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Morphology control in Ni/Ti multilayer neutron mirrors by ion-assisted interface engineering and B4C incorporation
Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics. Linköping University, Faculty of Science & Engineering.
Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics. Linköping University, Faculty of Science & Engineering.ORCID iD: 0000-0002-5828-5796
Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics. Linköping University, Faculty of Science & Engineering.
Linköping University, Department of Physics, Chemistry and Biology, Thin Film Physics. Linköping University, Faculty of Science & Engineering.ORCID iD: 0000-0002-4898-5115
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2023 (English)In: Optical Materials Express, E-ISSN 2159-3930, Vol. 13, no 5, p. 1424-1439Article in journal (Refereed) Published
Abstract [en]

The optical contrast and minimum layer thickness of Ni/Ti broadband neutron multilayer supermirrors is usually hampered by an interface width, typically 0.7 nm, caused by nanocrystallites, interdiffusion, and/or intermixing. We explore the elimination of nanocrystallites in combination with interface smoothening by modulation of ion assistance during magnetron sputter deposition of 0.8 to 6.4 nm thick Ni and Ti layers. The amorphization is achieved through incorporation of natural B4C where B and C preferably bond to Ti. A two-stage substrate bias was applied to each layer; -30 V for the initial 1 nm followed by -100 V for the remaining part, generating multilayer mirrors with interface widths of 0.40-0.45 nm. The results predict that high performance supermirrors with m-values as high as 10 are feasible by using 11B isotope-enriched B4C combined with temporal control of the ion assistance.

Place, publisher, year, edition, pages
Optica Publishing Group , 2023. Vol. 13, no 5, p. 1424-1439
Keywords [en]
Ion beam analysis; Ion beams; Magnetic fields; Optical components; X ray diffraction; X ray mirrors
National Category
Subatomic Physics
Identifiers
URN: urn:nbn:se:liu:diva-193550DOI: 10.1364/OME.476713ISI: 000994009100005OAI: oai:DiVA.org:liu-193550DiVA, id: diva2:1754905
Note

Funding: Stiftelsen för Strategisk Forskning; Vetenskapsrådet.

Available from: 2023-05-05 Created: 2023-05-05 Last updated: 2025-02-14Bibliographically approved
In thesis
1. Multilayer neutron optics based on isotope-enriched 11B4C
Open this publication in new window or tab >>Multilayer neutron optics based on isotope-enriched 11B4C
2023 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The work in this thesis covers the design, growth and characterisation of neutron multilayers. The achieved reflectivity performance of a neutron multilayer depends on the achieved optical contrast between the layers as well as the achieved interface width between the layers. Because the reflectivity of a neutron multilayer depends exponentially on the square of the interface width, even a modest improvement can substantially increase the achieved reflectivity performance. It is for this reason that a large part of this work has been focused in making smoother and more abrupt multilayers, descreasing the total interface width. As multilayers are such an integral component of most neutron optical instruments, any improvement in terms of reflectivity performance has broad implications for all conducted neutron scattering experiments. 

The conventional material system of choice for neutron optical components is Ni/Ti, owing to the high contrast in scattering length density (SLD). The reflected intensity of such components is largely dependent on the interface width, primarily caused by the formation of nanocrystallites, interdiffusion, and/or intermixing. Apart from hampering the reflectivity performance, the finite interface width between the layers also limits the minimum usable layer thickness in the mirror stack. In this work, Ni/Ti based multilayers are grown using ion‐assisted magnetron sputtering. By co‐depositing B4C in the multilayer stack, the for‐mation of nanocrystallites as well as intermetallics between the interfaces were succesfully prevented. The co‐deposition of B4C has been combined with a modulated ion assistance scheme, where an initial buffer layer is grown at a low ion energy creating abrupt interfaces, while the remainder of the layer is grown at a higher ion energy, smoothening the interfaces. X‐ray reflectivity (XRR) measurements show significant improvements in terms of reflectivity when the multilayers are co‐deposited with B4C . This has further been investigated using low neutron‐absorbing isotope‐enriched 11B4C . The deposited 11B4C containing multilayers have been, characterized using neutron reflectometry, X-ray reflectivity, transmission electron microscopy, elastic recoil detection analysis, X‐ray photoelectron spectroscopy and grazing incidence small angle scattering (GISAXS). Structural parameters in the growth direction such as interface width and thickness variations have been determined by combined fits on X‐ray and neutron reflectivity measurements, while the interface morphology has been investigated using GISAXS. The GISAXS measurements show that the co‐deposition of 11B4C leads to mounded interfaces with more strongly vertically correlated interface profiles, this can be attributed to a decreased adatom mobility when 11B4C is incorporated. The coupled fits to specular X‐ray and neutron reflectivity measurements suggest a significant improvement in interface width for the samples that have been co‐deposited with 11B4C using a modulated on assistance scheme during deposition, where an interface width of 2.7 Å has been achieved in a 11B4C containing multilayer. The reflectivity for such 11B4C containing multilayers have been simulated for a neutron supermirror (N = 5000) using the IMD software. The predicted reflectivity performance at the critical angle of an m = 6 supermirror for the 11B4C containing samples amounts to about 76%, which is a significant increase compared to the current state‐of‐the‐art supermirrors made with pure Ni/Ti, which have a predicted reflectivity of 65%. This results in a reflectivity increase from 1.3% to 6.6% after a total of 10 reflections from this critical angle, translating to an increase of over 500% for neutrons reflected at this angle. At lower incidence angles, corresponding to thicker periods, the current state‐of‐the‐art is expected to perform better due the higher optical contrast. By combining a material system with a higher optical contrast in the thicker layers with 11B4C containing multilayers in the thinner layers, a high reflectivity performance can be obtained over all reflected incidence angles. This has been demonstrated by a proof of concept, where thicker Ni/Ti multilayers with thin (0.15 nm) 11B4C interlayers between the interfaces show the best reflectivity at a period of 84 Å, while 11B4C deposited in both multilayer stacks has shown the best reflectivity performance at thinner periods at 48 Å and 30 Å. 

Chemically homogeneous B4C interference mirrors with 11B/10B isotope modulation have been investigated as well to seek new possibilities for future neutron optical components. Preliminary neutron reflectometry were performed, showing very promising results with 10% absolute reflectivity for a 128 nm thick multilayer consisting of only 20 bilayer periods with a periodicity of 33.1 Å, showing how only few layers are needed for a high reflectivity. 

Place, publisher, year, edition, pages
Linköping: Linköping University Electronic Press, 2023. p. 115
Series
Linköping Studies in Science and Technology. Dissertations, ISSN 0345-7524 ; 2326
National Category
Subatomic Physics
Identifiers
urn:nbn:se:liu:diva-193552 (URN)10.3384/9789180752305 (DOI)9789180752299 (ISBN)9789180752305 (ISBN)
Public defence
2023-06-09, Nobel (BL32), B-Building, Campus Valla, Linköping, 09:15 (English)
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Available from: 2023-05-05 Created: 2023-05-05 Last updated: 2025-02-14Bibliographically approved

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Eriksson, FredrikGhafoor, NaureenBroekhuijsen, SjoerdGreczynski, GrzegorzBirch, Jens

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