Sort by
Refine Your Search
-
Category
-
Country
-
Program
-
Field
-
of experimental spectroscopy or diffraction techniques such as XAS, XRD, FTIR, and XPS, of molecular modeling (MD/MC, DFT), and familiarity with basic programming (Python, MATLAB) and the use of Linux/HPC systems
-
treatment response. Current techniques overcome the diffraction limit (~200 nm) and enable the visualization of structures at the nanometre scale (0.1–100 nm). The pioneering work of E. Betzig, S. Hell, and W
-
, is a materials science beamline specialising in X-ray diffraction and full-field imaging techniques. The beamline serves a very wide user community, spanning physics and chemistry to medical science. A
-
credits). Practical experience of experimental spectroscopy or diffraction techniques such as XAS, XRD, FTIR, and XPS, of molecular modeling (MD/MC, DFT), and familiarity with basic programming (Python
-
), knowledge of MOF material research techniques, including at least powder X-ray diffraction (PXRD), spectroscopic techniques (FT-IR, NMR, UV-vis), sorption techniques (particularly gas physisorption), and
-
, multilayers, diffraction optics, beam transport, and focusing optics Experience with ray-tracing and optical simulation tools (e.g. SHADOW, OASYS, XOP, SRW, COMSOL, Zemax, or comparable software) Experience
-
Laboratory based characterisation including X-ray diffraction, magnetic susceptibility and heat capacity measurements Advanced characterisation at central facilities with a focus on neutron scattering (eg