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1,938 results for “Resonances”

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zenodo36/100

Data and code for "Observation and stabilization of photonic Fock states in a hot radio-frequency resonator"

<p>This folder contains all the code necessary to produce the figures of the paper entitled &quot;Observation and stabilization of photonic Fock states in a hot radio-frequency resonator&quot; written by Mario F. Gely, Marios Kounalakis, Christian Dickel, Jacob Dalle, R&eacute;my Vatr&eacute;, Brian Baker, Mark D. Jenkins and Gary A. Steele</p> <p><strong>Content:&nbsp;</strong></p> <p>data/<br> &nbsp;&nbsp; &nbsp;Contains multiple folders each corresponding to a measurement.&nbsp;<br> &nbsp;&nbsp; &nbsp;These are all time stamped.&nbsp;<br> &nbsp;&nbsp; &nbsp;Inside each of these folders is a python file which corresponds to the measurement script run using the open source STlab library (see version closest to the time stamp on https://github.com/steelelabgit/stlab).<br> &nbsp;&nbsp; &nbsp;There is also a DAT file containing the measurement data and an accompanying text file which provides the name and end values of the swept parameters<br> &nbsp;&nbsp; &nbsp;This data will be opened and manipulated in the ipython notebooks</p> <p>analysis_results/<br> &nbsp;&nbsp; &nbsp;Contains the results of the ipython notebooks _*.ipynb<br> &nbsp;&nbsp; &nbsp;These are run on a computer cluster and generate information used in other ipython notebooks</p> <p>adaptive_rwa_solver_bootstrap_diagonal*.py<br> &nbsp;&nbsp; &nbsp;Libraries used to run the adaptive rotating wave approximation simulations</p> <p>load_data.py<br> &nbsp;&nbsp; &nbsp;Modules used to load data from data/</p> <p>plotting_functions.py<br> &nbsp;&nbsp; &nbsp;Modules used to plot 3D data as well as to generate default matplotlib settings</p> <p>_*.ipynb<br> &nbsp;&nbsp; &nbsp;Notebooks run on a computer cluster (using python 2.7) to generate the information stored in analysis_results/ and used in other ipython notebooks</p> <p>1D_S4BC_S9.ipynb<br> &nbsp;&nbsp; &nbsp;Notebook which generates the figures 1D, S4(B,C) and S9 of the paper.&nbsp;<br> &nbsp;&nbsp; &nbsp;Other notebooks follow this same naming convention</p> <p>*.pdf<br> *.png<br> &nbsp;&nbsp; &nbsp;Plots generated from the ipython notebooks which are then imported in Adobe Illustrator to construct figures</p>

opencc-by-4.0Jan 2019View details →
zenodo36/100

Supplementary material: Non-resonant Raman spectra of the methyl radical 12CH3 simulated in variational calculations

<p>Supplementary material to the manuscript:&nbsp;A.&nbsp;Y. Adam, P. Jensen, A. Yachmenev, S.&nbsp;N. Yurchenko,&nbsp;Non-resonant Raman spectra of the methyl radical <sup>12</sup>CH<sub>3</sub> simulated in variational calculations, J. Chem. Phys., submitted</p> <p>Contains several files</p> <ol> <li><em><strong>Makefile, main.f90, accuracy.f90, xy3_alpha.f90</strong></em> - Makefile and Fortran 90 source code files for computing the electric&nbsp;polarizability tensor of CH3.&nbsp;<br> To compile the program: type make<br> To run: ./main.x ch3_alpha.par ch3_alpha.dat &gt;ch3_alpha.out<br> &nbsp;</li> <li><em><strong>ch3_alpha.dat</strong></em> - ASCII file containing molecular Cartesian coordinates and reference (ab initio computed) values of polarizability&nbsp;tensor (everything is in atomic units). Each line correspond to a different molecular geometry, Cartesian coordinates are listed&nbsp;in the following order: x(C), y(C), z(C), x(H1), y(H1), z(H1), x(H2), y(H2), z(H2), x(H3), y(H3), z(H3).&nbsp;Starting from the column no. 13, the values of polarizability tensor elements are listed,&nbsp;the order is: alpha_xx, alpha_xy, alpha_xz, alpha_yx, alpha_yy, alpha_yz, alpha_zx, alpha_zy, alpha_zz.&nbsp;The last column contains the reference electronic energy in cm<sup>-1</sup>.<br> &nbsp;</li> <li><em><strong>ch3_alpha.par</strong></em> - ASCII file containing parameters of symmetry-adapted analytical functions used to represent the polarizability tensor.<br> &nbsp;</li> <li><em><strong>ch3_alpha.out</strong></em> -&nbsp;output file contains Cartesian coordinates of atoms, computed from analytical functions polarizability tensor (only symmetric elements),&nbsp;deviations from the reference data, and reference energy.<br> &nbsp;</li> <li><em><strong>CH3_RAMAN_R0_R2_JMAX20</strong></em> and <em><strong>CH3_LEVELS_JMAX20_EMAX14000</strong></em>: Raman line list for CH<sub>3</sub>.<br> <br> <em><strong>CH3_RAMAN_R0_R2_JMAX20</strong></em> contains Raman transitions in the following form:<br> -------------------------------------------------------------------------------<br> Bytes &nbsp;Format &nbsp;&nbsp; &nbsp; &nbsp; Label &nbsp;Explanations<br> -------------------------------------------------------------------------------<br> 1- &nbsp;9 &nbsp;i9 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; &nbsp;--- &nbsp; &nbsp;N&#39; &nbsp; &nbsp;Upper state ID number (refers&nbsp;to a state in file&nbsp;CH3_LEVELS_JMAX20_EMAX14000)<br> 10- 18 &nbsp;i9 &nbsp; &nbsp; &nbsp; &nbsp; &nbsp; --- &nbsp; &nbsp;N&quot; &nbsp; &nbsp;Lower state ID number (refers&nbsp;to a state in file&nbsp;CH3_LEVELS_JMAX20_EMAX14000)<br> 47- 68 &nbsp;f10.4 &nbsp; &nbsp; &nbsp;---&nbsp; &nbsp;&nbsp;nu &nbsp; Transition wavenumber, in units&nbsp;cm-1<br> 47- 68 &nbsp;f22.16 &nbsp;&nbsp; ---&nbsp; &nbsp; A &nbsp; &nbsp; R0^2 matrix element, in units&nbsp;[(ea0)^2/E_h]^2<br> 80- 101 f22.16 &nbsp; ---&nbsp; &nbsp; A &nbsp; &nbsp; R2^2 matrix element, in units&nbsp;[(ea0)^2/E_h]^2<br> -------------------------------------------------------------------------------<br> <br> <em><strong>CH3_LEVELS_JMAX20_EMAX14000</strong></em>&nbsp;<br> -------------------------------------------------------------------------------<br> Bytes Format &nbsp; Label &nbsp;Explanations<br> -------------------------------------------------------------------------------<br> 2- 3 &nbsp; i2 &nbsp; &nbsp; &nbsp; &nbsp;--- &nbsp; J &nbsp; &nbsp; &nbsp; [0/40] J-quantum number J is the total&nbsp;angular momentum excluding nuclear and electronic spin<br> 6- 14 &nbsp;i9 &nbsp; &nbsp; &nbsp;&nbsp;--- &nbsp; N &nbsp; &nbsp; &nbsp;State ID number, non-negative integer index,&nbsp;starting at 1<br> 17- 19 &nbsp;a3 &nbsp; &nbsp;--- &nbsp; G &nbsp; &nbsp; &nbsp;Total state symmetry in D3h(M),&nbsp;Gamma = A1&#39;, A2&#39;, E&#39;, A1&quot;, A2&quot;, E&quot;<br> 23- 32 &nbsp;i12 &nbsp; --- &nbsp;E &nbsp; &nbsp; &nbsp; State energy term value in cm-1<br> 36- 38 &nbsp;i2 &nbsp; &nbsp;&nbsp;--- &nbsp; Gr &nbsp; &nbsp; Rotational component &nbsp;symmetry in D3h(M)<br> 40- 42 &nbsp;i3 &nbsp; &nbsp; --- &nbsp; K &nbsp; &nbsp; &nbsp;[0/85] Projection of J onto z&nbsp;axis of molec., in units of hbar<br> 44- 45 &nbsp;i2 &nbsp; &nbsp; --- &nbsp; Pr &nbsp; &nbsp; [0/1] Rotational parity tau, defined as (-1)^tau<br> 51- 53 &nbsp;a3 &nbsp;&nbsp;&nbsp;--- &nbsp; Gv &nbsp; &nbsp;Vibrational component &nbsp;symmetry in D3h(M)<br> 54- 57 &nbsp;i2 &nbsp; &nbsp; --- &nbsp; n1 &nbsp; &nbsp; TROVE vibrational quantum number for C-H1 local model stretch<br> 58- 61 &nbsp;i4 &nbsp; &nbsp; --- &nbsp; n2 &nbsp; &nbsp; TROVE vibrational quantum number for C-H2 local model stretch<br> 62- 65 &nbsp;i4 &nbsp; &nbsp; --- &nbsp; n3 &nbsp; &nbsp; TROVE vibrational quantum number for C-H3 local model stretch<br> 66- 69 &nbsp;i4 &nbsp; &nbsp; --- &nbsp; n4 &nbsp; &nbsp; TROVE vibrational quantum number for Ea symmetry-adapted CCH local mode bend<br> 70- 73 &nbsp;i4 &nbsp; &nbsp; --- &nbsp; n5 &nbsp; &nbsp; TROVE vibrational quantum number for Eb symmetry-adapted CCH local mode bend<br> 74- 77 &nbsp;i4 &nbsp; &nbsp; --- &nbsp; n6 &nbsp; &nbsp; TROVE vibrational quantum number for out-of-plane (umbrella-type) bending mode<br> 81- 85 &nbsp;f5.3 &nbsp;--- &nbsp; C^2 &nbsp; [0/1] Largest coeffcient.<br> -------------------------------------------------------------------------------</li> </ol>

opencc-by-4.0Mar 2019View details →
zenodo36/100

Data for: Model-based myocardial T1 mapping with sparsity constraints using single-shot inversion-recovery radial FLASH Cardiovascular Magnetic Resonance

<p>Magnetic Resonance Imaging&nbsp;measurement data used in our paper about model-based myocardial T1 mapping with sparsity constraints. The data was obtained using a&nbsp;single-short inversion-recovery radial FLASH sequence and is provided in a&nbsp;file format used by the BART toolbox (<a href="http://doi.org/10.5281/zenodo.592960">DOI: 10.5281/zenodo.592960</a>).</p>

opencc-by-4.0Aug 2019View details →
zenodo36/100

data set related to article Magnetic resonance fingerprinting with dictionary-based fat and water separation (DBFW MRF): A multi-component approach

<p>This record contains raw data related to article Magnetic resonance fingerprinting with dictionary-based fat and water separation (DBFW MRF): A multi-component approach</p>

opencc-by-4.0Sep 2019View details →
zenodo36/100

Dataset for Low temperature electron spin resonance study of an MnPS3 antiferromagnetic single crystal

<p>This is a dataset for a paper "Low temperature electron spin resonance study of an MnPS3 antiferromagnetic single crystal". All details about the data are included in the readme file.</p>

opencc-by-4.0Sep 2024View details →
zenodo36/100

Data for "Controlling Plasmonic Catalysis via Strong Coupling with Electromagnetic Resonators"

<p>This upload includes the data presented and analyzed in the article "Controlling Plasmonic Catalysis via Strong Coupling with Electromagnetic Resonators" by Jakub Fojt, Paul Erhart, and Christian Sch&auml;fer.</p> <p>The codes for reproducing the data are provided at <a href="https://doi.org/10.5281/zenodo.13374591">doi:10.5281/zenodo.13374591</a>.</p> <p>See <em>README.md</em> in <em>data.zip</em> for a detailed description.</p>

opencc-by-4.0Sep 2024View details →
zenodo36/100

In-situ Electron Paramagnetic Resonance Investigation of Isotope-selective Breathing in MIL-53 during Dihydrogen Adsorption

<p><strong>Description of the dataset:</strong></p> <ul> <li><strong>Data type</strong>: Experimental spectroscopic measurements including CW EPR, Pulsed EPR raw data, N2 isotherm, CO2 isotherm and crystal structure data</li> <li>Files are with filename extensions:&nbsp;<strong>spc, par, dta, dsc, aif, csv, cif, txt and opj</strong></li> <li>Information on&nbsp;<strong>origin of the data</strong>:</li> <li>EPR spectroscopic measurements with filename extensions&nbsp;<strong>spc</strong>,&nbsp;<strong>par dta, dsc</strong>,<strong>&nbsp;txt&nbsp;</strong>and<strong>&nbsp;opj.</strong></li> <li>Data visualisation was conducted using OriginLab version 8 and Microsoft Power Point.</li> <li>X-band CW-EPR spectroscopic measurements data were generated by EMX spectrometer equipped with SHQ cavity produced by Bruker.</li> <li>Pulsed X-band EPR measurements data were generated by Bruker ELEXYS E580 spectrometer.</li> <li><strong>Additional Information&nbsp;</strong>: <ul> <li>specialized abbreviations:&nbsp;<strong>EPR</strong>&nbsp;&ndash; Electron Paramagnetic Resonance,&nbsp;<strong>MIL</strong> &ndash; Mat&eacute;riaux de l&rsquo;Institut Lavoisier</li> <li>definitions of variables:&nbsp;<strong>Magnetic field, Pressures, Microwave power.</strong></li> <li>units of measurement:&nbsp;<strong>Gauss (G), milliTesla (mT), millibar(mbar), microwave power (dB)</strong>.</li> <li>abbreviations on the CW-EPR data filename: Dates, Sample name, &nbsp;H2/D2 ads/des (ads= adsorption, des=desorption), microwave power, D2 or H2 pressures, number scans if indicated.</li> <li>abbreviations on the pulsed EPR data filename: Dates, Sample name, &nbsp;H2/D2 ads/des (ads= adsorption, des=desorption), D2 or H2 pressures, pulse sequences, pulse delay, temperature.</li> </ul> </li> </ul>

opencc-by-4.0Sep 2024View details →
zenodo36/100

Supporting data for 'Rapid quantification of methane in water with parts-per-billion sensitivity using a metal-organic framework-functionalized quartz crystal resonator'

<p>Supporting data for the preprint 'Rapid quantification of methane in water with parts-per-billion sensitivity using a metal-organic framework-functionalized quartz crystal resonator' published at ChemRxiv (doi://10.26434/chemrxiv-2024-x62zz)</p> <p>&nbsp;</p>

opencc-by-4.0Oct 2024View details →
zenodo36/100

Stroboscopic FFDXM measurement on a one-port SAW resonator device

<p>The raw data were in .edf format. The number of raw data files exceeds the limit of Zenodo uploads (100 files), and for that reason a combined .npy file was generated and shared instead.</p>

opencc-by-4.0Oct 2024View details →
zenodo36/100

Ripple resonance amplifies economic welfare loss from weather extremes

<p>Using the loss-propagation model Acclimate (doi: 10.5281/zenodo.853345) we computed the regional and sectoral economic repercussion due to single disasters categories (heat stress, floods and tropical cyclones) as well as their consecutive disaster scenarios. The name component &quot;en-20xx&quot; refers to the economic network baseline. Our main analysis was based on the economic network of 2015.</p> <p>These data sets contain the annual aggregated economic quantities: production, production value, production (zero), direct loss, direct loss value, total loss, total value loss, consumption (zero), consumption value, consumption, GDP, GDP value, GDP (zero). Consumption and GDP&nbsp; (and corresponding variables) are regional quantities and therefore have only one non-NaN sectoral dimension (dimension zero). Quantities with a &ldquo;(zero)&rdquo; correspond to the annual baseline of the quantity (leap years taken into account).</p> <p>The quantities of the disaster scenarios are divided as follows:<br> Heat stress: hs_observable<br> Floods: fl_observable<br> Tropical cyclones: tc_observable<br> Consecutive disasters: cp_observable</p> <p>These variables have - next to &ldquo;year&rdquo;, &ldquo;region&rdquo;, &ldquo;sector&rdquo;, and &ldquo;quantities&rdquo; - the dimensions of the corresponding representative concentration pathway, global climate model, tropical cyclone season realization and hydrological model.</p>

opencc-by-4.0Jun 2021View details →
zenodo36/100

Accuracy of ultrasonography and magnetic resonance imaging for preoperative staging of cervical cancer – analysis of patients from the prospective study on total mesometrial resection.

<p>This is supplementary material to the manuscript published in the Diagnostics (MDPI) journal.&nbsp;</p> <p>Diagnostics 2021, 11, 1749</p> <p>https://doi.org/10.3390/diagnostics11101749</p> <p>Videos present examples of ultrasound examinations of patients with cervical cancer.</p>

opencc-by-4.0Jul 2021View details →
zenodo36/100

Plasmonic Metasurface Resonators to Enhance Terahertz Magnetic Fields for High-Frequency Electron Paramagnetic Resonance _experimental dataset

<p>This dataset contains the raw experimental data for Tesi et al.,&nbsp;Plasmonic Metasurface Resonators to Enhance Terahertz Magnetic Fields for High-Frequency Electron Paramagnetic Resonance,&nbsp;Small Methods 2021, 2100376, DOI&nbsp;<a href="https://doi.org/10.1002/smtd.202100376">10.1002/smtd.202100376</a>.&nbsp;</p>

opencc-by-4.0Sep 2021View details →
zenodo36/100

On energy transfer of parametric resonance for wave energy conversion

<p>Parametric resonance has been observed, both numerically and experimentally, in various studies of wave energy converters (WECs). A large motion in heave induces a periodic variation in the metacentric height of a WEC body, and, consequently, causes a harmonic variation in pitch/roll restoring coefficients, which can parametrically excite the pitch/roll modes. Current studies have a specific focus to determine the occurrence conditions of parametric resonance, by detecting the boundaries between stable and unstable regions in the parameter space. In the literature, some studies aim to make use of parametric resonance for improving power capture. In contrast, some studies try to suppress the effect of parametric resonance, as it reduces power capture efficiency. However, how energy transfers from one mode to another is not fully understood. This study aims to analyse the energy transfer between heave and pitch/roll modes when parametric resonance occurs. A generic cylindrical point absorber is studied as a WEC floater to considering non-linear wave-structure interaction, including non-linear Froude-Krylov and viscous forces. A heave-pitch-roll three-degree-of-freedom model is derived for numerical study of the energy transfer between different operation modes.</p>

opencc-by-4.0Sep 2021View details →
zenodo36/100

Operando magnetic resonance imaging for mapping of temperature and redox species in thermo-electrochemical cells

<p>Raw data for our publication &quot;Operando magnetic resonance imaging for mapping of temperature and redox species in thermo-electrochemical cells&quot;, including imaging files (Paravision), ASCII, MATLAB and EC Lab data files organised corresponding to each figure in the paper and supplementary information.</p>

opencc-by-4.0Oct 2021View details →
zenodo36/100

Raw data for 'The effect of the zero-field splitting in light-induced pulsed dipolar electron paramagnetic resonance (EPR) spectroscopy'

<p>This repository contains the raw data for the manuscript &#39;The effect of the zero-field splitting interaction in light-induced pulsed dipolar&nbsp; electron paramagnetic resonance (EPR) spectroscopy&#39; submitted for pubilcation at Magnetic Resonance.</p>

opencc-by-4.0Nov 2022View details →
zenodo36/100

RESONATE case study disturbance information

<p>Disturbance information for the RESONATE case studies:&nbsp;<a href="https://efi.int/projects/resonate">https://efi.int/projects/resonate</a>. The data was compiled from existing disturbance and agent attribution data that was extended to the year 2020 within the RESONATE project.</p> <p>Folter &#39;agent classification&#39;: Raster layers with four values: 0=no disturbance, 1=harvest, 2=bark beetle/storm, 3=fire<br> Folder &#39;disturbance_summaries&#39;: Rummary tables with year, agent, disturbance area (ha) and&nbsp;disturbance rate (percent of forest area)<br> Folder &#39;disturbances&#39;: Raster layers with disturbance year (0=no disturbance)<br> Folder &#39;forest_masks&#39;: Forest makes (1=no forest/2=forest) to calculate disturbance ratesF<br> older &#39;outlines&#39;: Outlines of case studies as vector files&nbsp;</p> <p>All spatial files are in EPSG:3035.</p>

opencc-by-4.0Nov 2022View details →
zenodo36/100

Forward Focused Facial Resonance

<p><a href="https://www.gendervoicecentre.com.au/post/forward-focused-facial-resonance-fffr">Resonance of voice</a> Therapy is a technique first introduced by Gender Voice Centre to improve voice production by increasing oral vibratory sensations, typically felt on the lips and teeth or higher in the face (in the nose) in the context of easy phonation or easy voicing. &nbsp;It focuses on easy voice production that is not forced or pushed out, but is rather placed forward in the oral space and tends to fall out of the mouth. &nbsp;&nbsp;</p>

opencc-by-4.0Nov 2022View details →
zenodo36/100

Data for figures in "Observation of resonances in the transition state region of the F + NH3 reaction using anion photoelectron spectroscopy"

<p>Data for all figures in &quot;Observation of resonances in the transition state region of the F + NH3 reaction using anion photoelectron spectroscopy&quot; and the accompanying supporting information, a manuscript accepted by Nature Chemistry.</p>

opencc-by-4.0Nov 2022View details →
zenodo36/100

Resonance at the front of lightning impulse voltage waveforms caused by the load capacitor

<p>Numerical simulations with NI-Multisim had been done to verify the hypothesis. Fig. 5 illustrated the simulated waveform , when &nbsp;was set to 150&zwj; &nbsp;W and &nbsp;was set to 350&zwj; &nbsp;W. Fig.&zwj; 5(a) shows the simulated result when no inductance was considered. But for actual circuit, inductance is not negligible. When inductances were added to the circuit in series with the capacitance and resistance, the voltage step would be less steep, and oscillation would appear at the front period. Fig.&zwj; 5(b) shows the simulated waveform when 0.5&zwj; mH, 1&zwj; mH and 2&zwj; mH inductances are in series with sphere gap (FS), &nbsp;and &nbsp;respectively. These values were estimated according to the LI waveform generation circuit used in my test, and with an approximation that the lead inductance is around 1&zwj; mH/m.</p>

opencc-by-4.0Dec 2020View details →
zenodo36/100

Resonating Moment: Who can sail without the wind

<p>The piece was co-created in 2020 during a situated art intervention at a residential care home in Northern Norway. It&nbsp;documents&nbsp;a resonating moment that was created and&nbsp;analyzed within <a href="https://uit.no/research/adlab">Artful Dementia Research Lab </a>at UiT The Arctic University of Norway.</p> <p>Reference:&nbsp; Dalby, K., Mittner, L., &amp; Gj&aelig;rum, R. G. (2024). Exploring consent as an aesthetic experience through applied theatre with people living with dementia. <em>Nordic Journal of Art &amp; Research</em>, <em>13</em>(1), Article 1. <a href="https://doi.org/10.7577/ar.6139">https://doi.org/10.7577/ar.6139</a></p>

opencc-by-4.0Dec 2022View details →

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dandi-nwb
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Last verified 2026-04-30Open record

International Brain Laboratory public data

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ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

OpenNeuro

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openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record