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Niobium superconducting radiofrequency cavities enable applications in modern accelerators and quantum computers. However, the surface resistance significantly deteriorates the cavities performance. Nitrogen doping surface treatment can…

材料科学 · 物理学 2022-07-28 Xiaotian Fang , Jin-Su Oh , Matt Kramer , A. Romanenko , A. Grassellino , John Zasadzinski , Lin Zhou

The superconducting radio-frequency (SRF) community has shown that introducing certain impurities into high-purity niobium can improve quality factors and accelerating gradients. We question why some impurities improve RF performance while…

加速器物理 · 物理学 2023-07-13 K. Howard , Y. -K. Kim , D. Bafia , A. Grassellino

We present results on the effects of interstitial oxygen and carbon on a bulk-niobium superconducting radio-frequency cavity. Previous experiments have shown that high-temperature (~800 $^\circ\text{C}$) nitrogen-doping plays the dominant…

加速器物理 · 物理学 2017-02-02 P. N. Koufalis , D. L. Hall , M. Liepe , J. T. Maniscalco

Previous work has demonstrated that the radio frequency surface resistance of niobium resonators is dramatically reduced when nitrogen impurities are dissolved as interstitial in the material. The origin of this effect is attributed to the…

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…

Advances in SRF technology over the last 40 years allowed achieving accelerating gradients ~ 50 MV/m corresponding to peak surface magnetic field close to the theoretical limit of niobium. However, the quality factor decreases significantly…

加速器物理 · 物理学 2020-08-05 Pashupati Dhakal

We report the finding of new surface treatments that permit to manipulate the niobium resonator nitrogen content in the first few nanometers in a controlled way, and the resonator fundamental Mattis-Bardeen surface resistance and residual…

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…

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…

加速器物理 · 物理学 2025-05-21 D. Bafia , A. Grassellino , M. Checchin , J. F. Zasadzinski , A. Romanenko

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…

超导电性 · 物理学 2018-11-14 P. Garg , S. Balachandran , I. Adlakha , P. J. Lee , T. R. Bieler , K. N. Solanki

This paper reports on a surface impedance measurement of a niobium titanium superconducting radio frequency (SRF) cavity in a magnetic field (up to $10\,{\rm T}$). A novel method is employed to decompose the surface resistance contributions…

加速器物理 · 物理学 2023-04-05 T. Braine , G. Rybka , A. A. Baker , J. Brodsky , G. Carosi , N. Du , N. Woollett , S. Knirck , M. Jones

Recently, Nb superconducting radio frequency cavities vacuum heat treated between 300-400 C for a few hours have exhibited very high quality factors (~5x10^10 at 2.0 K). New secondary ion mass spectrometry measurements of O, N and C show…

超导电性 · 物理学 2021-09-15 Eric Lechner , Jonathan Angle , Fred Stevie , Michael Kelley , Charles Reece , Ari Palczewski

A detailed study of the near-surface structure and composition of Nb, the material of choice for Superconducting Radio Frequency accelerator (SRF) cavities, is of great importance in order to understand the effects of different treatments…

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…

加速器物理 · 物理学 2016-11-17 Pashupati Dhakal , Gianluigi Ciovati , Peter Kneisel , Ganapati Rao Myneni

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.…

加速器物理 · 物理学 2018-02-21 C. Z. Antoine

Nitrogen doping study on niobium (Nb) samples used for the fabrication of superconducting radio frequency (SRF) cavities was carried out. The samples' surface treatment was attempted to replicate that of the Nb SRF cavities, which includes…

加速器物理 · 物理学 2018-04-23 Ziqin Yang , Xiangyang Lu , Weiwei Tan , Jifei Zhao , Deyu Yang , Yujia Yang , Yuan He , Kui Zhou

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…

加速器物理 · 物理学 2025-11-26 Arup Ratan Jana , Abhay Kumar , Vinit Kumar , Sindhunil Barman Roy

Recent advances in surface treatments of Niobium superconducting radio frequency (SRF) cavities have led to substantially increased Q-factors and maximum surface field. This poses theoretical challenges to identify the mechanisms…

超导电性 · 物理学 2019-09-04 Vudtiwat Ngampruetikorn , J. A. Sauls

It is well known that moderate temperature baking of niobium cavities can improve the surface resistance. Presently, it is believed that the diffusion of oxygen into the bulk, resulting in interstitial defects, is responsible for the…

加速器物理 · 物理学 2023-06-09 Yegor Tamashevich , Alena Prudnikava , Jens Knobloch

Accurate SIMS measurement of nitrogen in niobium relies on the use of closely equivalent standards, made by ion implantation, to convert nitrogen signal intensity to nitrogen content by determination of relative sensitivity factors (RSF).…

加速器物理 · 物理学 2024-06-19 Jonathan Angle , Ari Palczewski , Charles E. Reece , Fred A. Stevies , Michael J. Kelley
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