Both helium and ammonia are main components of icy giant planets. While ammonia is very reactive, helium is the most inert element in the universe. It is of great interest whether ammonia and helium can react with each other under planetary conditions, and if so, what kinds of structures and states of matter can form. Here, using crystal structure prediction methods and first-principles calculations, we report three new stable stoichiometries and eight new stable phases of He-NH_{3} compounds under pressures up to 500 GPa. These structures may exhibit perovskitelike structures for HeNH_{3} and He_{2}NH_{3}, and a host-guest crystal structure for He(NH_{3})_{2}. Superionic states are found in all these He-NH_{3} compounds under high pressure...
The interaction between ammonia and helium has attracted considerable interest over many years, part...
Abstract The elements hydrogen, carbon, nitrogen and oxygen are assumed to comprise the bulk of the ...
Ammonia borane (NH3BH3) is a promising hydrogen-storage material because of its high hydrogen densit...
Helium, ammonia and ice are among the major components of giant gas planets, and predictions of thei...
Helium and methane are major components of giant icy planets and are abundant in the universe. Howev...
Helium is generally considered too inert to be present in giant ice planet mantles. The authors, by ...
Superionic states are phases of matter that can simultaneously exhibit some of the properties of a l...
Hydrogen-rich compounds attract significant fundamental and practical interest for their ability to ...
Helium is the second most abundant element in the universe, and together with silica, they are impor...
International audienceWater and ammonia are considered major components of the interiors of the gian...
We investigate the binary phase diagram of helium and iron using first-principles calculations. We f...
International audienceSolid mixtures of ammonia and water, the so-called ammonia hydrates, are thoug...
Modern ab initio calculations predict ionic and superionic states in highly compressed water and amm...
The ice giants Uranus and Neptune, and exoplanets like them, contain large amounts of water, ammoni...
International audienceNew topochemistry in simple molecular systems can be explored at high pressure...
The interaction between ammonia and helium has attracted considerable interest over many years, part...
Abstract The elements hydrogen, carbon, nitrogen and oxygen are assumed to comprise the bulk of the ...
Ammonia borane (NH3BH3) is a promising hydrogen-storage material because of its high hydrogen densit...
Helium, ammonia and ice are among the major components of giant gas planets, and predictions of thei...
Helium and methane are major components of giant icy planets and are abundant in the universe. Howev...
Helium is generally considered too inert to be present in giant ice planet mantles. The authors, by ...
Superionic states are phases of matter that can simultaneously exhibit some of the properties of a l...
Hydrogen-rich compounds attract significant fundamental and practical interest for their ability to ...
Helium is the second most abundant element in the universe, and together with silica, they are impor...
International audienceWater and ammonia are considered major components of the interiors of the gian...
We investigate the binary phase diagram of helium and iron using first-principles calculations. We f...
International audienceSolid mixtures of ammonia and water, the so-called ammonia hydrates, are thoug...
Modern ab initio calculations predict ionic and superionic states in highly compressed water and amm...
The ice giants Uranus and Neptune, and exoplanets like them, contain large amounts of water, ammoni...
International audienceNew topochemistry in simple molecular systems can be explored at high pressure...
The interaction between ammonia and helium has attracted considerable interest over many years, part...
Abstract The elements hydrogen, carbon, nitrogen and oxygen are assumed to comprise the bulk of the ...
Ammonia borane (NH3BH3) is a promising hydrogen-storage material because of its high hydrogen densit...