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Keywords
- Iridium (8)
- mirror (8)
- Spiegelteleskop (6)
- X-ray (6)
- iridium (5)
- Röntgenteleskop (4)
- coating (4)
- telescope (4)
- Lobster Eye (3)
- Röntgenastronomie (3)
Year of publication
- 2017 (14) (remove)
Document Type
- Conference Proceeding (10)
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- English (12)
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Influence of sputtering pressure on the nanostructure and the X-ray reflectivity of iridium coatings
(2017)
Reflective mirror coatings made of iridium are used in X-ray telescopes of the Chandra X-ray Observatory (CXO) launched in 1999 by the National Aeronautics and Space Administration (NASA) to investigate astronomical sources at photon energies below 10. keV. These coatings were produced in a DC magnetron sputtering process and have so far proven their suitability for space-based applications. We are considering in the present paper the processing of thin iridium films for lightweight telescopes using the radio frequency magnetron sputtering technique with an oblique angle deposition. The coating development presented here is focused on the influence of total sputtering pressure on film properties as well as on its impact on the mirror's performance. Characterisation methods such as X-ray diffractometry, X-ray reflectometry, atomic force microscopy and transmission electron microscopy have been used. Correlations between morphology, density, surface micro-roughness, crystal structure of the iridium layer and the expected reflectivity of the X-ray mirror are described and discussed.
Future investigations of astronomical X-ray sources require light weight telescope systems with large collecting areas and good angular resolution. The Wolter I type telescope design offers a suitable possibility for obtaining performant X-ray mirrors with high collecting areas. The technology based on replicated slumped glass optics using thin glasses thereby provides the opportunity to fulfil the light weight and mass production requirements. In NASA's telescope NuSTAR this technology has been proven as advantageous compared to previous systems. Coating thin glasses with iridium, gold or platinum enhances the reflectivity of X-ray mirrors.
In the field of X-ray astronomy different types of telescope optics based on grazing incidence mirrors can be used. This contribution presents a special design of a Lobster Eye wide-field telescope with mirrors based on flat silicon wafers and the task of coating such mirror substrates with reflective iridium layers.
Indirect glass slumping of grazing incidence mirror segments for lightweight x-ray telescopes
(2017)
The paper provides a description of recent progress in the development of lightweight, precision and highthroughput
grazing-incidence mirrors for X-ray astronomy made of glass. In particular, the indirect slumping
technology under investigation at the Max Planck Institute for Extraterrestrial Physics (MPE) is reviewed and
recent activities are presented together with the research approach. The glass slumping technique foresees
several steps: a thermal forming process using a suitable mould; a re
ective layer application; the alignment
and integration of mirror segments into a supporting structure; and the nal verication of prototype modules
using X-rays. Each step is considered at MPE, with the involvement of partner institutes and universities. The
last year of activities was mainly dedicated to the procurement of new moulds and to the application of Iridium
coating. The main results will be presented.
Future space-based X-ray observatories need to be very lightweight for launcher mass constraints. Therefore they will
use a reduced mirror thickness, which results in the additional requirement of low coating stress to avoid deformation of
the initial precisely shaped mirror substrates. Due to their excellent reflection properties iridium coatings are sometimes
applied for grazing incidence mirrors in astronomical X-ray telescopes. At Aschaffenburg University of Applied
Sciences the coating of thin iridium films by an RF-magnetron sputtering technique is under development. The work is
embedded in collaborations with the Max-Planck-Institute for Extraterrestrial Physics in Germany, the Czech Technical
University in Prague, the Osservatorio Astronomico di Brera in Italy, the German Leibniz Institute for Solid State and
Materials Research in Dresden, and the French Institute Fresnel. Sputtering with different parameters leads to iridium
films with different properties. The current work is focused on the microstructure of the iridium coatings to study the
influence of the substrate and of the argon gas pressure on the thin film growing process. Correlations between coating
density, surface micro-roughness, the crystalline structure of the iridium layers, and the expected reflectivity of the X-ray
mirror as well as coating stress effects are presented and discussed. The final goal of the project is to integrate the
produced prototype mirrors into an X-ray telescope module. On a longer timescale measurements of the mirror modules
optical performance are planned at the X-ray test facility PANTER.
Sun´s ultraviolet radiation is classified into UV-A, UV-B, and UV-C bands. Thereby UV-A passes through Earth´s atmosphere, while UV-B is partially absorbed by ozone. The limitations of the commonly accepted statement, that UV-C is always completely absorbed by Earth´s atmosphere, are discussed critically. Below 200 nm the solar spectrum is strongly absorbed by molecular oxygen. The stratospheric ozone layer has strong absorption between 200 nm and 300 nm. However, the “ozone hole” increases UV-B radiation just below 300 nm and may also open a transmitting atmospheric window for harmful UV-C at the overlap region between oxygen absorption and ozone absorption.
Within the project JEUMICO, an acronym for Joint European
Mirror Competence, the Aschaffenburg University of Applied Sciences and the
Czech Technical University in Prague started a collaboration to develop mirrors
for X-ray telescopes. Corresponding mirror segments use substrates of
at
silicon wafers which are coated with thin iridium lms, as this material is
promising high re
ectivity in the X-ray range of interest. The sputtering parameters
are optimized in the context of the expected re
ectivity of the coated
X-ray mirrors. In near future measurements of the assembled mirror modules
optical performances are planned at an X-ray test facility.
We present optic designs based on biomimetic, namely technical applications of
animal eyes principles (here: Lobster Eyes) for the special application of wide
field X-ray imaging. Thereby we show and discuss some experimental results
and correlate them with simulations. Preliminary results of an ongoing study on
other strange animal mirror eyes with potential scientific and technical
applications are also discussed. Some of them are based on the principle of
multilayer multi-mirror active optics arrangements. The Lobster Eye X-ray optics
needs special reflective coatings for a better performance, which are currently
developed within the Bavarian-Czech cooperation project JEUMICO.
Das Projekt JEUMICO wird vom Projektträger BAYHOST im Rahmen eines
Programms für bilaterale wissenschaftliche Projekte zwischen Tschechien und
Bayern gefördert. Inhaltlich werden von der Hochschule Aschaffenburg und der
Technischen Universität Prag hier gemeinsam Röntgenoptiken für ein geplantes
astronomisches Experiment an Bord einer NASA-Höhenrakete entwickelt.