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Field
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mechanisms of virus self-assembly. RNA-containing viruses are complex, nanometre sized particles with at their centre proteins covering the RNA. We want to find out how these complex assemblies are built up
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, processes, and releases its client proteins remain elusive due to the complex and dynamic nature of these processes. This doctoral project aims to unravel these mechanisms by combining two cutting-edge
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batteries (RFB), enabling affordable and durable long-duration energy storage. The approach is to use hierarchical structures, i.e. complex material layers that can be optimized to specific battery
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Spectroscopy department at PDI, a dedicated team of scientists, technicians, postdocs, and students investigate complex device structures such as THz lasers, UV light emitters and polariton cavity structures
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vivo administration approaches. To investigate 2D material complex structure - biophysical and biological function relationships, the project will include systematic studies at both the cellular
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examines how systemic factors contribute to school pushout in New York City. The project connects data on neighborhood-level opportunity structures and school resource allocation with information about
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protein-DNA interactions) Produce stable complexes between proteins and/or DNA Determine structures of proteins/complexes Design mutants and perturbations for in vivo experiments Perform in vivo functional
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the other end also power consuming, very expensive and complex. In this PhD project we want to investigate alternative realizations that provide a high performance at much lower cost and complexity, but with
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Planck Research School (IMPRS) Genome Science Molecular Biology (MSc/PhD) Neurosciences (MSc/PhD) Physics of Biological and Complex Systems Thematic programmes Biomolecules: Structure – Function – Dynamics
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Identifying and validating models for complex structures featuring nonlinearity remains a cutting-edge challenge in structural dynamics, with applications spanning civil structures, microelectronics