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29 results for “rydberg”
Higher-order and fractional discrete time crystals in Floquet-driven Rydberg atoms
<div>These folders contain data used to reproduce figures in main text.</div> <div> </div> <div>The file "fig2b.xlsx" contains the phase diagram in Figure 2 of the main text. The columns of fig2b.xlsx represent the detuning and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The files "fig3a.xlsx" and "fig3c.xlsx" contain the phase diagrams in Figure 3 of the main text. The columns of fig3a.xlsx and fig3c.xlsx represent the detuning and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The file "fig4a2.xlsx" contains the phase diagram in Figure 4 of the main text. The columns of fig4a2.xlsx represent represent the detuning and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The files "fig5a.xlsx", "fig5b.xlsx" and "fig5c.xlsx" contain the phase diagrams in Figure 5 of the main text. The columns in fig5a.xlsx, fig5b.xlsx and fig5c.xlsx represent represent the detuning and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The files "fig8a.xlsx" and "fig8b.xlsx" contain the phase diagrams in Figure 8 of the main text. The columns in fig8a.xlsx and fig8b.xlsx represent the voltages of the RF-field, and the rows represent the detuning. The values in the table represent transimission.</div> <div> </div> <div>The files "fig9b.xlsx" and "fig9d.xlsx" contain the phase diagrams in Figure 9 of the main text. The columns in fig9b.xlsx represent the frequency of the RF-field, and the rows represent the frequencies of the Fourier spectrum. The columns in fig9d.xlsx represent the voltages of the RF-field, and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div>
Datasets and simulation scripts for "Finite-temperature Rydberg arrays: quantum phases and entanglement characterization"
<p>The files contain the datasets with the results of the manuscript "Finite-temperature Rydberg arrays: quantum phases and entanglement characterization".</p> <p>The URL links to the repository with the simulation scripts used to produce the datasets. Running the simulation scripts require Quantum Green TEA v0.3.23 which comes with Quantum TEA Leaves v0.4.46 as a dependency. Quantum Green TEA is not open source, but is available on request. Exceptionally, the scripts for producing the datasets for convergence analyisis require Quantum Green TEA v0.3.23 and Quantum TEA Leaves version>v0.2.30.</p>
2D Rydberg Exciton Array
Open the record for dataset details and reuse information.
High-fidelity photonic quantum logic gate based on near-optimal Rydberg single-photon source
<p>Compared to other types of qubits, photon is one of a kind due to its unparalleled advantages in long-distance quantum information exchange. Therefore, photon is a natural candidate for building a large-scale, modular optical quantum computer operating at room temperature. However, low-fidelity two-photon quantum logic gates and their probabilistic nature result in a large resource overhead for fault tolerant quantum computation. While the probabilistic problem can in principle be solved by employing multiplexing and error correction, the fidelity of linear-optical quantum logic gate is ultimately limited by the imperfections of single photons. Here, we report the demonstration of a linear-optical quantum logic gate with truth table fidelity of 99.84(3)% and entangling gate fidelity of 99.69(4)% post-selected upon the detection of photons. The achieved high gate fidelities are made possible by our near-optimal Rydberg single-photon source. Our work paves the way for scalable photonic quantum applications based on near-optimal single-photon qubits and photon-photon gates.</p>
Experimental data sets for "Interaction-driven breakdown of Aharonov-Bohm caging in flat-band Rydberg lattices"
<p>We present here all experimental data sets for the figures in main text.</p>
Floquet-Tailored Rydberg Interactions
<p>Data and code for the article "Floquet-Tailored Rydberg Interactions".</p>
Bifurcation of time crystals in driven and dissipative Rydberg atomic gas
<div>These folders contain data used to reproduce figures in main text.</div> <div> </div> <div>The files "fig2a.xlsx" and "fig2d.xlsx" contain the phase diagrams in Figure 2 of the main text. The columns in fig2a.xlsx represent the voltage of the RF-field, and the rows represent the detuning. The columns in fig2d.xlsx represent the frequency of the RF field, and the rows represent the detuning. The values in the table represent transimission.</div> <div> </div> <div>The file "fig3a.xlsx" contains the phase diagram in Figure 3 of the main text. The columns of fig3a.xlsx represent the detuning and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The file "fig4a.xlsx" contains the phase diagram in Figure 4 of the main text. The columns of fig4a.xlsx represent the voltage of the RF-field, and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The files "fig5a.xlsx" and "fig5a.2.xlsx" contain the phase diagrams in Figure 5 of the main text. The columns in fig5a.xlsx and fig5a.2.xlsx represent the voltages of the RF-field, and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div> <div> </div> <div>The files "fig7a.xlsx" and "fig7c.xlsx" contain the phase diagrams in Figure 7 of the main text. The columns in fig7a.xlsx and fig7c.xlsx represent the voltages of the RF-field, and the rows represent the frequencies of the Fourier spectrum. The values in the table represent transimission.</div>
Data for "Bottom-up Fabrication of 2D Rydberg Exciton Arrays in Cuprous Oxide"
<p>The data for the publication are included here. "Array Data Import.ipynb" can be used to import all the data used to plot Figure 2., Figure 3. , and Figure 4. All data are saved as .npz files. Put the code and all the .npz files in the same folder</p>
Quantum dimer models with Rydberg gadgets
<p>Access will be granted upon reasonable request.</p>
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