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A Beam Driven Plasma-Wakefield Linear Collider: From Higgs Factory to Multi-TeV
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Plasma wakefield acceleration (PWFA) holds much promise for advancing the energy frontier because it can potentially provide a 1000-fold or more increase in acceleration gradient with excellent power efficiency in respect with standard technologies. Most of the advances in beam-driven plasma wakefield acceleration were obtained by a UCLA/USC/SLAC collaboration working at the SLAC FFTB[ ]. These experiments have shown that plasmas can accelerate and focus both electron and positron high energy beams, and an accelerating gradient in excess of 50 GeV/m can be sustained in an 85 cm-long plasma. The FFTB experiments were essentially proof-of-principle experiments that showed the great potential of plasma accelerators. The FACET[ ] test facility at SLAC will in the period 2012-2016 further study several issues that are directly related to the applicability of PWFA to a high-energy collider, in particular two-beam acceleration where the witness beam experiences high beam loading (required for high efficiency), small energy spread and small emittance dilution (required to achieve luminosity). The PWFA-LC concept presented in this document is an attempt to find the best design that takes advantage of the PWFA, identify the critical parameters to be achieved and eventually the necessary R&D to address their feasibility. It best benefits from the extensive R&D that has been performed for conventional rf linear colliders during the last twenty years, especially ILC[ ] and CLIC[ ], with a potential for a comparably lower power consumption and cost.
Forward citations
Cited by 2 Pith papers
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Demonstration of a tandem lens for producing shaped laser-ionized plasmas for plasma wakefield acceleration
A tandem diffractive lens system focuses an ultrafast high-power laser into a shaped meter-long Bessel beam, with measured on-axis fluence matching simulation to within a few percent.
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PWFA linear collider improvements -- from previous concepts to HALHF
A summary of design changes from the 2013 PWFA-LC concept to the HALHF 2.0 baseline, containing no new results.
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