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Dive into the research topics where J. Holloway is active.

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Featured researches published by J. Holloway.


Plasma Physics and Controlled Fusion | 2014

Proton-driven plasma wakefield acceleration: a path to the future of high-energy particle physics

R. Assmann; R. Bingham; T. Bohl; C. Bracco; B. Buttenschön; A. Butterworth; A. Caldwell; S. Chattopadhyay; S. Cipiccia; Eduard Feldbaumer; Ricardo Fonseca; B. Goddard; M. Gross; O. Grulke; E. Gschwendtner; J. Holloway; C. Huang; D. A. Jaroszynski; S. Jolly; P. Kempkes; Nelson Lopes; K. V. Lotov; J. Machacek; S. Mandry; J. W. McKenzie; M. Meddahi; B. L. Militsyn; N. Moschuering; P. Muggli; Z. Najmudin

New acceleration technology is mandatory for the future elucidation of fundamental particles and their interactions. A promising approach is to exploit the properties of plasmas. Past research has focused on creating large-amplitude plasma waves by injecting an intense laser pulse or an electron bunch into the plasma. However, the maximum energy gain of electrons accelerated in a single plasma stage is limited by the energy of the driver. Proton bunches are the most promising drivers of wakefields to accelerate electrons to the TeV energy scale in a single stage. An experimental program at CERN—the AWAKE experiment—has been launched to study in detail the important physical processes and to demonstrate the power of proton-driven plasma wakefield acceleration. Here we review the physical principles and some experimental considerations for a future proton-driven plasma wakefield accelerator.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016

AWAKE, The Advanced Proton Driven Plasma Wakefield Acceleration Experiment at CERN

E. Gschwendtner; E. Adli; L. D. Amorim; Robert Apsimon; R. Assmann; A.M. Bachmann; F. Batsch; J. Bauche; V. K. Berglyd Olsen; M. Bernardini; R. Bingham; B. Biskup; T. Bohl; C. Bracco; Philip Burrows; Graeme Burt; B. Buttenschön; A. Butterworth; A. Caldwell; M. Cascella; Eric Chevallay; S. Cipiccia; H. Damerau; L. Deacon; P. Dirksen; S. Doebert; Ulrich Dorda; J. Farmer; Valentin Fedosseev; Eduard Feldbaumer

The Advanced Proton Driven Plasma Wakefield Acceleration Experiment (AWAKE) aims at studying plasma wakefield generation and electron acceleration driven by proton bunches. It is a proof-of-principle R&D experiment at CERN and the world׳s first proton driven plasma wakefield acceleration experiment. The AWAKE experiment will be installed in the former CNGS facility and uses the 400 GeV/c proton beam bunches from the SPS. The first experiments will focus on the self-modulation instability of the long (rms ~12 cm) proton bunch in the plasma. These experiments are planned for the end of 2016. Later, in 2017/2018, low energy (~15 MeV) electrons will be externally injected into the sample wakefields and be accelerated beyond 1 GeV. The main goals of the experiment will be summarized. A summary of the AWAKE design and construction status will be presented.


Philosophical Transactions of the Royal Society A | 2014

Compact laser accelerators for X-ray phase-contrast imaging

Z. Najmudin; S. Kneip; M. S. Bloom; S. P. D. Mangles; Oleg Chekhlov; A. E. Dangor; Andreas Döpp; Klaus Ertel; S. Hawkes; J. Holloway; C. J. Hooker; J. Jiang; Nelson Lopes; Hirotaka Nakamura; P. A. Norreys; P. P. Rajeev; C. Russo; Matthew Streeter; D. R. Symes; M. Wing

Advances in X-ray imaging techniques have been driven by advances in novel X-ray sources. The latest fourth-generation X-ray sources can boast large photon fluxes at unprecedented brightness. However, the large size of these facilities means that these sources are not available for everyday applications. With advances in laser plasma acceleration, electron beams can now be generated at energies comparable to those used in light sources, but in university-sized laboratories. By making use of the strong transverse focusing of plasma accelerators, bright sources of betatron radiation have been produced. Here, we demonstrate phase-contrast imaging of a biological sample for the first time by radiation generated by GeV electron beams produced by a laser accelerator. The work was performed using a greater than 300 TW laser, which allowed the energy of the synchrotron source to be extended to the 10–100 keV range.


Physical Review E | 2017

Dense plasma heating by crossing relativistic electron beams

Naren Ratan; N. J. Sircombe; Luke Ceurvorst; James Sadler; Muhammad Firmansyah Kasim; J. Holloway; M. C. Levy; Raoul Trines; R. Bingham; P. A. Norreys

Here we investigate, using relativistic fluid theory and Vlasov-Maxwell simulations, the local heating of a dense plasma by two crossing electron beams. Heating occurs as an instability of the electron beams drives Langmuir waves, which couple nonlinearly into damped ion-acoustic waves. Simulations show a factor 2.8 increase in electron kinetic energy with a coupling efficiency of 18%. Our results support applications to the production of warm dense matter and as a driver for inertial fusion plasmas.


Scientific Reports | 2017

Brilliant X-rays using a two-stage plasma insertion device

J. Holloway; P. A. Norreys; A. G. R. Thomas; R. Bartolini; R. Bingham; J. Nydell; R. Trines; R. Walker; M. Wing

Particle accelerators have made an enormous impact in all fields of natural sciences, from elementary particle physics, to the imaging of proteins and the development of new pharmaceuticals. Modern light sources have advanced many fields by providing extraordinarily bright, short X-ray pulses. Here we present a novel numerical study, demonstrating that existing third generation light sources can significantly enhance the brightness and photon energy of their X-ray pulses by undulating their beams within plasma wakefields. This study shows that a three order of magnitude increase in X-ray brightness and over an order of magnitude increase in X-ray photon energy is achieved by passing a 3 GeV electron beam through a two-stage plasma insertion device. The production mechanism micro-bunches the electron beam and ensures the pulses are radially polarised on creation. We also demonstrate that the micro-bunched electron beam is itself an effective wakefield driver that can potentially accelerate a witness electron beam up to 6 GeV.


Nuclear and Particle Physics Proceedings | 2016

AWAKE: A Proton-Driven Plasma Wakefield Acceleration Experiment at CERN

C. Bracco; L. D. Amorim; R. Assmann; F. Batsch; R. Bingham; Graeme Burt; B. Buttenschön; A. Butterworth; A. Caldwell; S. Chattopadhyay; S. Cipiccia; L. Deacon; S. Doebert; Ulrich Dorda; Eduard Feldbaumer; Ricardo Fonseca; V. Fedossev; B. Goddard; Julia Grebenyuk; O. Grulke; E. Gschwendtner; J. B. Hansen; C. Hessler; Wolfgang Höfle; J. Holloway; D. A. Jaroszynski; Michael Jenkins; L. Jensen; S. Jolly; R. M. Jones


Physical Review Letters | 2018

Observation of Laser Power Amplification in a Self-Injecting Laser Wakefield Accelerator

Matthew Streeter; S. Kneip; M. S. Bloom; R. A. Bendoyro; O. Chekhlov; A. E. Dangor; Andreas Döpp; C. J. Hooker; J. Holloway; J. Jiang; Nelson Lopes; Hirotaka Nakamura; P. A. Norreys; C. A. J. Palmer; P. P. Rajeev; J. Schreiber; D. R. Symes; M. Wing; S. P. D. Mangles; Z. Najmudin


Archive | 2017

Bright X-ray radiation from plasma bubbles in an evolving laser wakefield accelerator

J. Jiang; N.C. Lopes; Oleg Cheklov; R.A. Bendoyro; A. Doepp; Z. Najmudin; C. J. Hooker; S. P. D. Mangles; Hirotaka Nakamura; P. P. Rajeev; J. Holloway; P. A. Norreys; Matthew Streeter; J. Schreiber; D. R. Symes; J. M. Cole; S. Kneip; Jonathan Wood; M. Wing


Physical Review Special Topics-accelerators and Beams | 2015

Simulation of density measurements in plasma wakefields using photon acceleration

Muhammad Firmansyah Kasim; Naren Ratan; Luke Ceurvorst; James Sadler; Philip Burrows; Raoul Trines; J. Holloway; M. Wing; R. Bingham; P. A. Norreys


Bulletin of the American Physical Society | 2015

Quantitative single shot and spatially resolved plasma wakefield diagnostics

Muhammad Firmansyah Kasim; J. Holloway; Luke Ceurvorst; M. C. Levy; Naren Ratan; James Sadler; R. Bingham; Philip Burrows; Raoul Trines; M. Wing; P. A. Norreys

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P. A. Norreys

Rutherford Appleton Laboratory

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M. Wing

University College London

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R. Bingham

Rutherford Appleton Laboratory

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Z. Najmudin

Imperial College London

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D. R. Symes

Rutherford Appleton Laboratory

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S. Kneip

Imperial College London

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M. S. Bloom

Imperial College London

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