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-ray Photon Correlation Spectroscopy (XPCS), Quasi-Elastic Neutron Scattering (QENS) and Dynamic Light Scattering (DLS) techniques to study the structure and dynamics of proteins in solutions
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distribution. For ideal sources and optical surfaces we can solve the so-called Monge-Ampère equation to find the freeform shapes of the surfaces. Scattering elements however send light rays in multiple
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Correlation Spectroscopy (XPCS), Quasi-Elastic Neutron Scattering (QENS) and Dynamic Light Scattering (DLS) techniques to study the structure and dynamics of proteins in solutions. Qualification and skills
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-ray Photon Correlation Spectroscopy (XPCS), Quasi-Elastic Neutron Scattering (QENS) and Dynamic Light Scattering (DLS) techniques to study the structure and dynamics of proteins in solutions
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-ray Photon Correlation Spectroscopy (XPCS), Quasi-Elastic Neutron Scattering (QENS) and Dynamic Light Scattering (DLS) techniques to study the structure and dynamics of proteins in solutions. Your tasks
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various areas of theoretical and computational chemistry such as quantum and semi-classical theory of molecules, electronic excited-state dynamics and relaxation, materials and light, statistical mechanics
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, statistical mechanics, reaction kinetics and dynamics, and theory/simulation of ultrafast time-resolved experiments. You will be a part of the Physical Chemistry section at DTU Chemistry (https
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This PhD project explores the use of plasmonic nanostructures for trapping and spectroscopic characterization of proteins, enabling real-time, label-free studies of their structure, dynamics, and
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will develop during your PhD with us: Advanced optics; we will study the molecules in our traps using custom-made light scattering microscope. Electrodynamics; for engineering of the electric tweezers
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integrated supercontinuum laser based FTIR measurements in variation of the total arc length, establishing radial gas and plasma temperature profiles with laser scattering at/around the arc exit in variation