Planetary-scale magnetic fields are a window to a planet’s interior and provide shielding of the planet’s atmosphere and surface for life. The Earth, Mercury, Ganymede, and the giant planets of the solar system all contain internal dynamo currents that generate planetary-scale magnetic fields. When coupled to energetic (keV) electrons, such as those produced by solar wind-magnetosphere interaction (compression or magnetic reconnection), magnetosphere-ionosphere or magnetosphere-satellite coupling, the polar regions of a planetary magnetic field are the place of intense, coherent, circularly polarized cyclotron radio emissions. These emissions – that may be as intense as solar ones – are produced by all magnetized planets in the solar system...
The detection of radio emission from an exoplanet would constitute the best way to determine its mag...
International audienceThe intensity of Jupiter's auroral radio emission quickly gave rise to the que...
Jupiter's radio emission has been linked to its planetary-scale magnetic field, and spacecraft inves...
Planetary-scale magnetic fields are a window to a planet’s interior and provide shielding of the pla...
Like the magnetized planets in our Solar system, magnetized exoplanets should emit strongly at radio...
The relatively high contrast between planetary and solar low frequency radio emissions suggests that...
The magnetospheric emissions from extrasolar planets represent a science frontier for the next decad...
International audienceThe relatively high contrast between planetary and solar low-frequency radio e...
Context. The search for radio emission from extra-solar planets has so far been unsuccessful. Much o...
All magnetized planets are known to produce intense non thermal radio emissions through a mechanism ...
Context. The search for radio emission from extra-solar planets has so far been unsuccessful. Much o...
We briefly review the various proposed scenarios that may lead to nonthermal radio emissions from ex...
Context. The magnetized wind from stars that impact exoplanets should lead to radio emissions. Accor...
The intensity of Jupiter’s auroral radio emission quickly gave rise to the question whether a compar...
The detection of radio emission from an exoplanet would constitute the best way to determine its mag...
International audienceThe intensity of Jupiter's auroral radio emission quickly gave rise to the que...
Jupiter's radio emission has been linked to its planetary-scale magnetic field, and spacecraft inves...
Planetary-scale magnetic fields are a window to a planet’s interior and provide shielding of the pla...
Like the magnetized planets in our Solar system, magnetized exoplanets should emit strongly at radio...
The relatively high contrast between planetary and solar low frequency radio emissions suggests that...
The magnetospheric emissions from extrasolar planets represent a science frontier for the next decad...
International audienceThe relatively high contrast between planetary and solar low-frequency radio e...
Context. The search for radio emission from extra-solar planets has so far been unsuccessful. Much o...
All magnetized planets are known to produce intense non thermal radio emissions through a mechanism ...
Context. The search for radio emission from extra-solar planets has so far been unsuccessful. Much o...
We briefly review the various proposed scenarios that may lead to nonthermal radio emissions from ex...
Context. The magnetized wind from stars that impact exoplanets should lead to radio emissions. Accor...
The intensity of Jupiter’s auroral radio emission quickly gave rise to the question whether a compar...
The detection of radio emission from an exoplanet would constitute the best way to determine its mag...
International audienceThe intensity of Jupiter's auroral radio emission quickly gave rise to the que...
Jupiter's radio emission has been linked to its planetary-scale magnetic field, and spacecraft inves...