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The dependence of the Q-value on the RF field (Q-slope) is actively studied in various accelerator laboratories. Although remedies against this dependence have been found, the physical cause still remains obscure. A rather straightforward…

Accelerator Physics · Physics 2015-05-29 Ralf Eichhorn , Daniel Gonnella , Georg Hoffstaetter , Matthias Liepe , Wolfgang Weingarten

Small (compared to coherence length) weak superconducting defects when located at the surface, combined with the proximity and percolation effects, are claimed responsible for various observations with superconducting rf accelerating…

Accelerator Physics · Physics 2023-05-03 Wolfgang Weingarten

Superconducting niobium film cavities deposited on copper substrates (Nb/Cu) have suffered from strong field-dependent surface resistance, often referred to as the Q-slope problem, since their invention. We argue that the Q-slope may not be…

Accelerator Physics · Physics 2019-07-10 A. Miyazaki , W. Venturini Delsolaro

Identifying the loss mechanisms of niobium cavities enables an accurate determination of applications for future accelerator projects and points to research topics required to mitigate current limitations. For several cavities an increasing…

Superconductivity · Physics 2017-11-27 Tobias Junginger , Sarah Aull , Wolfgang Weingarten , Carsten P. Welsch

The Q-factor of superconducting accelerating cavities can be substantially improved by a special heat treatment under N2 atmosphere (N-doping). Recent experiments at Fermi National Laboratory investigated the dependence of Q on the RF…

Accelerator Physics · Physics 2018-08-01 Wolfgang Weingarten

In niobium superconducting radio frequency (SRF) accelerating cavities a decrease of the quality factor at lower fields - a so called \emph{low field Q slope or LFQS} - has been a long-standing unexplained effect. By extending the high $Q$…

Accelerator Physics · Physics 2018-01-03 A. Romanenko , D. I. Schuster

Superconducting RadioFrequency (SRF) cavities have been developed for modern particle accelerator projects in the world. These cavities are mainly made of bulk niobium operated in superfluid or normal fluid helium. Due to the price increase…

Accelerator Physics · Physics 2024-04-08 Akira Miyazaki

First, this is a response to a criticism I have received about the paper which is mentioned in the title. Second, the aim is to show the important role of small (compared to coherence length) weak superconducting spots when located at the…

Accelerator Physics · Physics 2021-04-09 Wolfgang Weingarten

A detailed thermal analysis of a Niobium (Nb) based superconducting radio frequency (SRF) cavity in a liquid helium bath is presented, taking into account the temperature and magnetic field dependence of the surface resistance and thermal…

Accelerator Physics · Physics 2025-11-26 Arup Ratan Jana , Abhay Kumar , Vinit Kumar , Sindhunil Barman Roy

Superconducting radio-frequency (SRF) niobium cavities are critical for modern particle accelerators, as well as for advancing superconducting quantum systems and enabling ultra-sensitive searches for new physics. In this work, we report a…

Accelerator Physics · Physics 2025-05-21 D. Bafia , A. Grassellino , M. Checchin , J. F. Zasadzinski , A. Romanenko

Bulk niobium is the material mostly used in RF superconducting cavities for accelerator. Predicting and reducing the surface dissipation in RF is mandatory, since it has a tremendous cost impact on most of the large accelerator projects.…

Accelerator Physics · Physics 2018-02-21 C. Z. Antoine

In this study, we present new insights on the origin of the high-field Q-slope in superconducting radio-frequency cavities. Consequent hydrofluoric acid rinses are used to probe the radio-frequency performance as a function of the material…

Accelerator Physics · Physics 2020-07-29 Mattia Checchin , Anna Grassellino

Superconducting niobium serves as a key enabling material for superconducting radio frequency (SRF) technology as well as quantum computing devices. At room temperature, hydrogen commonly occupies tetragonal sites in the Nb lattice as metal…

We report a surface treatment that systematically improves the quality factor of niobium radio frequency cavities beyond the expected limit for niobium. A combination of annealing in a partial pressure of nitrogen or argon gas and…

The radio-frequency surface resistance of niobium resonators is incredibly reduced when nitrogen impurities are dissolved as interstitial in the material, conferring ultra-high Q-factors at medium values of accelerating field. This effect…

An increase in the quality factor of superconducting radiofrequency cavities is achieved by minimizing the surface resistance during processing steps. The surface resistance is the sum of temperature independent residual resistance and…

Accelerator Physics · Physics 2016-11-17 Pashupati Dhakal , Gianluigi Ciovati , Peter Kneisel , Ganapati Rao Myneni

Experimental data on N-doped superconducting (sc) cavities are further analyzed which contribute to confirm a recently proposed model explaining the increase of the Q-value versus the accelerating gradient.

Accelerator Physics · Physics 2022-07-26 Wolfgang Weingarten

The onset of high field Q-slope (HFQS) around 25 MV/m prevents cavities in electropolished (EP) condition from reaching high quality factors at high gradients due to the precipitation of niobium hydrides during cooldown. These hydrides are…

Accelerator Physics · Physics 2023-07-21 K. Howard , Y. -K. Kim , D. Bafia , A. Grassellino

Niobium provides the basis for all superconducting radio frequency (SRF) cavities in use, however, hydrogen is readily absorbed by niobium during cavity fabrication and subsequent niobium hydride precipitation when cooled to cryogenic…

Superconductivity · Physics 2018-11-14 P. Garg , S. Balachandran , I. Adlakha , P. J. Lee , T. R. Bieler , K. N. Solanki

Niobium films are of interest in applications in various superconducting devices, such as superconducting radiofrequency cavities for particle accelerators and superconducting qubits for quantum computing. In this study, we addressed the…

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