Tajima, T. & Dawson, J. M. Laser electron accelerator. Phys. Rev. Lett. 43, 267–270 (1979).
Esarey, E., Schroeder, C. B. & Leemans, W. P. Physics of laser-driven plasma-based electron accelerators. Rev. Mod. Phys. 81, 1229–1285 (2009).
Mangles, S. P. et al. Monoenergetic beams of relativistic electrons from intense laser–plasma interactions. Nature 431, 535–538 (2004).
Geddes, C. et al. High-quality electron beams from a laser wakefield accelerator using plasma-channel guiding. Nature 431, 538–541 (2004).
Faure, J. et al. A laser–plasma accelerator producing monoenergetic electron beams. Nature 431, 541–544 (2004).
Mangles, S. P. et al. Electron acceleration in cavitated channels formed by a petawatt laser in low-density plasma. Phys. Rev. Lett. 94, 245001 (2005).
Leemans, W. P. et al. GeV electron beams from a centimetre-scale accelerator. Nat. Phys. 2, 696–699 (2006).
Kneip, S. et al. Near-GeV acceleration of electrons by a nonlinear plasma wave driven by a self-guided laser pulse. Phys. Rev. Lett. 103, 035002 (2009).
Froula, D. et al. Measurements of the critical power for self-injection of electrons in a laser wakefield accelerator. Phys. Rev. Lett. 103, 215006 (2009).
Clayton, C. E. et al. Self-guided laser wakefield acceleration beyond 1 GeV using ionization-induced injection. Phys. Rev. Lett. 105, 105003 (2010).
Lu, H. et al. Laser wakefield acceleration of electron beams beyond 1 GeV from an ablative capillary discharge waveguide. Appl. Phys. Lett. 99, 091502 (2011).
Wang, X. et al. Quasi-monoenergetic laser–plasma acceleration of electrons to 2 GeV. Nat. Commun. 4, 1988 (2013).
Lu, W. et al. Generating multi-GeV electron bunches using single stage laser wakefield acceleration in a 3D nonlinear regime. Phys. Rev. Accel. Beams 10, 061301 (2007).
Debus, A. et al. Circumventing the dephasing and depletion limits of laser-wakefield acceleration. Phys. Rev. X 9, 031044 (2019).
Yoon, S., Palastro, J. & Milchberg, H. Quasi-phase-matched laser wakefield acceleration. Phys. Rev. Lett. 112, 134803 (2014).
Zhang, X., Khudik, V. N. & Shvets, G. Synergistic laser-wakefield and direct-laser acceleration in the plasma-bubble regime. Phys. Rev. Lett. 114, 184801 (2015).
Döpp, A. et al. Energy-chirp compensation in a laser wakefield accelerator. Phys. Rev. Lett. 121, 074802 (2018).
Steinke, S. et al. Multistage coupling of independent laser–plasma accelerators. Nature 530, 190–193 (2016).
Sprangle, P. et al. Wakefield generation and GeV acceleration in tapered plasma channels. Phys. Rev. E 63, 056405 (2001).
Gonsalves, A. et al. Tunable laser plasma accelerator based on longitudinal density tailoring. Nat. Phys. 7, 862–866 (2011).
Aniculaesei, C. et al. Electron energy increase in a laser wakefield accelerator using up-ramp plasma density profiles. Sci. Rep. 9, 11249 (2019).
Ludwig, J. et al. Laser based 100 GeV electron acceleration scheme for muon production. Sci. Rep. 15, 25902 (2025).
Li, R. et al. Longitudinal tapering in gas jets for increased efficiency of 10-GeV class laser plasma accelerators. Rev. Sci. Instrum. 96, 043306 (2025).
Leemans, W. et al. Multi-GeV electron beams from capillary-discharge-guided subpetawatt laser pulses in the self-trapping regime. Phys. Rev. Lett. 113, 245002 (2014).
Gonsalves, A. et al. Petawatt laser guiding and electron beam acceleration to 8 GeV in a laser-heated capillary discharge waveguide. Phys. Rev. Lett. 122, 084801 (2019).
Miao, B. et al. Multi-GeV electron bunches from an all-optical laser wakefield accelerator. Phys. Rev. X 12, 031038 (2022).
Aniculaesei, C. et al. The acceleration of a high-charge electron bunch to 10 GeV in a 10-cm nanoparticle-assisted wakefield accelerator. Matter Radiat. Extrem. 9, 014001 (2024).
Picksley, A. et al. Matched guiding and controlled injection in dark-current-free, 10-GeV-class, channel-guided laser–plasma accelerators. Phys. Rev. Lett. 133, 255001 (2024).
Rockafellow, E. et al. High charge laser acceleration of electrons to 10 GeV. Nucl. Instrum. Methods Phys. Res. A 1077, 170586 (2025).
Sainte-Marie, A., Gobert, O. & Quere, F. Controlling the velocity of ultrashort light pulses in vacuum through spatio-temporal couplings. Optica 4, 1298–1304 (2017).
Froula, D. H. et al. Spatiotemporal control of laser intensity. Nat. Photon. 12, 262–265 (2018).
Palastro, J. et al. Dephasingless laser wakefield acceleration. Phys. Rev. Lett. 124, 134802 (2020).
Palastro, J. et al. Laser–plasma acceleration beyond wave breaking. Phys. Plasmas 28, 013109 (2021).
Caizergues, C., Smartsev, S., Malka, V. & Thaury, C. Phase-locked laser-wakefield electron acceleration. Nat. Photon. 14, 475–479 (2020).
Pigeon, J. J. et al. Ultrabroadband flying-focus using an axiparabola–echelon pair. Opt. Express 32, 576–585 (2024).
Ambat, M. V. et al. Programmable-trajectory ultrafast flying focus pulses. Opt. Express 31, 31354–31368 (2023).
Martins, S. F., Fonseca, R., Lu, W., Mori, W. B. & Silva, L. Exploring laser-wakefield-accelerator regimes for near-term lasers using particle-in-cell simulation in Lorentz-boosted frames. Nat. Phys. 6, 311–316 (2010).
Miller, K. G. et al. Dephasingless laser wakefield acceleration in the bubble regime. Sci. Rep. 13, 21306 (2023).
Bromage, J. et al. Technology development for ultraintense all-OPCPA systems. High Power Laser Sci. Eng. 7, e4 (2019).
Buck, S., Oliveira, P., Angelides, T. & Galimberti, M. A review of optical parametric amplification at the Vulcan Laser Facility. Photonics 11, 495 (2024).
Wang, X. et al. 13.4 fs, 0.1 Hz OPCPA front end for the 100 PW-class laser facility. Ultrafast Sci. 9894358 (2022).
Vranic, M., Klimo, O., Korn, G. & Weber, S. Multi-GeV electron–positron beam generation from laser-electron scattering. Sci. Rep. 8, 4702 (2018).
Streeter, M. et al. Narrow bandwidth, low-emittance positron beams from a laser-wakefield accelerator. Sci. Rep. 14, 6001 (2024).
Terzani, D. et al. Measurement of directional muon beams generated at the Berkeley Lab Laser Accelerator. Phys. Rev. Accel. Beams 28, 103401 (2025).
Magnusson, J. et al. Laser-particle collider for multi-GeV photon production. Phys. Rev. Lett. 122, 254801 (2019).
Bula, C. et al. Observation of nonlinear effects in Compton scattering. Phys. Rev. Lett. 76, 3116–3119 (1996).
Burke, D. et al. Positron production in multiphoton light-by-light scattering. Phys. Rev. Lett. 79, 1626–1629 (1997).
Cole, J. et al. Experimental evidence of radiation reaction in the collision of a high-intensity laser pulse with a laser-wakefield accelerated electron beam. Phys. Rev. X 8, 011020 (2018).
Poder, K. et al. Experimental signatures of the quantum nature of radiation reaction in the field of an ultraintense laser. Phys. Rev. X 8, 031004 (2018).
Yakimenko, V. et al. Prospect of studying nonperturbative QED with beam–beam collisions. Phys. Rev. Lett. 122, 190404 (2019).
Di Piazza, A., Willingale, L. & Zuegel, J. Multi-petawatt physics prioritization (MP3) workshop report. Preprint at https://arxiv.org/abs/2211.13187 (2022).
Smartsev, S. et al. Axiparabola: a long-focal-depth, high-resolution mirror for broadband high-intensity lasers. Opt. Lett. 44, 3414–3417 (2019).
Geng, P.-F. et al. Propagation of axiparabola-focused laser pulses in uniform plasmas. Phys. Plasmas 29, 112301 (2022).
Liberman, A. et al. Direct observation of a wakefield generated with structured light. Nat. Commun. 16, 10957 (2025).
Liberman, A., Golovanov, A., Tata, S., Talposi, A.-M. & Malka, V. Probing flying-focus wakefields. Rep. Prog. Phys. 89, 038501 (2026).
Chen, M., Sheng, Z.-M., Ma, Y.-Y. & Zhang, J. Electron injection and trapping in a laser wakefield by field ionization to high-charge states of gases. J. Appl. Phys. 99, 056109 (2006).
Pak, A. et al. Injection and trapping of tunnel-ionized electrons into laser-produced wakes. Phys. Rev. Lett. 104, 025003 (2010).
McGuffey, C. et al. Ionization induced trapping in a laser wakefield accelerator. Phys. Rev. Lett. 104, 025004 (2010).
Fonseca, R. A. et al. Osiris: a three-dimensional, fully relativistic particle in cell code for modeling plasma based accelerators. In Proc. Lecture Notes in Computer Science Vol. 2331 (eds Sloot, P. M. A. et al.) 342–351 (Springer, 2002).
Davidson, A. et al. Implementation of a hybrid particle code with a PIC description in r–z and a gridless description in ϕ into OSIRIS. J. Comput. Phys. 281, 1063–1077 (2015).
Couperus, J. et al. Demonstration of a beam loaded nanocoulomb-class laser wakefield accelerator. Nat. Commun. 8, 487 (2017).
Kirchen, M. et al. Optimal beam loading in a laser–plasma accelerator. Phys. Rev. Lett. 126, 174801 (2021).
Drobniak, P. et al. Validation of a compact and tunable continuous gas-flow laser–plasma target for electron beam production above 150 MeV. Appl. Sci. 16, 2312 (2026).
Tzoufras, M. et al. Beam loading in the nonlinear regime of plasma-based acceleration. Phys. Rev. Lett. 101, 145002 (2008).
Shaw, J. L. et al. Path to a single-stage, 100-GeV electron beam via a flying-focus-driven laser–plasma accelerator. Phys. Plasmas 32, 083107 (2025).
Piccardo, M. et al. Trends in relativistic laser–matter interaction: the promises of structured light. Optica 12, 732–752 (2025).
Howard, A. J. et al. Photon acceleration in a flying focus. Phys. Rev. Lett. 123, 124801 (2019).
Ramsey, D., Franke, P., Simpson, T. T., Froula, D. H. & Palastro, J. P. Vacuum acceleration of electrons in a dynamic laser pulse. Phys. Rev. E 102, 043207 (2020).
Ramsey, D. et al. Nonlinear thomson scattering with ponderomotive control. Phys. Rev. E 105, 065201 (2022).
Ye, H. et al. Enhanced thomson scattering X-ray sources with flying focus laser pulse. AIP Adv. 13, 035330 (2023).
Formanek, M., Ramsey, D., Palastro, J. P. & Di Piazza, A. Radiation reaction enhancement in flying focus pulses. Phys. Rev. A 105, L020203 (2022).
Formanek, M., Palastro, J. P., Ramsey, D., Weber, S. & Di Piazza, A. Signatures of vacuum birefringence in low-power flying focus pulses. Phys. Rev. D 109, 056009 (2024).
Blum, P. et al. Programmable focal elongation and shaping of high-intensity laser pulses using adaptive optics. Opt. Lett. 51, 9–12 (2025).
Markland, H. et al. Rapidly tunable ultrabroadband flying focus using adaptive optics and an axiparabola. Opt. Lett. 51, 676–679 (2026).
Shaw, J. L., Vafaei-Najafabadi, N., Marsh, K. A. & Joshi, C. Technique for determining the maximum energy of a dispersed electron beam from laser wakefield accelerators. In Proc. PAC2013 162–164 (2013).
Bromage, J. et al. MTW-OPAL: a technology development platform for ultra-intense optical parametric chirped-pulse amplification systems. High Power Laser Sci. Eng. 9, e63 (2021).
Begishev, I. A. et al. Advanced laser development and plasma-physics studies on the multiterawatt laser. Appl. Opt. 60, 11104–11124 (2021).
Iaconis, C. & Walmsley, I. A. Spectral phase interferometry for direct electric-field reconstruction of ultrashort optical pulses. Opt. Lett. 23, 792–794 (1998).
Ambat, M. V., Settle, I. A., Shamlian, J., Boni, R. & Shaw, J. L. Assessment of errors in analytic modeling of permanent magnet electron spectrometers for laser–plasma accelerators. Rev. Sci. Instrum. 96, 123303 (2025).
Boutoux, G. et al. Study of imaging plate detector sensitivity to 5–18 MeV electrons. Rev. Sci. Instrum. 86, 113304 (2015).
Doria, D. et al. Calibration of BAS-TR image plate response to high energy (3–300 MeV) carbon ions. Rev. Sci. Instrum. 86, 123302 (2015).
Bonnet, T. et al. Response functions of imaging plates to photons, electrons and 4He particles. Rev. Sci. Instrum. 84, 103510 (2013).
Fonseca, R. A. et al. Exploiting multi-scale parallelism for large scale numerical modelling of laser wakefield accelerators. Plasma Phys. Control. Fusion 55, 124011 (2013).
Li, F. et al. A new field solver for modeling of relativistic particle-laser interactions using the particle-in-cell algorithm. Comput. Phys. Commun. 258, 107580 (2021).
Miller, K. G. et al. Accurate simulation of direct laser acceleration in a laser wakefield accelerator. Phys. Plasmas 30, 073902 (2023).
Palastro, J. P. et al. Ionization waves of arbitrary velocity driven by a flying focus. Phys. Rev. A 97, 033835 (2018).
