This paper explores the physics of vacuum rf breakdowns in subterahertz high-gradient traveling-wave accelerating structures. We present the experimental results of rf tests of 200 GHz metallic accelerating structures, made of copper and copper-silver. These experiments were carried out at the Facility for Advanced Accelerator Experimental Tests (FACET) at the SLAC National Accelerator Laboratory. The rf fields were excited by the FACET ultrarelativistic electron beam. The traveling-wave structure is an open geometry, 10 cm long, composed of two halves separated by a gap. The rf frequency of the fundamental accelerating mode depends on the gap size and can be changed from 160 to 235 GHz. When the beam travels off axis, a deflecting field is...
The CLIC project is based on normal-conducting high-gradient accelerating structures with an average...
A prototype 11.994 GHz, traveling-wave accelerating structure for the Compact Linear Collider has be...
Rf breakdown studies in an S-band standing-wave disk-loaded accelerator structure have been complete...
We are exploring the physics and frequency-scaling of vacuum rf breakdowns at sub-THz frequencies. W...
We are exploring the physics and frequency-scaling of vacuum rf breakdowns at sub-THz frequencies. W...
Experiments with high gradient traveling-wave mm-wave metallic accelerating structures were performe...
We present an experimental study of a high gradient metallic accelerating structure at sub-THz frequ...
Experiments with high gradient traveling-wave mm-wave metallic accelerating structures were performe...
Normal conducting radio-frequency (rf) particle accelerators have many applications, including colli...
Vacuum radio-frequency (rf) breakdown is one of the major factors that limit operating accelerating ...
Our experiments are directed toward the understanding of the physics of rf breakdown in systems that...
Linacs for high-energy physics, as well as for industry and medicine, require accelerating structure...
We present the experimental results of a systematic study of rf breakdown phenomenon in high vacuum ...
This communication focuses on the technological developments aiming to show the viability of novel w...
The CLIC project is based on normal-conducting high-gradient accelerating structures with an average...
The CLIC project is based on normal-conducting high-gradient accelerating structures with an average...
A prototype 11.994 GHz, traveling-wave accelerating structure for the Compact Linear Collider has be...
Rf breakdown studies in an S-band standing-wave disk-loaded accelerator structure have been complete...
We are exploring the physics and frequency-scaling of vacuum rf breakdowns at sub-THz frequencies. W...
We are exploring the physics and frequency-scaling of vacuum rf breakdowns at sub-THz frequencies. W...
Experiments with high gradient traveling-wave mm-wave metallic accelerating structures were performe...
We present an experimental study of a high gradient metallic accelerating structure at sub-THz frequ...
Experiments with high gradient traveling-wave mm-wave metallic accelerating structures were performe...
Normal conducting radio-frequency (rf) particle accelerators have many applications, including colli...
Vacuum radio-frequency (rf) breakdown is one of the major factors that limit operating accelerating ...
Our experiments are directed toward the understanding of the physics of rf breakdown in systems that...
Linacs for high-energy physics, as well as for industry and medicine, require accelerating structure...
We present the experimental results of a systematic study of rf breakdown phenomenon in high vacuum ...
This communication focuses on the technological developments aiming to show the viability of novel w...
The CLIC project is based on normal-conducting high-gradient accelerating structures with an average...
The CLIC project is based on normal-conducting high-gradient accelerating structures with an average...
A prototype 11.994 GHz, traveling-wave accelerating structure for the Compact Linear Collider has be...
Rf breakdown studies in an S-band standing-wave disk-loaded accelerator structure have been complete...