Difference between revisions of "Research"
From KAIST Quantum Computing Lab Wiki
Jump to navigationJump to searchm (→Lab Photos) |
m |
||
Line 1: | Line 1: | ||
<big> | <big> | ||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
− | |||
=== Quantum Control === | === Quantum Control === | ||
Line 48: | Line 26: | ||
</td></table> | </td></table> | ||
+ | === Lab Photos === | ||
+ | <big> '''1. Quantum Control Lab at Physics 3317''' </big> | ||
+ | <table style="border-collapse:collapse"> | ||
+ | <td> | ||
+ | [[Image:Ti_sapphire_laser_amplifier.jpg|300px|none|thumb|High-power Laser lab for Quantum Control (home made) ]] | ||
+ | </td> | ||
+ | <td width="20"></td> | ||
+ | <td> | ||
+ | [[Image:Magneto-optical trap.jpg|300px|none|thumb|Magneto-optical trap for Rb atoms]] | ||
+ | </td></table> | ||
+ | |||
+ | <big> '''2. Ultrafast Spectroscopy Lab in KI Basement''' </big> | ||
+ | <table style="border-collapse:collapse"> | ||
+ | <td>[[Image:Pump-probe setup.JPG|300px|none|thumb|Optical Pump-probe spectroscope]] | ||
+ | </td> | ||
+ | <td width="20"></td> | ||
+ | <td> | ||
+ | [[Image:TDS3.jpg|300px|none|thumb|THz-TDS, Laser-THz Emission Microscope]] | ||
+ | </td> | ||
+ | <td> | ||
+ | [[Image:Magneto-optic setup.JPG|300px|none|thumb|Magneto-optic THz Spectroscope]] | ||
+ | </td> | ||
+ | </table> | ||
=== Miscellaneous === | === Miscellaneous === | ||
Line 54: | Line 55: | ||
*'''[[Intro in Korean]]''' | *'''[[Intro in Korean]]''' | ||
− | |||
− | |||
</big> | </big> | ||
__NOTOC__ | __NOTOC__ |
Revision as of 08:20, 31 August 2012
Quantum Control
Recent advances in ultrafast laser and optical pulse shaping techniques have brought the use of shaped pulses of optical frequency for the manipulation of quantum systems. This field, known as quantum control, though being started as a theoretical exercise, has rapidly become an experimental reality in a vast variety of materials extending from atoms and molecules to condensed matter and biological materials. latest results |
Ultra-cold Molecular Quantum Computing
Quantum computing seeks to write, process, and read information on quantum level. We envision that the phase evolution of vibration wave-packets of ultra-cold diatomic molecules captured in magneto optical trap computes quantum algorithms. latest results |
Terahertz Optics
Terahertz science and technology has attracted much interest because of its many up-and-coming applications in communication, material characterization, and imaging. The left figure shows our latest invention of THz coherent optical computation imaging. latest results |
Lab Photos
1. Quantum Control Lab at Physics 3317
2. Ultrafast Spectroscopy Lab in KI Basement
Miscellaneous