Department of Physics
Parent: UC San Diego
eScholarship stats: Breakdown by Item for October, 2024 through January, 2025
Item | Title | Total requests | Download | View-only | %Dnld |
---|---|---|---|---|---|
9js5291m | Energy and Human Ambitions on a Finite Planet | 7,783 | 1,936 | 5,847 | 24.9% |
8833b038 | Review of Particle Physics | 192 | 48 | 144 | 25.0% |
2qw2m22g | The Seventeenth Data Release of the Sloan Digital Sky Surveys: Complete Release of MaNGA, MaStar, and APOGEE-2 Data | 153 | 131 | 22 | 85.6% |
6rm212vq | Zonal flows in plasma—a review | 145 | 122 | 23 | 84.1% |
2h6476c8 | Simulation of Fusion Plasmas: Current Status and Future Direction | 143 | 36 | 107 | 25.2% |
9gk1r3ps | Applications and Techniques for Fast Machine Learning in Science | 112 | 40 | 72 | 35.7% |
1jj1t706 | Polaritons in van der Waals materials | 111 | 33 | 78 | 29.7% |
13q096wk | Tunable Phonon Polaritons in Atomically Thin van der Waals Crystals of Boron Nitride | 103 | 85 | 18 | 82.5% |
5693z2sz | Slowdown of Translational Elongation in Escherichia coli under Hyperosmotic Stress | 100 | 2 | 98 | 2.0% |
56p5b8qm | The LHC Olympics 2020 a community challenge for anomaly detection in high energy physics | 100 | 13 | 87 | 13.0% |
67t5j96x | Radial transport of fluctuation energy in a two-field model of drift-wave turbulence | 98 | 22 | 76 | 22.4% |
24958878 | High temperature singlet-based magnetism from Hund’s rule correlations | 97 | 1 | 96 | 1.0% |
8ng9z58h | The role of zonal flows and predator–prey oscillations in triggering the formation of edge and core transport barriers | 92 | 14 | 78 | 15.2% |
6vz3n082 | Photonic crystals for nano-light in moiré graphene superlattices | 88 | 7 | 81 | 8.0% |
9h18103j | Experimental studies of edge shear flow and poloidal residual stress in proximity to the density limit of HL-2A tokamak | 88 | 43 | 45 | 48.9% |
0ft6n7q1 | Indirect excitons in van der Waals heterostructures at room temperature | 87 | 2 | 85 | 2.3% |
1xh4x43h | POLARBEAR-2: an instrument for CMB polarization measurements | 86 | 12 | 74 | 14.0% |
17t1b367 | Searches for pair production of third-generation squarks in s=13TeV pp collisions | 83 | 6 | 77 | 7.2% |
4m90j1v9 | Mechanisms for generating toroidal rotation in tokamaks without external momentum inputa) | 83 | 7 | 76 | 8.4% |
08n1h2jj | Intrinsic rotation reversal, non-local transport, and turbulence transition in KSTAR L-mode plasmas | 82 | 6 | 76 | 7.3% |
40d025fk | Measurement of exciton correlations using electrostatic lattices | 82 | 3 | 79 | 3.7% |
9sx7344m | Spectrograph of electric field fluctuation in toroidal helical plasma | 82 | 4 | 78 | 4.9% |
1fd09207 | Experimental studies of zonal flow and field in compact helical system plasmaa) | 81 | 3 | 78 | 3.7% |
3632f29f | Search for a heavy Higgs boson decaying to a pair of W bosons in proton-proton collisions at s = 13 TeV | 81 | 4 | 77 | 4.9% |
3bn947nw | Impact of resonant magnetic perturbations on zonal modes, drift-wave turbulence and the L–H transition threshold | 81 | 4 | 77 | 4.9% |
6t80q2qh | Synchronization of Geodesic Acoustic Modes and Magnetic Fluctuations in Toroidal Plasmas | 81 | 2 | 79 | 2.5% |
2zf6c5f9 | Role of phase space structures in collisionless drift wave turbulence and impact on transport modeling | 79 | 6 | 73 | 7.6% |
5rt0x8pz | Nonlinear Triad Interactions and the Mechanism of Spreading in Drift-Wave Turbulence | 79 | 7 | 72 | 8.9% |
07b9f3kx | Superconductivity and magnetism in ternary rare-earth compounds | 78 | 1 | 77 | 1.3% |
3p526710 | Collisionless inter-species energy transfer and turbulent heating in drift wave turbulence | 78 | 4 | 74 | 5.1% |
69c2k6rq | Zonal flow generation by parametric instability in magnetized plasmas and geostrophic fluids | 78 | 12 | 66 | 15.4% |
2xr183nn | Measurement of the W+W- cross section in pp collisions at s=8 TeVand limits on anomalous gauge couplings | 77 | 3 | 74 | 3.9% |
5520z558 | Measurement of prompt and nonprompt J/ψ production in pp and pPb collisions at sNN=5.02TeV | 77 | 1 | 76 | 1.3% |
57z1p9r5 | Inflation physics from the cosmic microwave background and large scale structure | 77 | 6 | 71 | 7.8% |
0984582p | Search for lepton flavour violating decays of heavy resonances and quantum black holes to an eμ pair in proton–proton collisions at s=8TeV | 76 | 4 | 72 | 5.3% |
2q46h4sj | Majorana neutrino magnetic moment and neutrino decoupling in big bang nucleosynthesis | 76 | 2 | 74 | 2.6% |
36n5w7gc | Measurement of single-diffractive dijet production in proton–proton collisions at s=8Te with the CMS and TOTEM experiments | 76 | 2 | 74 | 2.6% |
4js7w6jh | Negative viscosity from negative compressibility and axial flow shear stiffness in a straight magnetic field | 76 | 2 | 74 | 2.6% |
1nb222w4 | Dynamics of zonal flow saturation in strong collisionless drift wave turbulence | 75 | 8 | 67 | 10.7% |
7108w4dd | Effects of Magnetic Shear on Toroidal Rotation in Tokamak Plasmas with Lower Hybrid Current Drive | 75 | 1 | 74 | 1.3% |
1fh3c7r4 | Front propagation and critical gradient transport models | 74 | 4 | 70 | 5.4% |
9d87s2q3 | Improving Variational Autoencoders for New Physics Detection at the LHC With Normalizing Flows | 73 | 5 | 68 | 6.8% |
0w95d5r9 | On the mechanism for edge localized mode mitigation by supersonic molecular beam injection | 72 | 3 | 69 | 4.2% |
1hf5847q | Dynamics of stimulated L → H transitions | 72 | 5 | 67 | 6.9% |
20h2d97r | Search for light pseudoscalar boson pairs produced from decays of the 125 GeV Higgs boson in final states with two muons and two nearby tracks in pp collisions at s = 13 TeV | 72 | 2 | 70 | 2.8% |
3hg5s4fv | Radial density and heat fluxes description in the velocity space: Nonlinear simulations and quasi-linear calculations | 72 | 3 | 69 | 4.2% |
4034543q | Non-Gaussian properties of global momentum and particle fluxes in a cylindrical laboratory plasma | 71 | 4 | 67 | 5.6% |
8kc8z6c1 | A unified theory of zonal flow shears and density corrugations in drift wave turbulence | 71 | 6 | 65 | 8.5% |
0xz0w58w | The ecology of flows and drift wave turbulence in CSDX: A model | 69 | 1 | 68 | 1.4% |
9k38h9fw | Third-order optical conductivity of an electron fluid | 68 | 2 | 66 | 2.9% |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.