Sort by
Refine Your Search
-
Listed
-
Category
-
Country
-
Program
-
Employer
- NIST
- Argonne
- Pennsylvania State University
- University of Sydney
- EPFL
- Aarhus University
- CNRS
- Delft University of Technology (TU Delft)
- Forschungszentrum Jülich
- Istituto Italiano di Tecnologia
- Lunds universitet
- Monash University
- Nanyang Technological University
- Oak Ridge National Laboratory
- Paul Scherrer Institut Villigen
- Rutgers University
- University of Nottingham
- AGH University of Krakow
- AMOLF
- Amgen Scholars Program
- Brookhaven National Laboratory
- COFUND QuanG
- California Institute of Technology
- Carnegie Mellon University
- Center for Drug Evaluation and Research (CDER)
- Chalmers University of Technology
- Duke University
- Eindhoven University of Technology (TU/e)
- Forschungsverbund Berlin e.V.
- French National Institute for Health Research (INSERM)
- Fundación IMDEA Nanociencia
- Grenoble INP - Institute of Engineering
- INSERM
- Montana State University
- National Aeronautics and Space Administration (NASA)
- SAIT Polytechnic
- ShanghaiTech University
- Technical University Of Denmark
- Technical University of Denmark
- The University of Queensland
- The University of Texas at Dallas
- UCL;
- UNIVERSITY OF SOUTHAMPTON
- UNIVERSITY OF SYDNEY
- University of Bath
- University of British Columbia
- University of California, Los Angeles
- University of Dayton
- University of Florida
- University of Glasgow
- University of Liverpool
- University of Michigan
- University of Michigan - Ann Arbor
- University of Oslo
- University of Sheffield
- Université Sorbonne Paris Nord
- Université de Lorraine
- VUB
- 48 more »
- « less
-
Field
-
the specificity of IR spectroscopy with the resolution of AFM, enabling IR analysis with a spatial resolution smaller than the optical diffraction limit (< 10 nm at 300 K, < 0.1 nm the goal of this project). STML
-
The scientific objective of this position is to develop a new quantum sensing platform based on Rydberg atoms for probing the near field of terahertz (THz) metamaterials and imaging electromagnetic fields in
-
of biological origin, as well as of metals and alloys. We are actively developing and applying various X-ray and neutron scattering, diffraction and imaging methods working closely together with various beamlines
-
for materials, taking advantage of a recently installed ThermoFisher Spectra 300 S/TEM equipped with an “ultimono” monochromator, capable of an energy resolution better than 30 meV, image and probe correctors
-
of industrially relevant material surfaces where the machine learning is driven by in situ XAS, XRF, and XRD measurements References: “On-the-fly segmentation approaches for x-ray diffraction datasets for metallic
-
microelectron diffraction supporting intramural, academic, and industrial researchers. The RCNF is a pillar of Rutgers’ excellence in structural and cellular biology, supporting significant discoveries in
-
, including scanning electron microscopy (SEM), optical microscopy, X-ray diffraction (XRD), image analysis, and mechanical, physical, and chemical testing methods. Knowledge of advanced materials processing
-
activities in the field of microcrystal electron diffraction and take a lead role in the application of next-generation methods toward structure determination of key molecules in support of a diverse and
-
, including samples of biological origin, as well as of metals and alloys. We are actively developing and applying various X-ray and neutron scattering, diffraction and imaging methods working closely together
-
an open research position for a talented and motivated researcher. Motivation Conventional cameras capture two-dimensional images, even though our world is three-dimensional (3D). This lack of depth