HT electronics and weathering under Venus analgoue conditions
NASA Glenn Research Center
gary.w.hunter@nasa.gov
Mineral weathering kinetics under Venus analogue conditions
Tokyo Tech / ELSI (upcoming)
sara.port@utsa.edu
Mineral weathering kinetics under Venus analogue conditions
Wesleyan Univeristy / NASA GRC
alison.r.santos@nasa.gov
Enceladus mineralogy and organic-salt-mineral interactions
Freie Universität Berlin
melih.cakar@fu-berlin.de
Expertise: HT, reactive environment electronics and chemical sensors
Expertise: Geochemistry and mineralogy of Venus, HT reactivity, TGA analysis
Expertise: redox evolution of minerals, surface reactions, HT/HP systems
Expertise: Raman/EMPA of cryogenic salt-ice-mineral mixtures, ball milling
Thermogravimetric analysis under reactive gas atmospheres
California Institute of Technology
jchacko@caltech.edu
Ion solubility and organic chelation in Enceladus analogue systems
University of Washington
pmonreal@uw.edu
Catalytic Graphitization of metal-bound polymers
Caltech Materials Science
ethan_klein@caltech.edu
Expertise: Spectroscopy and materials synthesis, reactive gas systems, chemi/physi-sorption
Expertise: ICP-MS/OES measurements of dissolved ions, mineral weathering and organic chelation
Expertise: mineralogy, astromaterials, field geology, hydrothermal geochemistry
Expertise: Crystal growth, thermochemical processing, solid state materials, neutron/X-ray scattering
Gas sorption in mesoporous, additively manufactured carbon
California Institute of Technology
misal@caltech.edu
Nano-particle silica species for drug delivery applications
California Institute of Technology
fmuller@caltech.edu
Geo-electrochemistry at mineral-aqueous interfaces
NASA Jet Propulsion Lab
john-paul.jones@jpl.nasa.gov
Expertise: Materials synthesis, polymer chemistry, functionalization
Expertise: soft materials, rheology, colloidal gels, 3D bioprinting, and hydrogels
Expertise: Martian hydrothermal systems, O2 isotopes, and biosignatures
Expertise: electro-chemistry, organic chemistry, batteries
Compositional analysis for magneto-calorics materials & High Temp IVCT
Caltech Materials Science
epriesen@caltech.edu
Modelling of polyelectrolytes, organo-metallic chelation
Caltech Chemical Engineering
pjwalker@caltech.edu
Polymer chelation of metal ions in hydrogel and solution phase
Caltech Mechanical Engineering
seolalee@caltech.edu
Carbon allotropes from thermally aromatized organics in chondrites
Royal Holloway/London NHM
charlotte.bays@nhm.ac.uk
Expertise: Magnetocaloric Materials, Invar Effect, Mössbauer Spectroscopy
Elena is a Resnick Scholar in Caltech's Fultz Group in the Department of Applied Physics and Materials Science. She is investigating the magnetic characteristics of LaFeSi alloys with Co and Ni substitutions, focusing on how these substitutions affect the Curie temperature (TC), phase transition order, and thus the magnetocaloric effect. Her objective is to uncover insights into the fundamental physics behind these materials.
Expertise: Thermo-dynamics, qDFT, MD simulation, Polyelectrolytes
Pierre is the Constantin F. Economou Prize winner for Chemistry & Chemical Engineering at Caltech. Pierre's research focuses on leveraging computational tools and theory to model thermodynamic and transport properties of ionic liquid and polyelectrolyte systems, with particular emphasis on association phenomena in these systems. He is also the developer of the fluid-thermodynamics modeling tool: Clapeyron.jl.
Expertise: Polymer mechanics & physics, composites, fabrication
Seola Lee is a mechanical engineering PhD working on polymer physics in metal-bound polyelectrolytes. She has a strong background in composites and solid state materials. Currently she is examining uptake and controlled release of heavy metals in poly-electrolytes in collaboration using solution spectroscopy & osmotic pressure methods.
Expertise: chondritic meteorites, evolution of organics and volatiles
Charlotte is a final-year PhD candidate at the Astromaterials Research Laboratory (Royal Holloway, University of London) and the Planetary Materials Group (Natural History Museum, London, UK). She is currently researching the evolution of extraterrestrial organic matter and volatiles in carbonaceous chondrite meteorites under experimental conditions, to simulate various environments and processes on their parent asteroids, which may also be applicable to other chondritic bodies such as Enceladus. She compares these findings with her analyses of returned asteroidal samples from space missions such as JAXA's Hayabusa2 and NASA’s OSIRIS-REx. Charlotte’s work aims to provide insights into solar system processes and a wider context to the emergence of life on Earth, with her research interests including astromaterials, cosmochemistry, and planetary analogues for astrobiological targets, such as icy moons and ocean worlds.
Fabrication of porous microfluidic silica scaffolds
Kavli Nanoscience Institute
alexw@caltech.edu
Growth of hydrothermal chimney analogues
NASA Jet Propulsion Lab
n.a.
Expertise: thin film deposition, etching, microscopy, fabrication
Expertise: geomicrobiology, oceanography, HT vents serpentinization,