Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material

(100) Oriented niobium (Nb) crystals annealed in the vacuum conditions close to that used in mass production of 1.3 GHz superconducting radio frequency cavities for linear accelerators and treated in nitrogen at a partial pressure of 0.04 mbar at temperatures of 800 and 900 °C have been studied. The...

Full description

Bibliographic Details
Main Authors: Pandey, A, Semione, G, Prudnikava, A, Keller, T, Noei, H, Vonk, V, Tamashevich, Y, Elsen, E, Foster, B, Stierle, A
Format: Journal article
Published: Springer US 2018
_version_ 1797080143259238400
author Pandey, A
Semione, G
Prudnikava, A
Keller, T
Noei, H
Vonk, V
Tamashevich, Y
Elsen, E
Foster, B
Stierle, A
author_facet Pandey, A
Semione, G
Prudnikava, A
Keller, T
Noei, H
Vonk, V
Tamashevich, Y
Elsen, E
Foster, B
Stierle, A
author_sort Pandey, A
collection OXFORD
description (100) Oriented niobium (Nb) crystals annealed in the vacuum conditions close to that used in mass production of 1.3 GHz superconducting radio frequency cavities for linear accelerators and treated in nitrogen at a partial pressure of 0.04 mbar at temperatures of 800 and 900 °C have been studied. The surfaces of the nitrogen-treated samples were investigated by means of various surface-sensitive techniques, including grazing-incidence X-ray diffraction, X-ray photoemission spectroscopy, and scanning electron microscopy with energy-dispersive X-ray spectroscopy in planar view and on cross-sections prepared by a focused ion beam. The appearance of a dense layer of epitaxial rectangular precipitates has been observed for the Niobium nitrided at 900 °C. Increased nitrogen concentration in the near-surface region was detected by glow-discharge optical-emission spectroscopy, focused ion-beam cross-sectional images and X-ray photoelectron spectroscopy. Crystalline phases of NbO and β-Nb2N were identified by X-ray diffraction. This information was confirmed by X-ray photoelectron measurements, which in addition revealed the presence of Nb2O5, NbON, NbN, and NbN x O y components on the surface. These results establish the near-surface Nb phase composition after high-temperature nitrogen treatment, which is important for obtaining a better understanding of the improved RF cavity performance.
first_indexed 2024-03-07T00:55:57Z
format Journal article
id oxford-uuid:88168512-81f8-4631-b182-94abba66e1a4
institution University of Oxford
last_indexed 2024-03-07T00:55:57Z
publishDate 2018
publisher Springer US
record_format dspace
spelling oxford-uuid:88168512-81f8-4631-b182-94abba66e1a42022-03-26T22:14:46ZSurface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity materialJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:88168512-81f8-4631-b182-94abba66e1a4Symplectic Elements at OxfordSpringer US2018Pandey, ASemione, GPrudnikava, AKeller, TNoei, HVonk, VTamashevich, YElsen, EFoster, BStierle, A(100) Oriented niobium (Nb) crystals annealed in the vacuum conditions close to that used in mass production of 1.3 GHz superconducting radio frequency cavities for linear accelerators and treated in nitrogen at a partial pressure of 0.04 mbar at temperatures of 800 and 900 °C have been studied. The surfaces of the nitrogen-treated samples were investigated by means of various surface-sensitive techniques, including grazing-incidence X-ray diffraction, X-ray photoemission spectroscopy, and scanning electron microscopy with energy-dispersive X-ray spectroscopy in planar view and on cross-sections prepared by a focused ion beam. The appearance of a dense layer of epitaxial rectangular precipitates has been observed for the Niobium nitrided at 900 °C. Increased nitrogen concentration in the near-surface region was detected by glow-discharge optical-emission spectroscopy, focused ion-beam cross-sectional images and X-ray photoelectron spectroscopy. Crystalline phases of NbO and β-Nb2N were identified by X-ray diffraction. This information was confirmed by X-ray photoelectron measurements, which in addition revealed the presence of Nb2O5, NbON, NbN, and NbN x O y components on the surface. These results establish the near-surface Nb phase composition after high-temperature nitrogen treatment, which is important for obtaining a better understanding of the improved RF cavity performance.
spellingShingle Pandey, A
Semione, G
Prudnikava, A
Keller, T
Noei, H
Vonk, V
Tamashevich, Y
Elsen, E
Foster, B
Stierle, A
Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title_full Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title_fullStr Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title_full_unstemmed Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title_short Surface characterization of nitrogen-doped Nb (100) large-grain superconducting RF cavity material
title_sort surface characterization of nitrogen doped nb 100 large grain superconducting rf cavity material
work_keys_str_mv AT pandeya surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT semioneg surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT prudnikavaa surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT kellert surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT noeih surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT vonkv surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT tamashevichy surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT elsene surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT fosterb surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial
AT stierlea surfacecharacterizationofnitrogendopednb100largegrainsuperconductingrfcavitymaterial