The impact on materials science of ion beam analysis with electrostatic accelerators

Author(s):  
G. Amsel ◽  
G. Battistig
2001 ◽  
Vol 15 (28n29) ◽  
pp. 1271-1280
Author(s):  
I. C. VICKRIDGE

The accelerator laboratory of the Groupe de Physique des Solides, Paris, has pioneered a number of IBA techniques and applications over the last few decades. In particular, in the 1960's and 1970's, Nuclear Reaction analysis (NRA) including nuclear resonance depth profiling, isotopic tracing combined with NRA, and channelling techniques were developed under the leadership of G. Amsel. In this paper I will present a selection of recent applications from this laboratory of NRA, isotopic tracing with stable isotopes, and ion channelling, intended to illustrate the present status of these techniques in condensed matter physics and materials science, and to act as a backdrop for a discussion of future directions for development of Ion Beam Analysis in condensed matter physics and advanced materials research.


2019 ◽  
Vol 297 ◽  
pp. 100-110 ◽  
Author(s):  
Nick Lucas ◽  
Kelsey E. Seyfang ◽  
Andrew Plummer ◽  
Michael Cook ◽  
K. Paul Kirkbride ◽  
...  

Instruments ◽  
2021 ◽  
Vol 5 (1) ◽  
pp. 10
Author(s):  
Sören Möller ◽  
Daniel Höschen ◽  
Sina Kurth ◽  
Gerwin Esser ◽  
Albert Hiller ◽  
...  

The analysis of material composition by ion-beam analysis (IBA) is becoming a standard method, similar to electron microscopy. A pool of IBA methods exists, from which the combination of particle-induced-X-ray emission (PIXE), particle induced gamma-ray analysis (PIGE), nuclear-reaction-analysis (NRA), and Rutherford-backscattering-spectrometry (RBS) provides the most complete analysis over the whole periodic table in a single measurement. Yet, for a highly resolved and accurate IBA analysis, a sophisticated technical setup is required integrating the detectors, beam optics, and sample arrangement. A new end-station developed and installed in Forschungszentrum Jülich provides these capabilities in combination with high sample throughput and result accuracy. Mechanical tolerances limit the device accuracy to 3% for RBS. Continuous pumping enables 5*10−8 mbar base pressure with vibration amplitudes < 0.1 µm. The beam optics achieves a demagnification of 24–34, suitable for µ-beam analysis. An in-vacuum manipulator enables scanning 50 × 50 mm² sample areas with 10 nm accuracy. The setup features the above-mentioned IBA detectors, enabling a broad range of analysis applications such as the operando analysis of batteries or the post-mortem analysis of plasma-exposed samples with up to 3000 discrete points per day. Custom apertures and energy resolutions down to 11 keV enable separation of Fe and Cr in RBS. This work presents the technical solutions together with the quantification of these challenges and their success in the form of a technical reference.


Author(s):  
P. Wei ◽  
M. Chicoine ◽  
S. Gujrathi ◽  
F. Schiettekatte ◽  
J.-N. Beaudry ◽  
...  

1999 ◽  
Vol 12 (3) ◽  
pp. 457-467 ◽  
Author(s):  
Narayan Sundararajan ◽  
Christopher F. Keimel ◽  
Navin Bhargava ◽  
Christopher K. Ober ◽  
Juliann Opitz ◽  
...  

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