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separation. Experience with electrochemical methods and material characterization. Ability to work as a member of an international, multi-disciplinary team. Excellent communication and writing skills, thorough
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implications for geochemistry, geophysics, biogeochemistry, planetary habitability, and sustainable energy resources. The successful candidate will join a dynamic research team investigating how crustal faulting
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postdoctoral researcher specializing in Li-ion cathode materials to join our research team. This position focuses on the development, synthesis, characterization, and optimization of advanced cathode materials
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to the successful execution of R&D projects. Responsibilities include providing subject matter expertise and proficient execution of laboratory experiments in the preparation and characterization of dynamical optical
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Appointment Term: one year, renewable Appointment Start Date: asap Group or Departmental Website: https://med.stanford.edu/kramsmartinezlabs.html (link is external) How to Submit Application Materials
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Engineering, Chemistry, Nanoscience, Sustainable Materials, or a closely related field, and ranks within the top 10% of his/her class. Strong interest in materials synthesis and characterization, colloid
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and electrochemical characterization methods that place it in an ideal position to develop innovative ideas at the crossroads of material science disciplines, a scientific culture largely developed
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characterize the physical properties of matter from both fundamental and applied perspectives, through theoretical and experimental approaches. The laboratory has strong international visibility in Soft Matter
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(tooling and fixture). Experience in friction stir spot welding experiments (tooling and fixture) Experience in advanced characterization using techniques such as EBSD, XRD, TEM, etc. Experience in material
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electrode materials, as well as expertise in electrode characterization for electrochemical synthesis. Our state-of-the-art analytical instruments help us to quickly screen and optimize electrochemical