We use a quantum lattice gas model to describe essential aspects of the motion of 4He atoms and of 3He impurities in solid 4He. This study suggests that 3He impurities bind to defects and promote 4He atoms to interstitial sites which can turn the bosonic quantum disordered crystal into a metastable supersolid. It is suggested that defects and interstitial atoms are produced during the solid 4He nucleation process where the role of 3He impurities (in addition to the cooling rate) is known to be important even at very small (1 ppm) impurity concentration. It is also proposed that such defects can form a glass phase during the 4He solid growth by rapid cooling
We present a new simplified derivation of the effect of lattice relaxation that accompanies the quan...
AbstractSolid helium is paradoxical: it is both a model and an exception. It is a model for crystal ...
Motivated by experimental hints for supersolidity in Helium-4, we perform Monte Carlo simulations of...
The supersolid state of matter, exhibiting nondissipative flow in solids, has been elusive for 35 ye...
The supersolid state of matter, exhibiting nondissipative flow in solids, has been elusive for 35 ye...
For nearly half a century the supersolid phase of matter has remained mysterious, not only eluding e...
The possibility of a supersolid state of matter, i.e., a crystalline solid exhibiting superfluid pro...
Using first-principles simulations for the probability density of finding a 3He atom in the vicinity...
Although both vacancies and interstitials have relatively high activation energies in the normal sol...
We provide a semiquantitative tool, derived from first-principles simulations, for answering the que...
We provide a semiquantitative tool, derived from first-principles simulations, for answering the que...
1. Diffusion quantique d'atomes 3He dans les cristaux de 4He 2. Quasiparticules de 3He à une ou deux...
Defects are believed to play a fundamental role in the supersolid state of 4 He. We report on studie...
AbstractWe seek an explanation for the observed non-classical rotational inertia in solid Helium-4. ...
We present a theory of the thermodynamics of an incommensurate quantum solid. The ground state of th...
We present a new simplified derivation of the effect of lattice relaxation that accompanies the quan...
AbstractSolid helium is paradoxical: it is both a model and an exception. It is a model for crystal ...
Motivated by experimental hints for supersolidity in Helium-4, we perform Monte Carlo simulations of...
The supersolid state of matter, exhibiting nondissipative flow in solids, has been elusive for 35 ye...
The supersolid state of matter, exhibiting nondissipative flow in solids, has been elusive for 35 ye...
For nearly half a century the supersolid phase of matter has remained mysterious, not only eluding e...
The possibility of a supersolid state of matter, i.e., a crystalline solid exhibiting superfluid pro...
Using first-principles simulations for the probability density of finding a 3He atom in the vicinity...
Although both vacancies and interstitials have relatively high activation energies in the normal sol...
We provide a semiquantitative tool, derived from first-principles simulations, for answering the que...
We provide a semiquantitative tool, derived from first-principles simulations, for answering the que...
1. Diffusion quantique d'atomes 3He dans les cristaux de 4He 2. Quasiparticules de 3He à une ou deux...
Defects are believed to play a fundamental role in the supersolid state of 4 He. We report on studie...
AbstractWe seek an explanation for the observed non-classical rotational inertia in solid Helium-4. ...
We present a theory of the thermodynamics of an incommensurate quantum solid. The ground state of th...
We present a new simplified derivation of the effect of lattice relaxation that accompanies the quan...
AbstractSolid helium is paradoxical: it is both a model and an exception. It is a model for crystal ...
Motivated by experimental hints for supersolidity in Helium-4, we perform Monte Carlo simulations of...