Under high pressures and temperatures, molecular systems with substantial polarization charges, such as ammonia and water, are predicted to form superionic phases and dense fluid states with dissociating molecules and high electrical conductivity. This behaviour potentially plays a role in explaining the origin of the multipolar magnetic fields of Uranus and Neptune, whose mantles are thought to result from a mixture of H2O, NH3 and CH4 ices. Determining the stability domain, melting curve and electrical conductivity of these superionic phases is therefore crucial for modelling planetary interiors and dynamos. Here we report the melting curve of superionic ammonia up to 300 GPa from laser-driven shock compression of pre-compressed samples a...
We investigate via quantum molecular-dynamics simulations the thermophysical properties of shocked l...
International audienceWater, methane, and ammonia are commonly considered to be the key components o...
Modern ab initio calculations predict ionic and superionic states in highly compressed water and amm...
International audienceAmmonia is predicted to be one of the major components in the depths of the ic...
International audienceWe report the experimental discovery of a new phase of ammonia ice, stable at ...
International audienceThe melting curve and stability of ammonia (NH3) is investigated up to 40 GPa ...
Abstract The elements hydrogen, carbon, nitrogen and oxygen are assumed to comprise the bulk of the ...
The ice giants Uranus and Neptune, and exoplanets like them, contain large amounts of water, ammoni...
In order to derive models of the interiors of Uranus, Neptune, Jupiter and Saturn, researchers studi...
International audienceWater and ammonia are considered major components of the interiors of the gian...
The interiors of Neptune and Uranus are believed to be primarily composed of a fluid mixture of meth...
We investigate via quantum molecular-dynamics simulations the thermophysical properties of shocked l...
International audienceWater, methane, and ammonia are commonly considered to be the key components o...
Modern ab initio calculations predict ionic and superionic states in highly compressed water and amm...
International audienceAmmonia is predicted to be one of the major components in the depths of the ic...
International audienceWe report the experimental discovery of a new phase of ammonia ice, stable at ...
International audienceThe melting curve and stability of ammonia (NH3) is investigated up to 40 GPa ...
Abstract The elements hydrogen, carbon, nitrogen and oxygen are assumed to comprise the bulk of the ...
The ice giants Uranus and Neptune, and exoplanets like them, contain large amounts of water, ammoni...
In order to derive models of the interiors of Uranus, Neptune, Jupiter and Saturn, researchers studi...
International audienceWater and ammonia are considered major components of the interiors of the gian...
The interiors of Neptune and Uranus are believed to be primarily composed of a fluid mixture of meth...
We investigate via quantum molecular-dynamics simulations the thermophysical properties of shocked l...
International audienceWater, methane, and ammonia are commonly considered to be the key components o...
Modern ab initio calculations predict ionic and superionic states in highly compressed water and amm...