Intense ultrafast laser pulses tightly focused in the bulk of transparent material produce plasma in the extreme conditions similar to those in the cores of planets. The plasma generates strong shock waves in such confined geometry, thus inducing a laser-ignited microexplosion. This new method of compression of matter by ultra-short laser induced micro-explosion generates pressures in excess of Terapascals, leaving all the pressure/temperature-affected material confined inside the bulk of pristine crystal for the further investigations [1,2]. In contrast to dynamic (shock wave) and static (diamond-anvil cell) methods, the initial materials in a microexplosion are transformed into the high entropy state of extreme dense plasma where the memo...
Extremely high pressures (∼10TPa) and temperatures (5×105K) have been produced using a single laser ...
We describe synthesis of a new super-dense phase of aluminum under extreme pressure and temperature ...
International audienceUltrafast laser microexplosions in bulk material create extreme conditions at ...
Intense ultrafast laser pulses tightly focused in the bulk of transparent material produce plasma i...
Femtosecond (fs) laser pulses focused and confined inside the bulk of a material can deposit a volum...
New material phases formed under non-equilibrium conditions at pressures above 100 GPa and temperatu...
Intense ultrafast laser pulses tightly focused in the bulk of transparent material interact with mat...
Ordinary materials can transform into novel phases at extraordinary high pressure and temperature. T...
We report the experimental evidence for creation of Warm Dense Matter (WDM) in ultrafast laser-induc...
Extremely high pressure (~10 Tpa) and temperature (5×105 K) have been produced using a single laser ...
We present here the experimental and theoretical studies of a single femtosecond laser pulse interac...
Confined microexplosion produced by a tightly focused fs-laser pulse inside transparent material pro...
We present here the experimental and theoretical studies of a single femtosecond laser pulse interac...
Microexplosions triggered by single femtosecond laser pulses tightly focussed inside a crystalline o...
Microexplosions triggered by single femtosecond laser pulses tightly focussed inside a crystalline o...
Extremely high pressures (∼10TPa) and temperatures (5×105K) have been produced using a single laser ...
We describe synthesis of a new super-dense phase of aluminum under extreme pressure and temperature ...
International audienceUltrafast laser microexplosions in bulk material create extreme conditions at ...
Intense ultrafast laser pulses tightly focused in the bulk of transparent material produce plasma i...
Femtosecond (fs) laser pulses focused and confined inside the bulk of a material can deposit a volum...
New material phases formed under non-equilibrium conditions at pressures above 100 GPa and temperatu...
Intense ultrafast laser pulses tightly focused in the bulk of transparent material interact with mat...
Ordinary materials can transform into novel phases at extraordinary high pressure and temperature. T...
We report the experimental evidence for creation of Warm Dense Matter (WDM) in ultrafast laser-induc...
Extremely high pressure (~10 Tpa) and temperature (5×105 K) have been produced using a single laser ...
We present here the experimental and theoretical studies of a single femtosecond laser pulse interac...
Confined microexplosion produced by a tightly focused fs-laser pulse inside transparent material pro...
We present here the experimental and theoretical studies of a single femtosecond laser pulse interac...
Microexplosions triggered by single femtosecond laser pulses tightly focussed inside a crystalline o...
Microexplosions triggered by single femtosecond laser pulses tightly focussed inside a crystalline o...
Extremely high pressures (∼10TPa) and temperatures (5×105K) have been produced using a single laser ...
We describe synthesis of a new super-dense phase of aluminum under extreme pressure and temperature ...
International audienceUltrafast laser microexplosions in bulk material create extreme conditions at ...