Experimental Quantum Information Physics (EQuIP) unit

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Overview

Experimental Quantum Information Physics (EQuIP) unit at Okinawa Institute of Science and Technology Graduate University, Okinawa, Japan. Heads: Hiroki Takahashi. Ions: Ca+, Ba+.

Institution
Okinawa Institute of Science and Technology Graduate University
City
Okinawa
Country
Japan
Heads
Hiroki Takahashi
Ions
Ca+Ba+
Instrument
Instrument details not added yet.

Recent Publications

Variational quantum compiling for three-qubit gates design in quantum dots

Yuanyang Zhou [1], Huaxin He [1], Fengtao Pang [1], Hao Lyu [2], Yongping Zhang [1], Xi Chen [3]

Abstract

Semiconductor quantum dots offer a promising platform for controlling spin qubits and realizing quantum logic gates, essential for scalable quantum computing. In this work, we utilize a variational quantum compiling algorithm to design efficient three-qubit gates using a time-independent Hamiltonian composed of only physical interaction terms. The resulting gates, including the Toffoli and Fredkin gates, demonstrate high fidelity and robustness against both coherent and incoherent noise sources, including charge and nuclear spin noise. This method is applicable to a wide range of physical systems, such as superconducting qubits and trapped ions, paving the way for more resilient and universal quantum computing architectures.

Ion Trapping with a Laser-written 3D Miniaturized Monolithic Linear Paul Trap for Microcavity Integration

Soon Teh [1], Ezra Kassa [1], Shaobo Gao [1], Shuma Oya [1], Hiroki Takahashi [1]

Abstract

The miniaturization of ion trap and the precise placement of its electrodes are necessary for the integration of a microcavity to facilitate efficient ion-cavity coupling. We present a miniature monolithic ion trap made of gold-coated fused silica with high numerical aperture access. A laser writing method referred to as selective laser etching is employed to extract a trap structure from a block of fused silica. The fully monolithic structure eliminates the need for any post-fabrication alignment. Trenches are integrated into this structure such that the various electrodes on the monolithic device remain electrically isolated following their metalization via evaporative coating. We give details of the trap design and production, along with the demonstration of successful trapping of ions and characerization of the trap.

Polariton blockade in the Jaynes-Cummings-Hubbard model with trapped ions

Ryutaro Ohira, Shota Kume, Hiroki Takahashi, Kenji Toyoda

Abstract

We have experimentally observed the dynamics of a single polariton and two polaritons in a two-ion chain. By driving two trapped ions at a motional blue-sideband transition, we realize the anti-Jaynes-Cummings-Hubbard model. When a single polariton exists in a trapped-ion chain, the polariton hops between the ion sites. On the other hand, when there are single polaritons at each ion site, the hopping of the polaritons is suppressed because of the polariton-polariton interaction induced by the nonlinearity of the anti-Jaynes-Cummings interaction, thereby realizing the blockade of polariton hopping in the anti-Jaynes-Cummings-Hubbard model with trapped ions. Our work is a step towards the development of a trapped-ion based quantum simulator for strongly interacting polaritonic systems.

Enhanced ion-cavity coupling through cavity cooling in the strong coupling regime

Costas Christoforou [1], Corentin Pignot [1], Ezra Kassa [2], Hiroki Takahashi [3,4], Matthias Keller [1]

Abstract

Incorporating optical cavities in ion traps is becoming increasingly important in the development of photonic quantum networks. However, the presence of the cavity can hamper efficient laser cooling of ions because of geometric constraints that the cavity imposes and an unfavourable Purcell effect that can modify the cooling dynamics substantially. On the other hand the coupling of the ion to the cavity can also be exploited to provide a mechanism to efficiently cool the ion. In this paper we demonstrate experimentally how cavity cooling can be implemented to improve the localisation of the ion and thus its coupling to the cavity. By using cavity cooling we obtain an enhanced ion-cavity coupling of $2π\times (16.7\pm 0.1)$ MHz, compared with $2π\times (15.2\pm 0.1)$ MHz when using only Doppler cooling.

Photodissociation of trapped Rb$^+_2$ : Implications for simultaneous trapping of atoms and molecular ions

S. Jyothi [1], Tridib Ray [1,2], Sourav Dutta [1,3], A. R. Allouche, Romain Vexiau [4], Olivier Dulieu [4], S. A. Rangwala [1]

Abstract

The direct photodissociation of trapped $^{85}$Rb$_2^+$ (rubidium) molecular ions by the cooling light for the $^{85}$Rb magneto-optical trap (MOT) is studied, both experimentally and theoretically. Vibrationally excited Rb$_{2}^{+}$ ions are created by photoionization of Rb$_{2}$ molecules formed photoassociatively in the Rb MOT and are trapped in a modified spherical Paul trap. The decay rate of the trapped Rb$_{2}^{+}$ ion signal in the presence of the MOT cooling light is measured and agreement with our calculated rates for molecular ion photodissociation is observed. The photodissociation mechanism due to the MOT light is expected to be active and therefore universal for all homonuclear diatomic alkali metal molecular ions.

Dissertations

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