A slab-symmetric dielectric-loaded accelerator structure, consisting of a vacuum gap between dielectric-lined conducting walls, is described. The device is resonantly excited by an external drive laser which is side coupled into the acceleration region; a novel coupling scheme, which consists of an array of narrow, equally spaced slots in the upper structure boundary, is presented and analyzed in detail. This structure partakes of the advantages of earlier slab-symmetric optical acceleration proposals, but will use a terahertz-frequency external radiation source (λ=340 μm), allowing realistic electron beams to be used in a proof-of-principle experiment. Two- and three-dimensional electromagnetic simulations are used to verify the mode pat...
Advanced acceleration technologies are receiving considerable interest in order to miniaturize futur...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...
Abstract. Slab-symmetric dielectric-loaded structures, consisting of a vacuum gap between dielectric...
Slab-symmetric dielectric-loaded structures, consisting of a vacuum gap between dielectric-lined con...
A slab-symmetric, partially dielectric filled, laser excited structure which maybe used to accelerat...
A dielectric-lined waveguide has been designed for use as an accelerating structure in terahertz-dri...
Recent works have established that electron beam driven wakefield not only can serve as a viable sou...
Recent works have established that electron beam driven wakefield not only can serve as a viable sou...
A wakefield accelerator uses a medium capable of sustaining appropriate electric fields to transfer ...
A class of planar microstructures is proposed which provide high accelerating gradients when excited...
Emerging high power THz sources pave the road for THz-driven manipulation and acceleration of ultra-...
A class of planar microstructure is proposed which provide high accelerating gradients when excited ...
Staged acceleration, driven by terahertz (THz) frequency radiation pulses in a lattice with alternat...
Staged acceleration, driven by terahertz (THz) frequency radiation pulses in a lattice with alternat...
Advanced acceleration technologies are receiving considerable interest in order to miniaturize futur...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...
Abstract. Slab-symmetric dielectric-loaded structures, consisting of a vacuum gap between dielectric...
Slab-symmetric dielectric-loaded structures, consisting of a vacuum gap between dielectric-lined con...
A slab-symmetric, partially dielectric filled, laser excited structure which maybe used to accelerat...
A dielectric-lined waveguide has been designed for use as an accelerating structure in terahertz-dri...
Recent works have established that electron beam driven wakefield not only can serve as a viable sou...
Recent works have established that electron beam driven wakefield not only can serve as a viable sou...
A wakefield accelerator uses a medium capable of sustaining appropriate electric fields to transfer ...
A class of planar microstructures is proposed which provide high accelerating gradients when excited...
Emerging high power THz sources pave the road for THz-driven manipulation and acceleration of ultra-...
A class of planar microstructure is proposed which provide high accelerating gradients when excited ...
Staged acceleration, driven by terahertz (THz) frequency radiation pulses in a lattice with alternat...
Staged acceleration, driven by terahertz (THz) frequency radiation pulses in a lattice with alternat...
Advanced acceleration technologies are receiving considerable interest in order to miniaturize futur...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...
Normal conducting RF systems are currently able to provide gradients of around 100 MV/m, limited by ...