Hanlae Jo
KAIST
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Publication
Featured researches published by Hanlae Jo.
Nature Communications | 2016
Hyosub Kim; Woojun Lee; Han-gyeol Lee; Hanlae Jo; Yunheung Song; Jaewook Ahn
Establishing a reliable method to form scalable neutral-atom platforms is an essential cornerstone for quantum computation, quantum simulation and quantum many-body physics. Here we demonstrate a real-time transport of single atoms using holographic microtraps controlled by a liquid-crystal spatial light modulator. For this, an analytical design approach to flicker-free microtrap movement is devised and cold rubidium atoms are simultaneously rearranged with 2N motional degrees of freedom, representing unprecedented space controllability. We also accomplish an in situ feedback control for single-atom rearrangements with the high success rate of 99% for up to 10 μm translation. We hope this proof-of-principle demonstration of high-fidelity atom-array preparations will be useful for deterministic loading of N single atoms, especially on arbitrary lattice locations, and also for real-time qubit shuttling in high-dimensional quantum computing architectures.
Physical Review A | 2017
Hanlae Jo; Han-gyeol Lee; S. Guérin; Jaewook Ahn
We propose and demonstrate a robust control scheme by ultrafast nonadiabatic chirped laser pulse, designed for targeting coherent superpositions of two-level systems. Robustness against power fluctuation is proved by our numerical study and a proof-of-principle experiment performed with femtosecond laser interaction on cold atoms. They exhibit for the final driven dynamics a cusp on the Bloch sphere, corresponding to a zero curvature of fidelity. This solution is particularly simple and thus applicable to a wide range of potential applications.
Physical Review A | 2016
Han-gyeol Lee; Yunheung Song; Hyosub Kim; Hanlae Jo; Jaewook Ahn
It is well known that area pulses make Rabi oscillation and chirped pulses in the adiabatic interaction regime induce complete population inversion of a two-state system. Here we show that chirped zero-area pulses could engineer an interplay between the adiabatic evolution and Rabi-like oscillations. In a proof-of-principle experiment utilizing spectral chirping of femtosecond laser pulses with a resonant spectral hole, we demonstrate that the chirped zero-area pulses could induce, for example, complete population inversion and return of the cold rubidium atom two-state system. Experimental result agrees well with the theoretically considered overall dynamics, which could be approximately modeled to a Ramsey-like three-pulse interaction, where the
Physical Review A | 2016
Yunheung Song; Han-gyeol Lee; Hanlae Jo; Jaewook Ahn
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Optics Express | 2016
Daehoon Han; Kanghee Lee; Hanlae Jo; Yunheung Song; Minhyuk Kim; Jaewook Ahn
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conference on lasers and electro optics | 2015
Han-gyeol Lee; Hyosub Kim; Hanlae Jo; Jaewook Ahn
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conference on lasers and electro optics | 2018
Hanlae Jo; Yunheung Song; Jaewook Ahn
- rotations are respectively driven by the hole and the main pulse.
conference on lasers and electro optics | 2018
Yunheung Song; Hanlae Jo; Han-gyeol Lee; Geol Moon; Jaewook Ahn
The chirped-pulse interaction in the adiabatic coupling regime induces cyclic permutations of the energy states of a three-level system in the
Physical Review A | 2018
Yunheung Song; Han-gyeol Lee; Hyosub Kim; Hanlae Jo; Jaewook Ahn
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Archive | 2018
Hanlae Jo; Yunheung Song; Jaewook Ahn
-type configuration, which process is known as the three-level chirped rapid adiabatic passage. Here we show that a spectral hole in a chirped pulse can turn on and off one of the two adiabatic crossing points of this process, reducing the system to an effective two-level system. The given hybrid adiabatic-nonadiabatic transition results in selective excitation of the three-level system, controlled by the laser intensity and spectral position of the hole as well as the sign of the chirp parameter. Experiments are performed with shaped femtosecond laser pulses and the three lowest energy-levels (5S