artificial atom
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2021 ◽  
Vol 11 (4) ◽  
Author(s):  
Vinicius S. Ferreira ◽  
Jash Banker ◽  
Alp Sipahigil ◽  
Matthew H. Matheny ◽  
Andrew J. Keller ◽  
...  
Keyword(s):  

2021 ◽  
Vol 23 (12) ◽  
pp. 123001
Author(s):  
Gang-hui Zeng ◽  
Yang Zhang ◽  
Aleksey N Bolgar ◽  
Dong He ◽  
Bin Li ◽  
...  

Abstract We experimentally study a circuit quantum acoustodynamics system with a superconducting artificial atom coupled to both a two-dimensional surface acoustic wave resonator and a one-dimensional microwave transmission line. The strong coupling between the artificial atom and the acoustic wave resonator is confirmed by the observation of the vacuum Rabi splitting at the base temperature of dilution refrigerator. We show that the propagation of microwave photons in the microwave transmission line can be controlled by a few phonons in the acoustic wave resonator. Furthermore, we demonstrate the temperature effect on the measurements of the Rabi splitting and temperature induced transitions from high excited dressed states. We find that the spectrum structure of two-peak for the Rabi splitting could become into those of several peaks under some special experimental conditions, and gradually disappears with the increase of the environmental temperature T. The continuous quantum-to-classical crossover is observed around the crossover temperature T c, which is determined via the thermal fluctuation energy k B T and the characteristic energy level spacing of the coupled system. Experimental results agree well with the theoretical simulations via the master equation of the coupled system at different effective temperatures.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Nathanaël Cottet ◽  
Haonan Xiong ◽  
Long B. Nguyen ◽  
Yen-Hsiang Lin ◽  
Vladimir E. Manucharyan

AbstractInterfacing long-lived qubits with propagating photons is a fundamental challenge in quantum technology. Cavity and circuit quantum electrodynamics (cQED) architectures rely on an off-resonant cavity, which blocks the qubit emission and enables a quantum non-demolition (QND) dispersive readout. However, no such buffer mode is necessary for controlling a large class of three-level systems that combine a metastable qubit transition with a bright cycling transition, using the electron shelving effect. Here we demonstrate shelving of a circuit atom, fluxonium, placed inside a microwave waveguide. With no cavity modes in the setup, the qubit coherence time exceeds 50 μs, and the cycling transition’s radiative lifetime is under 100 ns. By detecting a homodyne fluorescence signal from the cycling transition, we implement a QND readout of the qubit and account for readout errors using a minimal optical pumping model. Our result establishes a resource-efficient (cavityless) alternative to cQED for controlling superconducting qubits.


2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Tomáš Neuman ◽  
Matt Eichenfield ◽  
Matthew E. Trusheim ◽  
Lisa Hackett ◽  
Prineha Narang ◽  
...  

AbstractWe introduce a method for high-fidelity quantum state transduction between a superconducting microwave qubit and the ground state spin system of a solid-state artificial atom, mediated via an acoustic bus connected by piezoelectric transducers. Applied to present-day experimental parameters for superconducting circuit qubits and diamond silicon-vacancy centers in an optimized phononic cavity, we estimate quantum state transduction with fidelity exceeding 99% at a MHz-scale bandwidth. By combining the complementary strengths of superconducting circuit quantum computing and artificial atoms, the hybrid architecture provides high-fidelity qubit gates with long-lived quantum memory, high-fidelity measurement, large qubit number, reconfigurable qubit connectivity, and high-fidelity state and gate teleportation through optical quantum networks.


2021 ◽  
Vol 19 (73-74) ◽  
Author(s):  
Sergiu Cirlig ◽  
◽  
Viorel Ciornea ◽  
Mihai Macovei ◽  
◽  
...  

In the paper, some optomechanical systems are described and advantages of their use are analysed. It is examined a laser-pumped artificial atom placed on the nanomechanical rod in a cavity. Both the advantage of using such systems and quantum correlations and quantum cooling phenomena are discussed.


2021 ◽  
Vol 15 (6) ◽  
Author(s):  
I. Takmakov ◽  
P. Winkel ◽  
F. Foroughi ◽  
L. Planat ◽  
D. Gusenkova ◽  
...  

2021 ◽  
Vol 15 (6) ◽  
Author(s):  
Daria Gusenkova ◽  
Martin Spiecker ◽  
Richard Gebauer ◽  
Madita Willsch ◽  
Dennis Willsch ◽  
...  

Science ◽  
2021 ◽  
pp. eabe2600
Author(s):  
Fabian Stilp ◽  
Andreas Bereczuk ◽  
Julian Berwanger ◽  
Nadine Mundigl ◽  
Klaus Richter ◽  
...  

We explored the bonding properties of the quantum corral (a circle of 48 iron atoms placed on a copper surface) reported by Crommie, Lutz and Eigler in 1993, along with variants, as an artificial atom using an atomic force microscope (AFM). The original corral geometry confines 102 electrons to 28 discrete energy states, and we find that these states can form a bond to the front atom of the AFM with an energy of about 5 millielectron volts. The measured forces are about 1/1000 of typical forces in atomically resolved AFM. The confined electrons showed covalent attraction to metal tips and Pauli repulsion to CO-terminated tips. The repulsion at close distance was evident from the response of corral states created by deliberately placing single iron atoms inside the corral. The forces scaled appropriately with a 24-atom corral.


2021 ◽  
Vol 103 (10) ◽  
Author(s):  
Meng Xu ◽  
J. T. Stockburger ◽  
J. Ankerhold

2021 ◽  
Vol 103 (2) ◽  
Author(s):  
A. M. Vadiraj ◽  
Andreas Ask ◽  
T. G. McConkey ◽  
I. Nsanzineza ◽  
C. W. Sandbo Chang ◽  
...  

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