Accelerator Tech-Applied Phys
Parent: Physical Sciences
eScholarship stats: History by Item for May through August, 2026
| Item | Title | Total requests | 2026-08 | 2026-07 | 2026-06 | 2026-05 |
|---|---|---|---|---|---|---|
| 9zp8p7nm | FCC-hh: The Hadron Collider | 925 | 285 | 202 | 246 | 192 |
| 4m84r21d | The impact of low-mode symmetry on inertial fusion energy output in the burning plasma state | 784 | 144 | 141 | 220 | 279 |
| 76s2871h | Physics Design and Scaling of Elise | 707 | 13 | 10 | 15 | 669 |
| 1n1690zv | Progress on HL-LHC Nb<sub>3</sub>Sn Magnets | 686 | 119 | 173 | 206 | 188 |
| 74s0t81f | Tutorial: Reactive high power impulse magnetron sputtering (R-HiPIMS) | 676 | 175 | 144 | 163 | 194 |
| 5sz6k69h | Charged particle motion and radiation in strong electromagnetic fields | 613 | 166 | 161 | 129 | 157 |
| 9r65z0pt | Electrochemical loading enhances deuterium fusion rates in a metal target | 561 | 226 | 74 | 143 | 118 |
| 84k974r2 | Plasma-based ion implantation and deposition: A review of physics, technology, and applications | 560 | 257 | 219 | 50 | 34 |
| 80x9f381 | Lawson Criterion for Ignition Exceeded in an Inertial Fusion Experiment | 508 | 128 | 91 | 161 | 128 |
| 5hr619s6 | Electrochemical loading enhances deuterium fusion rates in a metal target | 492 | 303 | 104 | 35 | 50 |
| 1zd805nx | Formation of diamonds in laser-compressed hydrocarbons at planetary interior conditions | 458 | 266 | 49 | 55 | 88 |
| 6p44s2tv | Adiabatic matching of particle bunches in a plasma-based accelerator in the presence of ion motion | 421 | 72 | 83 | 121 | 145 |
| 2gg9571k | Coherent soft X-ray pulses from an echo-enabled harmonic generation free-electron laser | 412 | 100 | 95 | 98 | 119 |
| 2995k7b9 | Design study for a compact, two-stage, laser-plasma-based source of positron beams | 398 | 194 | 72 | 65 | 67 |
| 3m46m1fw | High-throughput homogenization of a quasi-Gaussian ultrafast laser beam using a combined refractive beam shaper and spatial light modulator | 387 | 57 | 107 | 131 | 92 |
| 42h4r5hb | AI@ALS Workshop Report: Machine Learning Needs at the Advanced Light Source | 376 | 162 | 36 | 62 | 116 |
| 1kc9018z | A linear collider vision for the future of particle physics | 374 | 87 | 102 | 156 | 29 |
| 3261x4bm | A structure zone diagram including plasma based deposition and ion etching | 374 | 114 | 85 | 82 | 93 |
| 1xp428p2 | HE-LHC: The High-Energy Large Hadron Collider | 364 | 111 | 41 | 102 | 110 |
| 4205f2s7 | Erratum: Great moments in kinetic theory: 150 years of Maxwell's (other) equations (2017 Eur. J. Phys. 38 065103) | 362 | 125 | 158 | 20 | 59 |
| 1kp7z8tr | Laser-heated capillary discharge plasma waveguides for electron acceleration to 8 GeV | 346 | 44 | 76 | 98 | 128 |
| 1p5584cm | Ultrafast electron diffraction: Visualizing dynamic states of matter | 345 | 58 | 94 | 77 | 116 |
| 4d484805 | Superconducting Magnets for Particle Accelerators | 345 | 92 | 94 | 53 | 106 |
| 2px009hq | Achievement of Target Gain Larger than Unity in an Inertial Fusion Experiment | 339 | 108 | 72 | 65 | 94 |
| 7xn8533z | Superconducting ECR ion source: From 24-28 GHz SECRAL to 45 GHz fourth generation ECR | 336 | 56 | 65 | 99 | 116 |
| 44q234z2 | Fabrication and Test of C3a: A Six-Layer Subscale Canted $\cos \theta$ Dipole Magnet Using High-Temperature Superconducting corc Wires | 326 | 60 | 42 | 102 | 122 |
| 0538z8b3 | 2020 roadmap on plasma accelerators | 322 | 74 | 39 | 77 | 132 |
| 3813v2ts | Stabilization and control of persistent current magnets using variable inductance | 314 | 57 | 61 | 74 | 122 |
| 065858zx | Dipole Magnets above 20 Tesla: Research Needs for a Path via High-Temperature Superconducting REBCO Conductors | 309 | 114 | 57 | 50 | 88 |
| 5q63r9ph | Pushing the Frontier in the Design of Laser-Based Electron Accelerators with Groundbreaking Mesh-Refined Particle-In-Cell Simulations on Exascale-Class Supercomputers | 294 | 79 | 70 | 58 | 87 |
| 0tc9r96f | Enhanced Isomer Population via Direct Irradiation of Solid-Density Targets Using a Compact Laser-Plasma Accelerator | 285 | 46 | 66 | 81 | 92 |
| 02p2d28q | Compact in-vacuum gamma-ray spectrometer for high-repetition rate PW-class laser–matter interaction | 283 | 44 | 59 | 88 | 92 |
| 0bv5d7dj | The Adaptable IO System (ADIOS) | 281 | 94 | 55 | 49 | 83 |
| 0km96259 | An Initial Look at the Magnetic Design of a 150 mm Aperture High-Temperature Superconducting Magnet With a Dipole Field of 8 to 10 T | 281 | 46 | 54 | 78 | 103 |
| 1k79p6pk | Formation of diamonds in laser-compressed hydrocarbons at planetary interior conditions | 280 | 116 | 32 | 28 | 104 |
| 6qj90586 | Thermoeconomic cost optimization of superconducting magnets for proton therapy gantries | 278 | 95 | 45 | 43 | 95 |
| 0rw8w2xf | Strong-field QED experiments using the BELLA PW laser dual beamlines | 277 | 38 | 54 | 80 | 105 |
| 23w5h8dz | Properties of gallium oxide thin films grown by ion beam sputter deposition at room temperature | 273 | 66 | 30 | 77 | 100 |
| 3fx8c3xs | Multistage coupling of independent laser-plasma accelerators | 270 | 58 | 49 | 63 | 100 |
| 77n23236 | An accurate and efficient laser-envelope solver for the modeling of laser-plasma accelerators | 268 | 111 | 40 | 35 | 82 |
| 9qr8d32z | Distributed Fiber Optic Sensing to Identify Locations of Resistive Transitions in REBCO Conductors and Magnets | 265 | 51 | 41 | 85 | 88 |
| 2ph3v80c | Plasma density gradient injection of low absolute momentum spread electron bunches | 263 | 110 | 99 | 25 | 29 |
| 538805vh | Diagnostics, Control and Performance Parameters for the BELLA High Repetition Rate Petawatt Class Laser | 263 | 77 | 62 | 60 | 64 |
| 79p4v28z | GeV electron beams from a cm-scale accelerator | 263 | 72 | 88 | 35 | 68 |
| 9pz99656 | Visualization at exascale: Making it all work with VTK-m | 263 | 62 | 46 | 75 | 80 |
| 7q7732kp | Quench protection for high-temperature superconductor cables using active control of current distribution | 256 | 59 | 53 | 55 | 89 |
| 8j13j7g5 | Automatic Qubit Characterization and Gate Optimization with QubiC | 256 | 54 | 52 | 65 | 85 |
| 4nz6f1kx | Light-Matter Interaction near the Schwinger Limit Using Tightly Focused Doppler-Boosted Lasers | 255 | 88 | 35 | 40 | 92 |
| 5217c2bm | Laser-heated capillary discharge waveguides as tunable structures for laser-plasma acceleration | 251 | 56 | 88 | 50 | 57 |
| 08x952ws | IRIDE: Interdisciplinary research infrastructure based on dual electron linacs and lasers | 249 | 55 | 49 | 61 | 84 |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.