Effect of Particle Sizes on the Efficiency of Fluorinated Nanodiamond Neutron Reflectors.

Monte Carlo albedo detonation nanodiamonds fluorination nanopowder reflectors of slow neutrons size separation of nanodiamonds

Journal

Nanomaterials (Basel, Switzerland)
ISSN: 2079-4991
Titre abrégé: Nanomaterials (Basel)
Pays: Switzerland
ID NLM: 101610216

Informations de publication

Date de publication:
14 Nov 2021
Historique:
received: 01 10 2021
revised: 04 11 2021
accepted: 11 11 2021
entrez: 27 11 2021
pubmed: 28 11 2021
medline: 28 11 2021
Statut: epublish

Résumé

Over a decade ago, it was confirmed that detonation nanodiamond (DND) powders reflect very cold neutrons (VCNs) diffusively at any incidence angle and that they reflect cold neutrons quasi-specularly at small incidence angles. In the present publication, we report the results of a study on the effect of particle sizes on the overall efficiency of neutron reflectors made of DNDs. To perform this study, we separated, by centrifugation, the fraction of finer DND nanoparticles (which are referred to as S-DNDs here) from a broad initial size distribution and experimentally and theoretically compared the performance of such a neutron reflector with that from deagglomerated fluorinated DNDs (DF-DNDs). Typical commercially available DNDs with the size of ~4.3 nm are close to the optimum for VCNs with a typical velocity of ~50 m/s, while smaller and larger DNDs are more efficient for faster and slower VCN velocities, respectively. Simulations show that, for a realistic reflector geometry, the replacement of DF-DNDs (a reflector with the best achieved performance) by S-DNDs (with smaller size DNDs) increases the neutron albedo in the velocity range above ~60 m/s. This increase in the albedo results in an increase in the density of faster VCNs in such a reflector cavity of up to ~25% as well as an increase in the upper boundary of the velocities of efficient VCN reflection.

Identifiants

pubmed: 34835831
pii: nano11113067
doi: 10.3390/nano11113067
pmc: PMC8620422
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Russian Foundation for Basic Research
ID : RFI-18-29-19039
Organisme : European Research Council
ID : ERC INFRASUP P-2019-1/871072, CREMLINplus Grant agreement 871072
Pays : International
Organisme : Agence Nationale de la Recherche
ID : ANR-20-CE08-0034

Références

Materials (Basel). 2020 Jul 27;13(15):
pubmed: 32727005
J Phys Condens Matter. 2013 Nov 6;25(44):445001
pubmed: 24055978
J Synchrotron Radiat. 2019 Jan 1;26(Pt 1):272-279
pubmed: 30655495
Nanomaterials (Basel). 2021 Jul 28;11(8):
pubmed: 34443779
J Synchrotron Radiat. 2016 May;23(Pt 3):825-9
pubmed: 27140164
Nat Nanotechnol. 2011 Dec 18;7(1):11-23
pubmed: 22179567
Nanoscale. 2011 Mar;3(3):958-62
pubmed: 21258697
ACS Nano. 2010 Aug 24;4(8):4824-30
pubmed: 20731457

Auteurs

Aleksander Aleksenskii (A)

Laboratory of Physics for Cluster Structures, Ioffe Institute, Polytechnicheskaya Str. 26, 194021 St. Petersburg, Russia.

Marcus Bleuel (M)

National Institute of Standards and Technology Center for Neutron Research, Gaithersburg, MD 20899, USA.
Department of Materials Science and Engineering, University of Maryland, College Park, MD 20742, USA.

Alexei Bosak (A)

European Synchrotron Radiation Facility, 71 av. des Martyrs, F-38042 Grenoble, France.

Alexandra Chumakova (A)

European Synchrotron Radiation Facility, 71 av. des Martyrs, F-38042 Grenoble, France.

Artur Dideikin (A)

Laboratory of Physics for Cluster Structures, Ioffe Institute, Polytechnicheskaya Str. 26, 194021 St. Petersburg, Russia.

Marc Dubois (M)

Institut de Chimie de Clermont-Ferrand (ICCF UME 6296), Université Clermont Auvergne, CNRS, 24 av. Blaise Pascal, F-63178 Aubière, France.

Ekaterina Korobkina (E)

Department of Nuclear Engineering, North Carolina State University, Raleigh, NC 27695, USA.

Egor Lychagin (E)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.
Faculty of Physics, Lomonosov Moscow State University, GSP-1, Leninskie Gory, 119991 Moscow, Russia.
Department of Nuclear Physics, Dubna State University, Universitetskaya 19, 141982 Dubna, Russia.

Alexei Muzychka (A)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.

Grigory Nekhaev (G)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.

Valery Nesvizhevsky (V)

Institut Max von Laue-Paul Langevin, 71 av. des Martyrs, F-38042 Grenoble, France.

Alexander Nezvanov (A)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.

Ralf Schweins (R)

Institut Max von Laue-Paul Langevin, 71 av. des Martyrs, F-38042 Grenoble, France.

Alexander Shvidchenko (A)

Laboratory of Physics for Cluster Structures, Ioffe Institute, Polytechnicheskaya Str. 26, 194021 St. Petersburg, Russia.

Alexander Strelkov (A)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.

Kylyshbek Turlybekuly (K)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.
Faculty of Physics and Technology, L.N. Gumilyov Eurasian National University, Satpayev Str. 2, Nur-Sultan 010000, Kazakhstan.
The Institute of Nuclear Physics, Ministry of Energy of the Republic of Kazakhstan, Ibragimova Str. 1, Almaty 050032, Kazakhstan.

Alexander Vul' (A)

Laboratory of Physics for Cluster Structures, Ioffe Institute, Polytechnicheskaya Str. 26, 194021 St. Petersburg, Russia.

Kirill Zhernenkov (K)

Frank Laboratory of Neutron Physics, Joint Institute for Nuclear Research, 6 Joliot Curie, 141980 Dubna, Russia.
JCNS at Heinz Maier-Leibnitz Zentrum (MLZ), Forshungzentrum Julich GmbH, 1 Lichtenbergstrasse, G-85748 Garching, Germany.

Classifications MeSH