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Field
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microscopy has given us a window into the molecular and atomistic details of the cell, and molecular engineering of living cells is how we get there. This is a bench-based role: the scientist will edit cell
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of S-L interface by confocal Raman imaging; in BCAM (4 months) for study of electrochemical behaviour of polymers at interfaces from atomistic simulations; in MONO (2 months) for study of life cycles
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well as with theoretical researchers specializing in atomistic simulation, density functional theory (DFT), and ab initio molecular dynamics (AIMD). The successful candidate will also engage with collaborators
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model. Modeling low frequency phonons requires an accurate knowledge of the temporal behavior of a many-body system over an extended time range (up to nano or even microseconds). Modeling atomistic
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approach must be combined with mechanistic models that describe the specific microstructure elements. A variety of inputs from both experimental work and simulations (i.e., first principle, atomistic, and/or
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and this study will help in doing that. This project has both fundamental and applied aspects. It will involve the use of atomistic Molecular Dynamics simulation to shed light on how and why this third
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through the link between controlled atomistic structure and the resulting functional properties. These include, for example, topics such as material synthesis (including new sustainable synthesis methods
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collaboration with NIST and outside experimentalists. Successful candidates will have experience in density functional theory, machine learning and/or quantum techniques with some exposure to atomistic modeling
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examples include using finite element and classical atomistic modeling to study nanoindentation, and using density functional theory and semiempirical tight binding to study the deformation, band structure
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challenging. We seek to address this measurement problem by developing a coherent strategy for integrating inputs from several critical experimental techniques to perform fully atomistic structural refinements