TY - JOUR
T1 - Ultrafast, high repetition rate, ultraviolet, fiber-laser-based source
T2 - Application towards Yb+ fast quantum-logic
AU - Hussain, Mahmood Irtiza
AU - Petrasiunas, Matthew Joseph
AU - Bentley, Christopher D.B.
AU - Taylor, Richard L.
AU - Carvalho, André R.R.
AU - Hope, Joseph J.
AU - Streed, Erik W.
AU - Lobino, Mirko
AU - Kielpinski, David
N1 - Publisher Copyright:
© 2016 Optical Society of America.
PY - 2016/7/25
Y1 - 2016/7/25
N2 - Trapped ions are one of the most promising approaches for the realization of a universal quantum computer. Faster quantum logic gates could dramatically improve the performance of trapped-ion quantum computers, and require the development of suitable high repetition rate pulsed lasers. Here we report on a robust frequency upconverted fiber laser based source, able to deliver 2.5 ps ultraviolet (UV) pulses at a stabilized repetition rate of 300.00000 MHz with an average power of 190 mW. The laser wavelength is resonant with the strong transition in Ytterbium (Yb+) at 369.53 nm and its repetition rate can be scaled up using high harmonic mode locking. We show that our source can produce arbitrary pulse patterns using a programmable pulse pattern generator and fast modulating components. Finally, simulations demonstrate that our laser is capable of performing resonant, temperature-insensitive, two-qubit quantum logic gates on trapped Yb+ ions faster than the trap period and with fidelity above 99%.
AB - Trapped ions are one of the most promising approaches for the realization of a universal quantum computer. Faster quantum logic gates could dramatically improve the performance of trapped-ion quantum computers, and require the development of suitable high repetition rate pulsed lasers. Here we report on a robust frequency upconverted fiber laser based source, able to deliver 2.5 ps ultraviolet (UV) pulses at a stabilized repetition rate of 300.00000 MHz with an average power of 190 mW. The laser wavelength is resonant with the strong transition in Ytterbium (Yb+) at 369.53 nm and its repetition rate can be scaled up using high harmonic mode locking. We show that our source can produce arbitrary pulse patterns using a programmable pulse pattern generator and fast modulating components. Finally, simulations demonstrate that our laser is capable of performing resonant, temperature-insensitive, two-qubit quantum logic gates on trapped Yb+ ions faster than the trap period and with fidelity above 99%.
UR - http://www.scopus.com/inward/record.url?scp=84979642723&partnerID=8YFLogxK
U2 - 10.1364/OE.24.016638
DO - 10.1364/OE.24.016638
M3 - Article
AN - SCOPUS:84979642723
SN - 1094-4087
VL - 24
SP - 16638
EP - 16648
JO - Optics Express
JF - Optics Express
IS - 15
ER -