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Characterization of Energetic Protons Generated in the ShenGuang-II UP Petawatt Laser Interactions with Foil Targets

Published online by Cambridge University Press:  01 January 2024

Huiya Liu
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Anle Lei*
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China Shanghai Institute of Laser Plasma, China Academy of Engineering Physics, Shanghai 201800, China Center for Ultimate Energy, ShanghaiTech University, Shanghai 201210, China
Ning Kang
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Honghai An
Affiliation:
Shanghai Institute of Laser Plasma, China Academy of Engineering Physics, Shanghai 201800, China
Zhiyong Xie
Affiliation:
Shanghai Institute of Laser Plasma, China Academy of Engineering Physics, Shanghai 201800, China
Yao Zhao
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Shenlei Zhou
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Mingying Sun
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Baoqiang Zhu
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
Wei Wang
Affiliation:
Shanghai Institute of Laser Plasma, China Academy of Engineering Physics, Shanghai 201800, China
Jianqiang Zhu
Affiliation:
National Laboratory on High Power Laser and Physics, Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences, Shanghai 201800, China
*
Correspondence should be addressed to Anle Lei; lal@siom.ac.cn
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Abstract

The characterization of energetic protons generated in the ShenGuang-II UP petawatt laser interactions with foil targets has been systematically studied. The proton energy spectra and angular distributions are measured with a radiochromic film stack. It shows that the proton energy spectra have a Boltzmann distribution with temperature of about 2.8 MeV and cutoff energy of about 20 MeV. The divergence angles of protons vary from 10° to 60°, dependent on the proton energy. The proton source size and location are investigated via the proton point-projection mesh imaging. The proton virtual sources are found to locate tens to hundreds of microns in front of the foil target, depending on the proton energies. A Monte Carlo simulation estimates the diameter of the virtual proton source to be about 12 μm for the protons with energy of 16.8 MeV, which is much smaller than the laser focus size of about 50 μm. The spatial resolution of the 16.8 MeV proton imaging is quantified with the point spread function to be about 15 μm, which is consistent with the proton virtual source size. These results will be important for the users conducting experiments with the protons as a backlighting source on the ShenGuang-II UP petawatt laser.

Type
Research Article
Creative Commons
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This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
Copyright © 2021 Huiya Liu et al.

1. Introduction

The energetic protons generated in short, intense laser interactions with foil targets have received much attention in recent years and have been widely studied both experimentally and theoretically [Reference Clark, Krushelnick and Davies1Reference Daido, Nishiuchi and Pirozhkov5]. The protons accelerated by the electric field at the rear side of the target via the target normal sheath acceleration (TNSA) mechanism have properties including short pulse duration and high brightness [Reference Wilks, Langdon and Cowan6]. The protons have many potential applications, such as probing the fast dynamics of electric or magnetic fields in the laser produced plasmas [Reference Cecchetti, Borghesi and Fuchs7Reference Aktan, Ahmed and Aurand10], as a fast ignitor beam for laser-driven fusion [Reference Roth, Cowan and Key11], proton radiobiology [Reference Malka, Fritzler and Lefebvre12Reference Hanton, Chaudhary and Doria16], material science [Reference Barberio, Giusepponi, Vallières, Scisció, Celino and Antici17], and neutron production [Reference Kleinschmidt, Bagnoud and Deppert18]. The characteristics of the laser-driven protons such as energy spectrum, divergence angle, and source size are essential for these applications.

The energetic protons accelerated through TNSA are from the water or hydrocarbon contaminant layers on the target rear surface and can be accelerated to tens of MeV. Usually, in the point-projection imaging experiments, the size of the source decides the best resolution [Reference Borghesi, Campbell and Schiavi19]. However, the transverse size of the proton source was measured to be much larger than the imaging resolution [Reference Borghesi, Mackinnon and Campbell20]. It was, therefore, considered that the protons were emitted in a quasilaminar fashion from a virtual source with a small size [Reference Roth, Cowan and Key11, Reference Cowan, Fuchs and Ruhl21].

ShenGuang-II UP laser facility at the National Laboratory on High-Power Laser and Physics is a multifunctional experimental platform, which includes eight kilojoule-class nanosecond laser beams and one picosecond petawatt laser beam (called the SG-II UP petawatt laser, i.e., the SG-II UP PW laser) [Reference Zhu, Zhu and Li22]. The SG-II UP PW laser is usually used for fast heating of an imploded dense core plasma or generating energetic protons as a backlight source to investigate the plasmas produced by the nanosecond lasers. In this article, the characterization of energetic protons generated in the SG-II UP PW laser interactions with foil targets was systematically presented. The proton point-projection imaging with Cu meshes in combination with a radiochromic film (RCF) stack was used to characterize the protons. The proton energy spectra, angular distribution, and the virtual source size and location were obtained. The spatial resolution of the proton imaging was also analysed and compared to the virtual source size. These results and findings will be important for the potential users to know the laser status and to understand the properties of the protons so as to design their experiments.

2. Experimental Setup

The experiment was conducted on the SG-II UP PW laser. The laser uses a hybrid technology combining optical parametric chirped-pulse amplifier and Nd:glass chirped-pulse amplifier to generate short pulse (1–10 ps) and large energy (up to 1000 J) at 1053 nm [Reference Zhu, Zhu and Li22]. The experimental setup is shown in Figure 1. The laser was focused with an f/2.5 off-axis parabolic mirror to the 10 μm thickness Au foil targets, at an incidence angle of 21°. In some shots, a Cu mesh was put behind the foil target at a distance d = 2 mm, as the object in the proton point-projection imaging to judge the quality of the proton imaging. The meshes (AG 200, Gilder Grids) were formed by 36 μm lines with 90 μm spacing. The protons emitting from the rear surface of the target passed through the mesh and were detected with RCF (HD-V2, GafChromic) stacks [Reference Chen, Gauthier and Bazalova-Carter23]. The front surface of the RCF stack was located L = 32 mm behind the Cu mesh.

Figure 1: Experimental setup.

An X-ray pinhole camera (XPHC) with the theoretical resolution of about 13 μm was used to monitor the laser focus spot [Reference Wang, An and Xiong24, Reference Theobald, Sorce and Donaldson25]. An imaging plate (BAS-SR, Fuji Film) was used as the X-ray detector. In the experiment, the incident laser energy and pulse duration were set at 130 J and 1 ps, respectively, which represents a routine status of the laser as a proton backlighter. Figure 2(a) shows a typical XPHC image of the laser focus. Because a lot of physical processes are involved in the X-ray emission, such as fast electron reflux, recirculation, and transport inside the target (collision, Ohmic heating, etc.), scientifically scaling the measured emitted X-ray profile with the real laser focus intensity on the target is difficult. In this article, we assume that the X-ray intensity obtained by XPHC scales linearly with the laser intensity. The cumulative laser energy fraction as functions of intensity and focus diameter can be obtained, as shown in Figure 2(b). It shows that about 50% of the laser energy is contained within a 60 μm diameter, resulting in laser intensity over 1.5 × 1018 W/cm2. The experimental results measured in each shot are shown in Figure 2(c), and the shot number 1 is chosen as a typical shot. The incident laser energies are stable at 130 J ± 15%, and the proton cutoff energies measured with the RCF stacks are all higher than 15 MeV.

Figure 2: (a) A typical laser focus image recorded by an X-ray pinhole camera. PSL is the unit of the signal intensity on the imaging plate. (b) Curves of the cumulative laser energy fraction as functions of laser intensity and focus diameter obtained from (a). (c) Experimental results measured in each shot. The shot number 1 is chosen as the typical shot (data in the green box).

3. Experimental Results and Analysis

3.1. Proton Energy Spectra and Angular Distribution

The generated protons pass through the RCF layers, depositing their kinetic energy in the RCFs [Reference Nürnberg, Schollmeier and Brambrink26]. Typical proton images recorded on the RCFs scanned by using the EPSON V750 scanner for the same shot as in Figure 2(a) are shown in Figure 3(a). It is obvious that the lower-energy protons have higher intensity and larger angular divergence angle. The maximum proton energy reaches up to 18.9 MeV.

Figure 3: (a) Proton images on RCF layers for the same shot as in Figure 2(a). (b) Proton energy spectrum derived from (a), which was fitted with Boltzmann distribution. (c) Divergence angle of the protons. The results from VULCAN and 100TW-LULI lasers by Nürnberg et al. [Reference Nürnberg, Schollmeier and Brambrink26] are used for comparison.

The energy spectrum of the protons can be obtained from the RCF images. Based on the calibration of the HD-V2-type RCF for protons with different doses in [Reference Chen, Gauthier and Bazalova-Carter23, Reference Nürnberg, Schollmeier and Brambrink26, Reference Hey, Key and Mackinnon27], the optical density of the RCFs can be converted into the deposited proton energy. The spatially integrated proton number on each RCF layer can, thus, be obtained from the deposited energy with SRIM simulations and the spectrum unfolding calculation [Reference Ziegler, Ziegler and Biersack28, Reference Schollmeier, Geissel, Sefkow and Flippo29], as shown in Figure 3(b). The proton energy spectrum shows an exponential profile. We fit the spectrum with the Boltzmann distribution. The fitted energy spectrum is shown in Figure 3(b), with total proton number and the temperature kBT of about 1.2 × 1012 and 2.8 MeV, respectively. As we can see from the Figure 3(b), because of the saturation of the lowest-energy RCF layers, the measured proton numbers at low proton energies are less than the fitted result. Based on the fitting result, the conversion efficiency of laser energy to the proton beam can be calculated to be about 0.62%.

With the given distances between the target and the RCF layers and sizes of the proton images, the divergence angles (referring the full beam aperture in this article) of the energy-resolved protons can be calculated, as shown in Figure 3(c). The results from VULCAN and 100TW-LULI lasers by Nürnberg et al. [Reference Nürnberg, Schollmeier and Brambrink26] are also shown for comparison. In Figure 3(c), the proton energy E is scaled to the maximum proton energy E max, here E max = 18.9 MeV, 29.7 MeV, and 16.2 MeV for the SG-II UP PW, VULCAN, and 100TW-LULI lasers, respectively. The divergence angles of protons in our experiment are from 10° to 60°, dependent on the proton energy, with the divergence angle decreasing with the increase in the proton energy. The divergence angles of energy-resolved protons generated by the SG-II UP PW laser and VULCAN laser are similar but relatively differ from the 100TW-LULI laser. Note that the laser energy for the SG-II UP PW and VULCAN shot is about 130 J and that for the 100TW-LULI shot is about 15 J. That may be the reason why their divergences of protons are different.

3.2. Proton Source Location and Size

It has been shown that the laser-driven protons are emitted from a virtual source in a quasilaminar fashion [Reference Borghesi, Mackinnon and Campbell20]. The location of the virtual source can be obtained through calculating the magnification rate M of the Cu mesh in the proton image. The magnification rate M of the point-projection imaging in our experiment is the ratio of the virtual source-to-RCF layer distance to the virtual source-to-mesh distance.

(1) M = ν + d + L + l ν + d ,

where ν is the distance from the virtual source to the foil target and l is the distance from the front surface of the RCF stack to a RCF layer with specific proton energy. In the experiment, the magnification rate M can be measured as M = d RCF/d mesh, where d RCF is the period of the mesh in the proton image and d mesh is the real period of the mesh. For the image of protons with energy of 16.8 MeV shown in Figure 3(a), d RCF = 2.131 mm, d mesh = 0.126 mm, l = 2.2 mm, d = 2 mm, and L = 32 mm, we can then obtain ν = 0.151 mm. Using the same method, the positions of the virtual sources for protons with different energies in front of the target are obtained with the uncertainty of about 7%–15%, as listed in Table 1.

Table 1: Energy-resolved position of the virtual source in front of the target ν and virtual source size S virtual (for VULCAN and 100TW-LULI lasers) or 2σ of ESF value (for SG-II UP PW) for three different laser systems. The results from VULCAN and 100TW-LULI lasers by Nürnberg et al. [Reference Nürnberg, Schollmeier and Brambrink26] are used for comparison.

To estimate the size of the virtual source, a series of Monte Carlo simulations based on Geant4 were carried out for the protons with various source sizes [Reference Roth, Cowan and Key11, Reference Incerti, Baldacchino and Bernal30]. In the simulations, spatial Gaussian density distribution in the proton source was used.

(2) n x , y = n 0 exp x 2 r 2 y 2 r 2 ,

where n 0 and r are the total proton number and the 1/e is the radius of the proton source, respectively. The spatially resolved optical density distribution in the RCF layer is calculated, as shown in Figure 4. By comparing the experimental optical density profile with the simulated ones, we find that the protons with a virtual source size of about 12 μm in 1/e diameter can well match the experimental optical density profile.

Figure 4: (a) The optical density distribution of 16.8 MeV protons in Figure 3(a). (b) The experimental optical density profile of 16.8 MeV protons in the white box region in (a), and the simulated optical density profile of 16.8 MeV protons with source sizes of 1 μm, 12 μm, and 50 μm in 1/e diameter, respectively.

3.3. Spatial Resolution of the Proton Imaging

The spatial resolution of the proton imaging reflects the size of the proton virtual source. We, therefore, analysed the mesh images on RCFs to obtain the point spread function (PSF) so as to quantify the proton imaging spatial resolution. We first fitted the edge of the experimental optical density profile in Figure 4(b) for X from 11 mm to 14 mm with an edge spread function (ESF) [Reference Park, Maddox and Giraldez31], which is

(3) I ESF x = I 0 erf x σ + a 0 + a 1 x ,

where

(4) erf x σ = 2 π 0 x / σ e t 2 d t ,

and I 0, σ, a 0, and a 1 are fitting coefficients. The fitted ESF is shown in Figure 5(a), which gives σ = 6.9 μm. Considering that the ESF is the integral response function of a Gaussian-type PSF, the PSF can be obtained as

(5) I PSF x = I 0 2 π σ exp x 2 σ 2 + a 1 .

Figure 5: (a) The experimental optical density profile in Figure 4(b) for X from 11 mm to 14 mm was fitted by an edge spread function (ESF) with the coefficient 2σ = 13.8. M = d RCF/d mesh = 16.9M = (d RCF)/(d mesh) = 16.9 is the magnification rate of the imaging for the protons with energy of 16.8 MeV. (b) The MTF for the protons with different energies; the shaded area represents the range of the possible MTF.

So the full width at 1/e maximum of spatial resolution of proton imaging is 2σ = 13.8 μm. This is consistent with the size of the proton virtual source of about 12 μm obtained through Monte Carlo simulations. The energy-resolved 2σ of ESF values are listed in Table 1 and are compared with the virtual source sizes from VULCAN and 100TW-LULI lasers by Nürnberg et al. [Reference Nürnberg, Schollmeier and Brambrink26].

In addition, the normalized Fourier transform of the PSF represents the modulation transfer function (MTF), which is

(6) I MTF k = exp k 2 σ 2 4 ,

where k = 2 π / λ and λ is the period of the modulation. Figure 5(b) shows the MTF for the protons with different energies. One sees that the spatial resolution of the 16.8 MeV proton imaging at 20% MTF is about 15 μm and that for other protons ranges from 12 to 25 μm.

4. Conclusions

In summary, the characteristics of the energetic protons accelerated from the SG-II UP PW laser interactions with foil targets were investigated. The maximum proton energy obtained in the experiment was 18.9 MeV with a laser pulse of 130 J and 1 ps. The energy spectrum of protons measured by the RCF stack is fitted with the Boltzmann distribution with the temperature of about 2.8 MeV. The emission of the protons showed a decreasing divergence angle from 60° to 10° with the increase in the proton energy. Based on the proton point-projection mesh imaging, the proton virtual sources for protons with different energies were found to locate tens to hundreds of microns in front of the target, and the size was estimated with a Monte Carlo simulation, to be about 12 μm in 1/e diameter for the protons with energy of 16.8 MeV. This size is consistent with the proton imaging spatial resolution of about 15 μm obtained from the point spread function. These results are of importance for experiments using the protons as a backlighting source on the SG-II UP PW laser.

Data Availability

Data can be made available upon request.

Conflicts of Interest

The authors declare no conflicts of interest.

Acknowledgments

The authors gratefully acknowledge the support from the technical team of the ShenGuang-II laser facility. This work was supported by the National Science and Technology Innovation Foundation of the Chinese Academy of Sciences (Grant No. CXJJ-20S015) and the Strategic Priority Research Program of the Chinese Academy of Sciences (Grant No. XDA 25020204).

References

Clark, E. L., Krushelnick, K., Davies, J. R. et al., “Measurements of energetic proton transport through magnetized plasma from intense laser interactions with solids,” Physical Review Letters, vol. 84, no. 4, pp. 670673, 2000.10.1103/PhysRevLett.84.670CrossRefGoogle ScholarPubMed
Snavely, R. A., Key, M. H., Hatchett, S. P. et al., “Intense high-energy proton beams from Petawatt-laser irradiation of solids,” Physical Review Letters, vol. 85, no. 14, pp. 29452948, 2000.10.1103/PhysRevLett.85.2945CrossRefGoogle ScholarPubMed
Hatchett, S. P., Brown, C. G., Cowan, T. E. et al., “Electron, photon, and ion beams from the relativistic interaction of Petawatt laser pulses with solid targets,” Physics of Plasmas, vol. 7, no. 5, pp. 20762082, 2000.10.1063/1.874030CrossRefGoogle Scholar
Pukhov, A., “Three-dimensional simulations of ion acceleration from a foil irradiated by a short-pulse laser,” Physical Review Letters, vol. 86, no. 16, pp. 35623565, 2001.10.1103/PhysRevLett.86.3562CrossRefGoogle ScholarPubMed
Daido, H., Nishiuchi, M., and Pirozhkov, A. S., “Review of laser-driven ion sources and their applications,” Reports on Progress in Physics, vol. 7, Article ID 056401, 2012.Google Scholar
Wilks, S. C., Langdon, A. B., Cowan, T. E. et al., “Energetic proton generation in ultra-intense laser-solid interactions,” Physics of Plasmas, vol. 8, no. 2, pp. 542549, 2001.10.1063/1.1333697CrossRefGoogle Scholar
Cecchetti, C. A., Borghesi, M., Fuchs, J. et al., “Magnetic field measurements in laser-produced plasmas via proton deflectometry,” Physics of Plasmas, vol. 16, Article ID 043102, 2009.10.1063/1.3097899CrossRefGoogle Scholar
Chien, A., Gao, L., Ji, H. et al., “Study of a magnetically driven reconnection platform using ultrafast proton radiography,” Physics of Plasmas, vol. 26, Article ID 062113, 2019.10.1063/1.5095960CrossRefGoogle Scholar
Ahmed, H., Kar, S., Cantono, G. et al., “Investigations of ultrafast charge dynamics in laser-irradiated targets by a self probing technique employing laser driven protons,” Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, vol. 829, pp. 172175, 2016.10.1016/j.nima.2016.04.078CrossRefGoogle Scholar
Aktan, E., Ahmed, H., Aurand, B. et al., “Parametric study of a high amplitude electromagnetic pulse driven by an intense laser,” Physics of Plasmas, vol. 26, Article ID 070701, 2019.10.1063/1.5094871CrossRefGoogle Scholar
Roth, M., Cowan, T. E., Key, M. H. et al., “Fast ignition by intense laser-accelerated proton beams,” Physical Review Letters, vol. 86, no. 3, pp. 436439, 2001.10.1103/PhysRevLett.86.436CrossRefGoogle ScholarPubMed
Malka, V., Fritzler, S., Lefebvre, E. et al., “Practicability of protontherapy using compact laser systems,” Medical Physics, vol. 31, no. 6, pp. 15871592, 2004.10.1118/1.1747751CrossRefGoogle ScholarPubMed
Masood, U., Bussmann, M., Cowan, T. E. et al., “A compact solution for ion beam therapy with laser accelerated protons,” Applied Physics B, vol. 117, no. 1, pp. 4152, 2014.10.1007/s00340-014-5796-zCrossRefGoogle Scholar
Chaudhary, P., Milluzzo, G., Ahmed, H. et al., “Radiobiology experiments with ultra-high dose rate laser-driven protons: methodology and state-of-the-art,” Frontiers in Physics, vol. 9, Article ID 624963, 2021.10.3389/fphy.2021.624963CrossRefGoogle Scholar
Rösch, T. F., Szabó, Z., Haffa, D. et al., “A feasibility study of zebrafish embryo irradiation with laser-accelerated protons,” The Review of Scientific INSTRUMENTS, vol. 91, Article ID 063303, 2020.10.1063/5.0008512CrossRefGoogle ScholarPubMed
Hanton, F., Chaudhary, P., Doria, D. et al., “DNA DSB repair dynamics following irradiation with laser-driven protons at ultra-high dose rates,” Scientific Reports, vol. 9, no. 1, p. 4471, 2019.10.1038/s41598-019-40339-6CrossRefGoogle ScholarPubMed
Barberio, M., Giusepponi, S., Vallières, S., Scisció, M., Celino, M., and Antici, P., “Ultra-fast high-precision metallic nanoparticle synthesis using laser-accelerated protons,” Scientific Reports, vol. 10, no. 1, p. 9570, 2020.10.1038/s41598-020-65282-9CrossRefGoogle ScholarPubMed
Kleinschmidt, A., Bagnoud, V., Deppert, O. et al., “Intense, directed neutron beams from a laser-driven neutron source at PHELIX,” Physics of Plasmas, vol. 25, Article ID 053101, 2018.10.1063/1.5006613CrossRefGoogle Scholar
Borghesi, M., Campbell, D. H., Schiavi, A. et al., “Electric field detection in laser-plasma interaction experiments via the proton imaging technique,” Physics of Plasmas, vol. 9, no. 5, pp. 22142220, 2002.10.1063/1.1459457CrossRefGoogle Scholar
Borghesi, M., Mackinnon, A. J., Campbell, D. H. et al., “Multi-MeV proton source investigations in ultraintense laser-foil interactions,” Physical Review Letters, vol. 92, Article ID 055003, 2004.10.1103/PhysRevLett.92.055003CrossRefGoogle ScholarPubMed
Cowan, T. E., Fuchs, J., Ruhl, H. et al., “Ultralow emittance, multi-MeV proton beams from a laser virtual-cathode plasma accelerator,” Physical Review Letters, vol. 92, no. 20, Article ID 204801, 2004.10.1103/PhysRevLett.92.204801CrossRefGoogle ScholarPubMed
Zhu, J., Zhu, J., Li, X. et al., “Status and development of high-power laser facilities at the NLHPLP,” High Power Laser Science and Engineering, vol. 6, p. e55, 2018.10.1017/hpl.2018.46CrossRefGoogle Scholar
Chen, S. N., Gauthier, M., Bazalova-Carter, M. et al., “Absolute dosimetric characterization of Gafchromic EBT3 and HDv2 films using commercial flat-bed scanners and evaluation of the scanner response function variability,” Review of Scientific Instruments, vol. 87, Article ID 073301, 2016.10.1063/1.4954921CrossRefGoogle ScholarPubMed
Wang, C., An, H. H., Xiong, J. et al., “A pinhole camera for ultrahigh-intensity laser plasma experiments,” Review of Scientific Instruments, vol. 88, no. 11, Article ID 113501, 2017.10.1063/1.5009189CrossRefGoogle ScholarPubMed
Theobald, W., Sorce, C., Donaldson, W. R. et al., “Inferred UV fluence focal-spot profiles from soft x-ray pinhole-camera measurements on OMEGA,” The Review of Scientific Instruments, vol. 91, Article ID 023505, 2020.10.1063/1.5120708CrossRefGoogle ScholarPubMed
Nürnberg, F., Schollmeier, M., Brambrink, E. et al., “Radiochromic film imaging spectroscopy of laser-accelerated proton beams,” The Review of Scientific Instruments, vol. 80, Article ID 033301, 2009.10.1063/1.3086424CrossRefGoogle ScholarPubMed
Hey, D. S., Key, M. H., Mackinnon, A. J. et al., “Use of GafChromic film to diagnose laser generated proton beams,” Review of Scientific Instruments, vol. 7, Article ID 053501, 2008.Google Scholar
Ziegler, J. F., Ziegler, M. D., and Biersack, J. P., “SRIM-the stopping and range of ions in matter (2010),” Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, vol. 268, no. 11-12, pp. 18181823, 2010.10.1016/j.nimb.2010.02.091CrossRefGoogle Scholar
Schollmeier, M., Geissel, M., Sefkow, A. B., and Flippo, K. A., “Improved spectral data unfolding for radiochromic film imaging spectroscopy of laser-accelerated proton beams,” The Review of Scientific Instruments, vol. 85, Article ID 043305, 2014.10.1063/1.4870895CrossRefGoogle ScholarPubMed
Incerti, S., Baldacchino, G., Bernal, M. et al., “The Geant4-DNA project,” International Journal of Modeling, Simulation, and Scientific Computing, vol. 1, no. 2, pp. 157178, 2010.10.1142/S1793962310000122CrossRefGoogle Scholar
Park, H.-S., Maddox, B. R., Giraldez, E. et al., “High-resolution 17–75 keV backlighters for high energy density experiments,” Physics of Plasmas, vol. 15, Article ID 072705, 2008.10.1063/1.2957918CrossRefGoogle Scholar
Figure 0

Figure 1: Experimental setup.

Figure 1

Figure 2: (a) A typical laser focus image recorded by an X-ray pinhole camera. PSL is the unit of the signal intensity on the imaging plate. (b) Curves of the cumulative laser energy fraction as functions of laser intensity and focus diameter obtained from (a). (c) Experimental results measured in each shot. The shot number 1 is chosen as the typical shot (data in the green box).

Figure 2

Figure 3: (a) Proton images on RCF layers for the same shot as in Figure 2(a). (b) Proton energy spectrum derived from (a), which was fitted with Boltzmann distribution. (c) Divergence angle of the protons. The results from VULCAN and 100TW-LULI lasers by Nürnberg et al. [26] are used for comparison.

Figure 3

Table 1: Energy-resolved position of the virtual source in front of the target ν and virtual source size Svirtual (for VULCAN and 100TW-LULI lasers) or 2σ of ESF value (for SG-II UP PW) for three different laser systems. The results from VULCAN and 100TW-LULI lasers by Nürnberg et al. [26] are used for comparison.

Figure 4

Figure 4: (a) The optical density distribution of 16.8 MeV protons in Figure 3(a). (b) The experimental optical density profile of 16.8 MeV protons in the white box region in (a), and the simulated optical density profile of 16.8 MeV protons with source sizes of 1 μm, 12 μm, and 50 μm in 1/e diameter, respectively.

Figure 5

Figure 5: (a) The experimental optical density profile in Figure 4(b) for X from 11 mm to 14 mm was fitted by an edge spread function (ESF) with the coefficient 2σ = 13.8. M = dRCF/dmesh = 16.9M = (dRCF)/(dmesh) = 16.9 is the magnification rate of the imaging for the protons with energy of 16.8 MeV. (b) The MTF for the protons with different energies; the shaded area represents the range of the possible MTF.