Published February 2017 | Version v1
Journal article

Laser-plasma accelerator and femtosecond photon sources-based ultrafast radiation chemistry and biophysics

Creators

  • 1. LOA, ENSTA ParisTech, CNRS, Ecole Polytechnique, University Paris-Saclay, 828 Bd des Maréchaux, 91762 Palaiseau Cedex (France)

Description

The initial distribution of energy deposition triggered by the interaction of ionizing radiations (far UV and X rays, electron, proton and accelerated ions) with molecular targets or integrated biological systems is often decisive for the spatio-temporal behavior of radiation effects that take place on several orders of magnitude. This contribution deals with an interdisciplinary approach that concerns cutting-edge advances on primary radiation events, considering the potentialities of innovating strategies based on ultrafast laser science, from femtosecond photon sources to laser-driven relativistic particles acceleration. Recent advances of powerful TW laser sources (∼ 1019 Wcm−2) and laser-plasma interactions providing ultrashort relativistic particle beams in the energy domain 2.5–150 MeV open exciting opportunities for the development of high-energy radiation femtochemistry (HERF). Early radiation damages being dependent on the survival probability of secondary electrons and radial distribution of short-lived radicals inside ionization clusters, a thorough knowledge of these processes involves the real-time probing of primary events in the temporal range 10−14–10−11 s. In the framework of a closed synergy between low-energy radiation femtochemistry (LERF) and the emerging domain of HERF, the paper focuses on early phenomena that occur in the prethermal regime of low-energy secondary electrons, considering very short-lived quantum effects in aqueous environments. A high dose-rate delivered by femtosecond electron beam (∼ 1011–1013 Gy s−1) can be used to investigate early radiation processes in native ionization tracks, down to 10−12 s and 10−9 m. We explain how this breakthrough favours the innovating development of real-time nanodosimetry in biologically relevant environments and open new perspectives for spatio-temporal radiation biophysics. The emerging domain of HERF would provide guidance for understanding the specific bioeffects of ultrashort particle bunches. This domain represents also a prerequisite for the control of in vitro and in vivo irradiation at ultrahigh dose-rates or the investigation of ultrafast dose-fractionating phenomena.

Availability note (English)

Available from http://dx.doi.org/10.1088/1748-0221/12/02/C02048

Additional details

Publishing Information

Journal Title
Journal of Instrumentation
Journal Volume
12
Journal Issue
02
Journal Page Range
p. C02048
ISSN
1748-0221