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1.
Eur Phys J A Hadron Nucl ; 58(12): 239, 2022.
Article in English | MEDLINE | ID: mdl-36514540

ABSTRACT

Neutron capture reaction cross sections on 74 Ge are of importance to determine 74 Ge production during the astrophysical slow neutron capture process. We present new resonance data on 74 Ge( n , γ ) reactions below 70 keV neutron energy. We calculate Maxwellian averaged cross sections, combining our data below 70 keV with evaluated cross sections at higher neutron energies. Our stellar cross sections are in agreement with a previous activation measurement performed at Forschungszentrum Karlsruhe by Marganiec et al., once their data has been re-normalised to account for an update in the reference cross section used in that experiment.

2.
Rev Sci Instrum ; 85(11): 11E101, 2014 Nov.
Article in English | MEDLINE | ID: mdl-25430280

ABSTRACT

Single crystal Diamond Detectors (SDD) are being increasingly exploited for neutron diagnostics in high power fusion devices, given their significant radiation hardness and high energy resolution capabilities. The geometrical efficiency of SDDs is limited by the size of commercially available crystals, which is often smaller than the dimension of neutron beams along collimated lines of sight in tokamak devices. In this work, we present the design and fabrication of a 14 MeV neutron spectrometer consisting of 12 diamond pixels arranged in a matrix, so to achieve an improved geometrical efficiency. Each pixel is equipped with an independent high voltage supply and read-out electronics optimized to combine high energy resolution and fast signals (<30 ns), which are essential to enable high counting rate (>1 MHz) spectroscopy. The response function of a prototype SDD to 14 MeV neutrons has been measured at the Frascati Neutron Generator by observation of the 8.3 MeV peak from the (12)C(n, α)(9)Be reaction occurring between neutrons and (12)C nuclei in the detector. The measured energy resolution (2.5% FWHM) meets the requirements for neutron spectroscopy applications in deuterium-tritium plasmas.

3.
Rev Sci Instrum ; 85(4): 043506, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24784606

ABSTRACT

First simultaneous measurements of deuterium-deuterium (DD) and deuterium-tritium neutrons from deuterium plasmas using a Single crystal Diamond Detector are presented in this paper. The measurements were performed at JET with a dedicated electronic chain that combined high count rate capabilities and high energy resolution. The deposited energy spectrum from DD neutrons was successfully reproduced by means of Monte Carlo calculations of the detector response function and simulations of neutron emission from the plasma, including background contributions. The reported results are of relevance for the development of compact neutron detectors with spectroscopy capabilities for installation in camera systems of present and future high power fusion experiments.

4.
Phys Rev Lett ; 110(2): 022501, 2013 Jan 11.
Article in English | MEDLINE | ID: mdl-23383895

ABSTRACT

The 63Ni(n,γ) cross section has been measured for the first time at the neutron time-of-flight facility n_TOF at CERN from thermal neutron energies up to 200 keV. In total, capture kernels of 12 (new) resonances were determined. Maxwellian averaged cross sections were calculated for thermal energies from kT=5-100 keV with uncertainties around 20%. Stellar model calculations for a 25M⊙ star show that the new data have a significant effect on the s-process production of 63Cu, 64Ni, and 64Zn in massive stars, allowing stronger constraints on the Cu yields from explosive nucleosynthesis in the subsequent supernova.

5.
Appl Radiat Isot ; 68(4-5): 643-6, 2010.
Article in English | MEDLINE | ID: mdl-20096595

ABSTRACT

In 2002, an innovative neutron time-of-flight facility started operation at CERN: n_TOF. The main characteristics that make the new facility unique are the high instantaneous neutron flux, high resolution and wide energy range. Combined with state-of-the-art detectors and data acquisition system, these features have allowed to collect high accuracy neutron cross-section data on a variety of isotopes, many of which radioactive, of interest for Nuclear Astrophysics and for applications to advanced reactor technologies. A review of the most important results on capture and fission reactions obtained so far at n_TOF is presented, together with plans for new measurements related to nuclear industry.


Subject(s)
Neutron Capture Therapy/instrumentation , Neutron Capture Therapy/methods , Nuclear Reactors , Equipment Design , Equipment Failure Analysis , Neutrons , Reproducibility of Results , Sensitivity and Specificity
6.
Phys Rev Lett ; 93(16): 161103, 2004 Oct 15.
Article in English | MEDLINE | ID: mdl-15524972

ABSTRACT

The151Sm(n,gamma)152Sm cross section has been measured at the spallation neutron facility n_TOF at CERN in the energy range from 1 eV to 1 MeV. The new facility combines excellent resolution in neutron time-of-flight, low repetition rates, and an unsurpassed instantaneous luminosity, resulting in rather favorable signal/background ratios. The 151Sm cross section is of importance for characterizing neutron capture nucleosynthesis in asymptotic giant branch stars. At a thermal energy of kT=30 keV the Maxwellian averaged cross section of this unstable isotope (t(1/2)=93 yr) was determined to be 3100+/-160 mb, significantly larger than theoretical predictions.

7.
Radiother Oncol ; 73 Suppl 2: S202-5, 2004 Dec.
Article in English | MEDLINE | ID: mdl-15971342

ABSTRACT

This paper describes the status of the design study of the Austrian Ion Therapy and Cancer-Research Centre Project MedAustron. This work was performed during the last two years by the MedAustron study group. The team was spread out over several research institutes and University clinics, with full-time members at the Medical University of Vienna, Innsbruck Medical University and Fotec, Wiener Neustadt in collaboration with the Medical University Graz, the Hospital of Wiener Neustadt, the Vienna University of Technology and the research institutes CERN, PSI, the Slovak University of Technology in Bratislava and the Jozef Stefan Institute, Ljubljana. The study group has also worked in cooperation with GSI, Darmstadt and the CNAO foundation, Milan. The agreed aim of this study was to investigate a conceptual design of an accelerator facility which provides optimum treatment conditions for high-precision active beam scanning of cancer tumours with both proton and carbon ions.


Subject(s)
Carbon/therapeutic use , Heavy Ion Radiotherapy , Neoplasms/radiotherapy , Proton Therapy , Radiotherapy, Conformal , Austria , Humans , Particle Accelerators , Synchrotrons
8.
Phys Rev Lett ; 85(15): 3100-4, 2000 Oct 09.
Article in English | MEDLINE | ID: mdl-11019276

ABSTRACT

We present the first measurement of pseudorapidity densities of primary charged particles near midrapidity in Au+Au collisions at sqrt[s(NN)] = 56 and 130 GeV. For the most central collisions, we find the charged-particle pseudorapidity density to be dN/deta|(|eta|<1) = 408+/-12(stat)+/-30(syst) at 56 GeV and 555+/-12(stat)+/-35(syst) at 130 GeV, values that are higher than any previously observed in nuclear collisions. Compared to proton-antiproton collisions, our data show an increase in the pseudorapidity density per participant by more than 40% at the higher energy.

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