LhARA: The Laser-hybrid Accelerator for Radiobiological Applications
暂无分享,去创建一个
J. Lagrange | R. Bingham | S. Gibson | T. Greenshaw | P. Ratoff | S. Boogert | P. Burrows | P. McKenna | M. Borghesi | K. Long | K. Prise | G. Schettino | W. Shields | M. Puchalska | W. Luk | J. Pasternak | J. Matheson | P. Weightman | Z. Najmudin | C. Brenner | O. Ettlinger | C. Hardiman | C. Whyte | T. Becker | K. Kirkby | A. Kurup | G. Aymar | T. Dascalu | S. Gruber | D. Gujral | J. Hughes | W. Jones | R. Mclauchlan | H. Lau | J. L. Parsons | J. Pozimski | Susan L. Smith | J. Thomason | S. Towe | R. Xiao | P. Mckenna
[1] J. Koga,et al. Demonstration of repetitive energetic proton generation by ultra-intense laser interaction with a tape target , 2020 .
[2] Erratum: Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. , 2020, CA: a cancer journal for clinicians.
[3] Glasgow,et al. The Laser-hybrid Accelerator for Radiobiological Applications. , 2020, 2006.00493.
[4] G. Cuttone,et al. Generation control and application of flash radiation beam from laser-matter interaction: The ELIMAIA-ELIMED beamline , 2020 .
[5] E. Hammond,et al. Corrigendum: Ultra-High Dose Rate (FLASH) Radiotherapy: Silver Bullet or Fool's Gold? , 2020, Frontiers in Oncology.
[6] Stewart Boogert,et al. BDSIM: An accelerator tracking code with particle-matter interactions , 2018, Comput. Phys. Commun..
[7] H. Rossi. Relative biological effectiveness , 1989 .
[8] E. Hammond,et al. Ultra-High Dose Rate (FLASH) Radiotherapy: Silver Bullet or Fool's Gold? , 2020, Frontiers in Oncology.
[9] N. Datta,et al. Challenges and Opportunities to Realize "The 2030 Agenda For Sustainable Development" By The United Nations: Implications For Radiation Therapy Infrastructure In Low- And Middle-Income Countries. , 2019, International journal of radiation oncology, biology, physics.
[10] G. Nemova. Penning Traps , 2019, Field Guide to Laser Cooling Methods.
[11] J. Bourhis,et al. Treatment of a first patient with FLASH-radiotherapy. , 2019, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[12] J. Parsons,et al. The Radiobiological Effects of Proton Beam Therapy: Impact on DNA Damage and Repair , 2019, Cancers.
[13] J. Hendry,et al. Biological Benefits of Ultra-high Dose Rate FLASH Radiotherapy: Sleeping Beauty Awoken. , 2019, Clinical oncology (Royal College of Radiologists (Great Britain)).
[14] G. Cuttone,et al. Advanced Beam Transport Solutions for ELIMAIA: A User Oriented Laser-Driven Ion Beamlines , 2019 .
[15] S. M. Wiggins,et al. Application programmes at the Scottish Centre for the Application of Plasma-based Accelerators (SCAPA) , 2019, Optics + Optoelectronics.
[16] C. Guardiola,et al. Proton minibeam radiation therapy widens the therapeutic index for high-grade gliomas , 2018, Scientific Reports.
[17] A. Jemal,et al. Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries , 2018, CA: a cancer journal for clinicians.
[18] J. Lagrange,et al. Racetrack FFAG muon decay ring for nuSTORM with triplet focusing , 2018, Journal of Instrumentation.
[19] J. Bourhis,et al. The Advantage of FLASH Radiotherapy Confirmed in Mini-pig and Cat-cancer Patients , 2018, Clinical Cancer Research.
[20] Mohammad Hossein Khosravi,et al. Global, Regional, and National Cancer Incidence, Mortality, Years of Life Lost, Years Lived With Disability, and Disability-Adjusted Life-Years for 29 Cancer Groups, 1990 to 2016 , 2018, JAMA oncology.
[21] C. Fitzmaurice. Global, regional, and national cancer incidence, mortality, years of life lost, years lived with disability, and disability-adjusted life-years for 29 cancer groups, 2006 to 2016: A systematic analysis for the Global Burden of Disease study. , 2018 .
[22] Y. Prezado,et al. Spatial fractionation of the dose in heavy ions therapy: An optimization study , 2018, Medical physics.
[23] B. Jones,et al. The Radiobiology of Proton Therapy: Challenges and Opportunities Around Relative Biological Effectiveness. , 2018, Clinical oncology (Royal College of Radiologists (Great Britain)).
[24] R. Barlow,et al. Formation of a uniform ion beam using octupole magnets for BioLEIR facility at CERN , 2018 .
[25] S. V. Bulanov,et al. ELIMAIA: A Laser-Driven Ion Accelerator for Multidisciplinary Applications , 2018 .
[26] G. Cuttone,et al. Geant4 simulation of the ELIMED transport and dosimetry beam line for high-energy laser-driven ion beam multidisciplinary applications , 2018, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment.
[27] W. Roquemore,et al. MeV proton acceleration at kHz repetition rate from ultra-intense laser liquid interaction , 2018 .
[28] Marco Durante,et al. Faster and safer? FLASH ultra-high dose rate in radiotherapy. , 2017, The British journal of radiology.
[29] J. Parsons,et al. Complex DNA Damage Induced by High Linear Energy Transfer Alpha-Particles and Protons Triggers a Specific Cellular DNA Damage Response , 2017, International journal of radiation oncology, biology, physics.
[30] J. Borg,et al. Outline design and cost estimate for the SmartPhantom , 2018 .
[31] C. Karger,et al. RBE and related modeling in carbon-ion therapy , 2017, Physics in medicine and biology.
[32] C. Guardiola,et al. Transfer of Minibeam Radiation Therapy into a cost-effective equipment for radiobiological studies: a proof of concept , 2017, Scientific Reports.
[33] C. Guardiola,et al. Proton minibeam radiation therapy spares normal rat brain: Long-Term Clinical, Radiological and Histopathological Analysis , 2017, Scientific Reports.
[34] S. Glenzer,et al. High repetition rate, multi-MeV proton source from cryogenic hydrogen jets , 2017 .
[35] S. Glenzer,et al. Efficient laser-driven proton acceleration from cylindrical and planar cryogenic hydrogen jets , 2017, Scientific Reports.
[36] L. Silva,et al. Collimated protons accelerated from an overdense gas jet irradiated by a 1 micron wavelength high-intensity short-pulse laser , 2017, 1708.02492.
[37] S. Brons,et al. Carbon and oxygen minibeam radiation therapy: An experimental dosimetric evaluation , 2017, Medical physics.
[38] W. Enghardt,et al. A light-weight compact proton gantry design with a novel dose delivery system for broad-energetic laser-accelerated beams , 2017, Physics in medicine and biology.
[39] Y. Prezado,et al. Theoretical dosimetric evaluation of carbon and oxygen minibeam radiation therapy , 2017, Medical physics.
[40] M. Mirzaie,et al. Statistical analysis of laser driven protons using a high-repetition-rate tape drive target system , 2017 .
[41] F. Romano,et al. The radiobiology of laser-driven particle beams: focus on sub-lethal responses of normal human cells , 2017 .
[42] F. Romano,et al. Monte Carlo simulation of the ELIMED beamline using Geant4 , 2017 .
[43] E. Deutsch,et al. Spectral and spatial shaping of a laser-produced ion beam for radiation-biology experiments , 2017 .
[44] F. Romano,et al. Laser-accelerated ion beam diagnostics with TOF detectors for the ELIMED beam line , 2017 .
[45] Ihep,et al. 8th International Particle Accelerator Conference , 2017 .
[46] P. Chaudhary,et al. Effectiveness of laser accelerated ultra high dose rate protons in DNA DSB damage induction under hypoxic conditions , 2017 .
[47] J. Krása,et al. Proton Acceleration Driven by a Nanosecond Laser from a Cryogenic Thin Solid-Hydrogen Ribbon , 2016 .
[48] G. Luca,et al. The ELIMED transport and dosimetry beamline for laser-driven ion beams , 2016 .
[49] G. Luca,et al. Status, plans and potential applications of the ELIMED beam line at ELI-Beamlines , 2016 .
[50] Julia Bauer,et al. Variable RBE in proton therapy: comparison of different model predictions and their influence on clinical-like scenarios , 2016, Radiation oncology.
[51] M. Roth,et al. Ion Acceleration - Target Normal Sheath Acceleration , 2016, 1705.10569.
[52] M. R. Silva. Ionizing Radiation Detectors , 2015 .
[53] Michael Baumann,et al. Expanding global access to radiotherapy. , 2015, The Lancet. Oncology.
[54] D Kiefer,et al. Ion Acceleration Using Relativistic Pulse Shaping in Near-Critical-Density Plasmas. , 2015, Physical review letters.
[55] KEN-ICHI Yoshida,et al. Formation of a Uniform Ion Beam Based on Nonlinear Focusing and its Applications at the JAEA TIARA Cyclotron , 2015 .
[56] S. Fernandes. Optimization study , 2015 .
[57] Harald Paganetti,et al. Relative biological effectiveness (RBE) values for proton beam therapy. Variations as a function of biological endpoint, dose, and linear energy transfer , 2014, Physics in medicine and biology.
[58] Giuseppe Schettino,et al. Relative biological effectiveness variation along monoenergetic and modulated Bragg peaks of a 62-MeV therapeutic proton beam: a preclinical assessment. , 2014, International journal of radiation oncology, biology, physics.
[59] Philippe Hupé,et al. Ultrahigh dose-rate FLASH irradiation increases the differential response between normal and tumor tissue in mice , 2014, Science Translational Medicine.
[60] Haiyan Wang,et al. Wavefront measurement techniques used in high power lasers , 2014 .
[61] W. Enghardt,et al. A compact solution for ion beam therapy with laser accelerated protons , 2014 .
[62] R. Hertenberger,et al. The Effects of Ultra-High Dose Rate Proton Irradiation on Growth Delay in the Treatment of Human Tumor Xenografts in Nude Mice , 2014, Radiation research.
[63] L Nyström,et al. Statistical Analysis , 2008, Encyclopedia of Social Network Analysis and Mining.
[64] M. Aslaninejad,et al. Gabor lenses for capture and energy selection of laser driven ion beams in cancer treatment , 2013 .
[65] B. Glaeser,et al. Experimental studies of stable confined electron clouds using Gabor lenses , 2013, 1309.4654.
[66] Marco Durante,et al. Charged particle therapy—optimization, challenges and future directions , 2013, Nature Reviews Clinical Oncology.
[67] Giuseppe Schettino,et al. ELIMED: a new hadron therapy concept based on laser driven ion beams , 2013, Europe Optics + Optoelectronics.
[68] Harald Paganetti,et al. Biological considerations when comparing proton therapy with photon therapy. , 2013, Seminars in radiation oncology.
[69] W. Enghardt,et al. Dose-controlled irradiation of cancer cells with laser-accelerated proton pulses , 2013 .
[70] Y. Prezado,et al. Proton-minibeam radiation therapy: a proof of concept. , 2013, Medical physics.
[71] Shinji Machida. Fixed field alternating gradient , 2013 .
[72] Ferenc Krausz,et al. A laser-driven nanosecond proton source for radiobiological studies , 2012 .
[73] H. Daido,et al. Review of laser-driven ion sources and their applications , 2012, Reports on progress in physics. Physical Society.
[74] Giuseppe Schettino,et al. Biological effectiveness on live cells of laser driven protons at dose rates exceeding 109 Gy/s , 2012 .
[75] M Borghesi,et al. Dosimetry and spectral analysis of a radiobiological experiment using laser-driven proton beams , 2011, Physics in medicine and biology.
[76] Masakatsu Murakami,et al. Measurement of relative biological effectiveness of protons in human cancer cells using a laser-driven quasimonoenergetic proton beamline , 2011 .
[77] Wolfgang Enghardt,et al. Dose-dependent biological damage of tumour cells by laser-accelerated proton beams , 2010 .
[78] Luca Bertagna,et al. Target normal sheath acceleration: theory, comparison with experiments and future perspectives , 2010 .
[79] J. Pasternak,et al. Design of a prototype gap shaping spiral dipole for a variable energy protontherapy FFAG , 2009 .
[80] S R Nagel,et al. Characterization of high-intensity laser propagation in the relativistic transparent regime through measurements of energetic proton beams. , 2009, Physical review letters.
[81] Melanie Volkamer,et al. Proof of Concept , 2009 .
[82] J. Pasternak,et al. Spiral FFAG lattice design tools. Application to 6-D tracking in a proton-therapy class lattice , 2008 .
[83] M. Eguiraun,et al. STATUS OF THE RAL FRONT END TEST STAND , 2008 .
[84] Y. Mori,et al. Status of center for accelerator and beam applied science of Kyushu University , 2008 .
[85] M. Inoue,et al. PRESENT STATUS OF THE FFAG ACCELERATORS IN KURRI FOR ADS STUDY , 2006 .
[86] U Oelfke,et al. A phenomenological model for the relative biological effectiveness in therapeutic proton beams. , 2004, Physics in medicine and biology.
[87] Erik Lefebvre,et al. Practicability of protontherapy using compact laser systems. , 2004, Medical physics.
[88] J S Li,et al. Particle selection for laser-accelerated proton therapy feasibility study. , 2003, Medical physics.
[89] R. P. Singhal,et al. Applications for Nuclear Phenomena Generated by Ultra-Intense Lasers , 2003, Science.
[90] F. Schmidt,et al. Mad-X - an upgrade from mad8 , 2003, Proceedings of the 2003 Particle Accelerator Conference.
[91] A. V. Kuznetsov,et al. Oncological hadrontherapy with laser ion accelerators , 2002 .
[92] Harald Paganetti,et al. Relative biological effectiveness (RBE) values for proton beam therapy. , 2002, International journal of radiation oncology, biology, physics.
[93] T. C. Sangster,et al. Intense high-energy proton beams from Petawatt-laser irradiation of solids. , 2000, Physical review letters.
[94] Edward B. Clark,et al. Energetic heavy-Ion and proton generation from ultraintense laser-plasma interactions with solids , 2000, Physical review letters.
[95] Edward B. Clark,et al. Comment on "measurements of energetic proton transport through magnetized plasma from intense laser interactions with solids". , 2000 .
[96] Y. Iwashita,et al. Beam-Profile Control Using an Octupole Magnet , 1999 .
[97] O. Grobner,et al. Beam Optics: A program for analytical beam optics , 1998 .
[98] M. J. de Loos,et al. General Particle Tracer : A New 3D Code for Accelerator and Beamline Design , 1996 .
[99] M. Zucker,et al. Uniform beam distributions using octupoles , 1991, Conference Record of the 1991 IEEE Particle Accelerator Conference.
[100] M. Reiser,et al. Comparison of Gabor lens, gas focusing, and electrostatic quadrupole focusing for low-energy ion beams , 1989, Proceedings of the 1989 IEEE Particle Accelerator Conference, . 'Accelerator Science and Technology.
[101] Floyd Bennett,et al. Proceedings of the 1989 IEEE Particle Accelerator Conference : accelerator science and technology : March 20-23, 1989, Chicago, IL , 1989 .
[102] C. Driscoll,et al. Experiments With Pure Electron Plasmas , 1988 .
[103] J. Degrassie. Equilibrium, waves and transport in the pure electron plasma , 1977 .
[104] R. Berry. Effects of radiation dose-rate from protracted, continuous irradiation to ultra-high dose-rates from pulsed accelerators. , 1973, British medical bulletin.
[105] M. Ianovici. FIXED-FIELD, ALTERNATING-GRADIENT PARTICLE ACCELERATORS. , 1966 .
[106] L. Jones,et al. FIXED FIELD ALTERNATING-GRADIENT PARTICLE ACCELERATORS , 1956 .
[107] D. Gabor. A Space-Charge Lens for the Focusing of Ion Beams , 1947, Nature.
[108] E. O. Bregman,et al. The Present Status. , 1926 .
[109] K. Shadan,et al. Available online: , 2012 .