Title :
Ultrafast laser induced microexplosion: A new strategy to synthesise super-dense nanomaterials
Author :
Juodkazis, Saulius ; Misawa, Hiroaki ; Gamaly, Eugene G. ; Rode, Andrei V.
Author_Institution :
Res. Inst. for Electron. Sci., Hokkaido Univ., Sapporo, Japan
Abstract :
The authors demonstrate the ability to compress materials to high density/temperature using femtosecond laser pulses from a standard table-top laser tightly focused inside transparent dielectrics such as glass, quartz, or sapphire. Extremely high pressure (~10 TPa) and temperature (5 times105K) have been produced using a single ~200 fs laser pulse focused inside transparent dielectrics. The laser pulse of intensity over 0.1 PW/cm2 converts a material within the absorption volume of ~0.15 mm3 into plasma in a few femtoseconds. A pressure of ~10 TPa, far exceeding the strength of any material, builds up to the end of the pulse. The pressure generates strong shock and rarefaction waves. Finally, this results in the formation of a nano-void surrounded by a shell of shock-compressed material. In sapphire, the size of the compressed shell revealed that it has a density 1.14 times of the initial sapphire density. The unique conditions, namely, the extreme pressure and temperature at record high heating and cooling rates become available in a well-controlled laboratory environment.
Keywords :
densification; high-speed optical techniques; laser materials processing; nanotechnology; femtosecond laser pulse; material compression; pressure 10 TPa; superdense nanomaterials; temperature 500000 K; ultrafast laser induced microexplosion; Absorption; Dielectric materials; Glass; Nanomaterials; Optical materials; Optical pulses; Plasma materials processing; Plasma temperature; Plasma waves; Pulse compression methods;
Conference_Titel :
Lasers and Electro-Optics 2009 and the European Quantum Electronics Conference. CLEO Europe - EQEC 2009. European Conference on
Conference_Location :
Munich
Print_ISBN :
978-1-4244-4079-5
Electronic_ISBN :
978-1-4244-4080-1
DOI :
10.1109/CLEOE-EQEC.2009.5192211