Physics and Materials Science, Budapest Hungary; 3 Chemical Physics of Materials,
0-D, 1-D, 2-D Structures (not a chapter in our book!)
Mechanisms Of Surface Reactions
Role of Theory Model and understand catalytic processes at the electronic/atomistic level. This involves proposing atomic structures, suggesting reaction.
January 2016 Report Real World Nanoparticle Synthesis on Model Supports Ritubarna Banerjee Grant Seuser Dr. Donna Chen Dr. John Regalbuto.
Composition Effect of Bimetallic PtAu Clusters on the Adsorbed CO Vibrational Frequencies Lichang Wang, Mark Sadek, Chunrong Song, Qingfeng Ge Chemistry.
Atomic Tailoring of Catalyst Surfaces for High Selectivity Partial Oxidation of Propane J. Gleaves, R. Fushimi, G. Yablonaky, M. Rude, D. French, P. Buzzeta,
The composition and structure of Pd-Au surfaces Journal of Physical Chemistry B, 2005, 109, C. W. Yi, K. Luo, T. Wei, and D. W. Goodman Bimetallic.
Study of some gilded film/glass interfaces and of one standard type of “liquid gold” XVI ICF TECHNICAL EXCHANGE CONFERENCE 9 th -12 th October 2004 Karlovy.
Characterization of mixed films
How Do We Control Material Processes at the Level of Electrons? Progress on Grand Challenge New Horizons for Grand Challenge Remaining ChallengeRefreshed.
The impact of nanoscience on heterogeneous catalysis  Alexis T. Bell  From Science 2003,299,  Impact factor=27 Viewpoint.
Activity and Stability of Ceria Supported Bimetallic Ni-Au in the Reforming of Ethanol By Sakun Duwal.
ChE 553 Lecture 30 Catalysis By Metals 1. Objective Examine the trends in bonding over the periodic table 2.
ChE 551 Lecture 29 Catalysis By Metals.
University of Wyoming, Senior Honors Project, December 9, 2016
Microkinetic Study of CO Adsorption and Dissociation on Fe Catalysts
NBC Seminar High Surface Area Mesostructured Solids: Promising Functional Materials for Selective Sorption and Catalytic Applications? Speaker : Prof.
Multi-scale modeling of the evolution of oxygen phases on Pt surfaces under realistic reactive conditions Aravind Asthagiri, Chemical Engineering Department,
Dramatically improved oxygen reduction cathodes using polyoxometalate co-catalysts Curtis Shannon, Department of Chemistry and Biochemistry, Auburn University,
Magnetically Recoverable Catalysts using Hierarchical Magnetite/Silica Nanoassemblies as Supports Yadong Yin, Department of Chemistry, University of California,
Reactions of unsaturated oxygenates on metal surfaces
TITLE OF NEW PROJECT PI/Presenter Affiliation
Dawei Liu Assistant Professor of Materials Science and Engineering, Inamori School of Engineering, Alfred University Primary Research Interest: Synthesis.
Vibrational Sum-Frequency probe of interfacial electron transfer dynamics Tianquan Lian, Department of Chemistry, Emory University, Atlanta, GA System:
Catalysts May SCH4U1.
Nanoparticle Synthesis via Electrostatic Adsorption using Incipient Wetness Impregnation Sonia Eskandari, John R. Regalbuto The University of South Carolina.
University of South Carolina
University of South Carolina, Columbia, South Carolina (USA)
TITLE OF NEW PROJECT PI/Presenter Affiliation
Dr Adam F. Lee Background
Catalyst Deactivation Examples
Andrew P. Wong, Qiuli Liu, John R. Regalbuto
Andrew Wong, Todd J. Toops*, and John R. Regalbuto
catalysis: the process by which a catalyst changes the
Presentation transcript:

EXPLORING SOLID-LIQUID INTERFACIAL CHEMISTRY DURING CATALYST SYNTHESIS Christopher T. Williams, John R. Monnier, John R. Regalbuto USC Center for Rational Catalyst Synthesis Planning Grant Workshop University of South Carolina, Columbia, SC June 16, 2014

Exploring Solid-Liquid Interfacial Chemistry During Catalyst Synthesis Industrial Relevance: Precise control of synthesis Technical Information: in-situ surface vibrational (FTIR, Raman) spectroscopy; optimization of catalyst synthesis process. Research Team: Williams, Monnier, Regalbuto (USC) Overview: Probe surface chemistry during SEA and ED processes to facilitate optimization of bimetallic catalyst synthesis h

Industrial Relevance Minimize Metal Usage in Bimetallic Catalysts Producing Bimetallic Catalysts with Small Particle Sizes

Goals of the Proposal  Use Attenuated Total Reflection Infrared (ATR-IR) and Raman spectroscopies to explore surface chemistry during ED and SEA synthesis of bimetallic catalysts  Correlate surface speciation with ED and SEA synthetic parameters and resulting catalyst properties  Develop strategies to overcome limitations and enhance performance of the approaches

Proposal Hypotheses  Adsorption of chemical species from solution plays key roles in ED  stabilizers; reducing agents (e.g., formaldehyde, DMAB, NaBH 4 ), also in their oxidized forms and their fragments, e.g., CO;  varying extents/strengths of adsorption on various metals helps to determine the selectivity of autocatalytic vs. catalytic deposition  adsorbed species can result in sintering of small nanoparticles due to enhanced mobility of atoms (e.g., metal complexes)  The stability of surface oxides during sequential SEA methods is a key determining factor in its success  adsorption of precursors onto support and first metal oxide can result in alteration of the oxide  formation of mixed oxides during the activation treatment will effect eventual properties of reduced bimetallic particles  Correlation of surface speciation (measured with spectroscopy) and solution-phase parameters (measured during synthesis) can be coupled to generate predictive models

Research Methods/ Techniques In-Situ ATR-IR and Raman of Support/Catalyst Films in the Liquid Phase In-Situ Raman During Gas-Phase Activation of Catalysts

Outcomes/ Deliverables – Year 1  Mn-Rh/SiO 2 synthesis by SEA explored by Raman  Liquid-phase adsorption of MnO 4 - species onto supported Rh 2 O 3 under different solution-phase conditions  Gas--phase calcination/reduction of SiO 2 -supported MnO 4 - /MnO 4 - /Rh 2 O 3 particles  Correlation of surface speciation with resulting bimetallic particle structure  Ag-Pt/X (X=SiO 2,Al 2 O 3 ) synthesis by ED explored by ATR-IR  Adsorption/activation of reducing agents - formaldehyde, hydrazine, dimethylamine borane - on Pt catalysts, bare supports, and Pt metal  ED of AgNO 3 onto Pt catalysts and Pt metal under different conditions  Influence of adsorbed CO on the speciation during ED process  Correlation of surface speciation with deposition limits and sintering observed in batch and/or continuous ED experiments  Longer Term Plans (beyond first year)  Extension to other SEA/ED synthetic systems as suggested by EAB  Development of predictive models based on surface chemistry insight

Impact  Improved understanding of surface chemical factors that may hinder implementation of SEA and ED in industry  Enhanced catalyst properties at reduced cost?  Establishment of in-situ solid-liquid interface techniques that can address needs of EAB members  ATR-IR can be applied to a broad range of liquid-phase adsorption and reaction processes relevant to catalytic materials synthesis  1 $60,000  $60,000/yr thereafter, expanding to other systems as desired Duration of Project and Proposed Budget