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devices using broadband spectroscopy and electron microscopy The position offers a stimulating interdisciplinary environment and opportunities to develop advanced skills in numerical optimization
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candidate will have proven skills in structural biology and a working understanding of cryo-electron microscopy. They will be self-motivated in designing and executing experiments, with a proven track record
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approach combining cryo-electron microscopy, NMR spectroscopy, and advanced molecular modeling, the research will unravel the molecular architecture and conformational dynamics of pili and their interactions
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approaches including beta/gamma irradiation (Dalton Cumbria Facility, DCF) and advanced electron/X-ray microscopy (e.g., Diamond synchrotron https://www.diamond.ac.uk ). These studies will be combined with
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a range of characterization techniques, including X-ray diffraction, electron microscopy, X-ray photoelectron spectroscopy, as well as various electrochemical measurements, with opportunities
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into natural environments to track plants’ remarkable capacity to optimize development to their surroundings now and in the future. More information about ongoing research can be found on our website: https
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who share these goals. For more information about the department visit http://pathology.stanford.edu/ About the Lab: The Schuele lab works on gene discovery and novel stem cell technologies to generate
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, including primary cell isolation and culture Proficiency with molecular biology techniques, including qRT-PCR, Western blot, immunofluorescence Microscopy skills (fluorescence, confocal, live-cell imaging
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to actively pursue research using expertise in at least one of the areas listed in 1–3 below. 1.Structural analysis of biomacromolecular complexes using cryo-electron microscopy (cryo-EM) 2.Large-scale
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and imaging capabilities, and on applying THz (emission) microscopy to study 2D materials and 2D heterostructures. The microscope will use femtosecond lasers to generate and detect terahertz pulses