High-power lasers that fit into a university-scale laboratory can now reach focused intensities of more than 10 19 W cm -2 at high repetition rates. Such lasers are capable of producing beams of energetic electrons, protons and γ-rays. Relativistic electrons are generated through the breaking of large-amplitude relativistic plasma waves created in the wake of the laser pulse as it propagates through a plasma, or through a direct interaction between the laser field and the electrons in the plasma. However, the electron beams produced from previous laser-plasma experiments have a large energy spread, limiting their use for potential applications. Here we report high-resolution energy measurements of the electron beams produced from intense la...
Relativistic electron beams have applications spanning materials science, medicine, and home- land s...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
The interaction of high intensity laser pulses with underdense plasma is investigated experimentally...
High-power lasers that fit into a university-scale laboratory can now reach focused intensities of m...
In recent times, the development of high power lasers has advanced such that focused intensities of ...
Experiments performed with the high-contrast 0.7-J 35-fs Ti:sapphire laser at the Lund Laser Centre ...
Experiments performed with the high-contrast 0.7-J 35-fs Ti:sapphire laser at the Lund Laser Centre ...
We report the observation of monoenergetic electron beams (dE/E < 5%) produced by the interaction of...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
We report the observation of monoenergetic electron beams (dE/E < 5%) produced by the interaction...
Monoenergetic beams containing more than $10^6$ electrons with the energy of $25\,{\rm MeV}$ are gen...
Relativistic electron beams have applications spanning materials science, medicine, and home- land s...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
The interaction of high intensity laser pulses with underdense plasma is investigated experimentally...
High-power lasers that fit into a university-scale laboratory can now reach focused intensities of m...
In recent times, the development of high power lasers has advanced such that focused intensities of ...
Experiments performed with the high-contrast 0.7-J 35-fs Ti:sapphire laser at the Lund Laser Centre ...
Experiments performed with the high-contrast 0.7-J 35-fs Ti:sapphire laser at the Lund Laser Centre ...
We report the observation of monoenergetic electron beams (dE/E < 5%) produced by the interaction of...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
We report the observation of monoenergetic electron beams (dE/E < 5%) produced by the interaction...
Monoenergetic beams containing more than $10^6$ electrons with the energy of $25\,{\rm MeV}$ are gen...
Relativistic electron beams have applications spanning materials science, medicine, and home- land s...
The physics of the interaction of high-intensity laser pulses with underdense plasma depends not onl...
The interaction of high intensity laser pulses with underdense plasma is investigated experimentally...