A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source

Research output: Contribution to journalJournal articleResearchpeer-review

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A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source. / Villacorta, Felix J.; Bordallo, Heloisa N.; Arai, Masatoshi.

In: Quantum Beam Science, Vol. 5, No. 1, 2, 14.01.2021.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Villacorta, FJ, Bordallo, HN & Arai, M 2021, 'A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source', Quantum Beam Science, vol. 5, no. 1, 2. https://doi.org/10.3390/qubs5010002

APA

Villacorta, F. J., Bordallo, H. N., & Arai, M. (2021). A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source. Quantum Beam Science, 5(1), [2]. https://doi.org/10.3390/qubs5010002

Vancouver

Villacorta FJ, Bordallo HN, Arai M. A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source. Quantum Beam Science. 2021 Jan 14;5(1). 2. https://doi.org/10.3390/qubs5010002

Author

Villacorta, Felix J. ; Bordallo, Heloisa N. ; Arai, Masatoshi. / A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source. In: Quantum Beam Science. 2021 ; Vol. 5, No. 1.

Bibtex

@article{caba0611071e4866b421011867fee3c7,
title = "A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source",
abstract = "The fixed-energy window scan approach, for both elastic and inelastic modes, is a valuable tool to discriminate between motions activated when dynamical phase transitions occur in a sample as a function of time, temperature, pressure, electrical field or illumination. Considering that, on one hand, such variations can generate a weak signal, and on the other, high data throughput makes it possible to screen many samples during a beam time, pulse multiplication is an ideal strategy to optimize the intensity of the analyzed signal. To ensure this capability, a proposal for a future upgrade of MIRACLES, the neutron time-of-flight backscattering spectrometer at the European Spallation Source (ESS) under construction in Lund, is reported in this article. The concept for a new chopper layout relies on the extraction of several elastic pulses, ensuring an increase in the neutron total elastic intensity hitting the sample. This proposal can be extended to the inelastic counterpart. The premise is to maintain the original beamline layout without modification, either of the guide sections or of the current chopper layout of MIRACLES, thereby guaranteeing that minimal changes and impact will occur during the proposed upgrade. However, this also presents a significant challenge, namely, to achieve an efficient pulse multiplication within the width and the length of the guide and within the rising/decay time of the pulses. With the concept presented here, an increase in elastic intensity by a factor of 2.8 was obtained. This is analogous to performing elastic fixed window (EFW) measurements with an ESS source operating at 14 MW, widening considerably the performance capabilities of MIRACLES. The knowledge generated here is also valuable for the design of scientific instruments for the next generation of low-energy, accelerator-driven neutron sources.",
keywords = "neutron instrumentation, inelastic neutron scattering, fixed-energy window scan, neutron time of flight, pulse multiplication",
author = "Villacorta, {Felix J.} and Bordallo, {Heloisa N.} and Masatoshi Arai",
year = "2021",
month = jan,
day = "14",
doi = "10.3390/qubs5010002",
language = "English",
volume = "5",
journal = "Quantum Beam Science",
issn = "2412-382X",
publisher = "MDPI",
number = "1",

}

RIS

TY - JOUR

T1 - A Pulse-Multiplication Proposal for MIRACLES, the Neutron TOF-Backscattering Instrument at the European Spallation Source

AU - Villacorta, Felix J.

AU - Bordallo, Heloisa N.

AU - Arai, Masatoshi

PY - 2021/1/14

Y1 - 2021/1/14

N2 - The fixed-energy window scan approach, for both elastic and inelastic modes, is a valuable tool to discriminate between motions activated when dynamical phase transitions occur in a sample as a function of time, temperature, pressure, electrical field or illumination. Considering that, on one hand, such variations can generate a weak signal, and on the other, high data throughput makes it possible to screen many samples during a beam time, pulse multiplication is an ideal strategy to optimize the intensity of the analyzed signal. To ensure this capability, a proposal for a future upgrade of MIRACLES, the neutron time-of-flight backscattering spectrometer at the European Spallation Source (ESS) under construction in Lund, is reported in this article. The concept for a new chopper layout relies on the extraction of several elastic pulses, ensuring an increase in the neutron total elastic intensity hitting the sample. This proposal can be extended to the inelastic counterpart. The premise is to maintain the original beamline layout without modification, either of the guide sections or of the current chopper layout of MIRACLES, thereby guaranteeing that minimal changes and impact will occur during the proposed upgrade. However, this also presents a significant challenge, namely, to achieve an efficient pulse multiplication within the width and the length of the guide and within the rising/decay time of the pulses. With the concept presented here, an increase in elastic intensity by a factor of 2.8 was obtained. This is analogous to performing elastic fixed window (EFW) measurements with an ESS source operating at 14 MW, widening considerably the performance capabilities of MIRACLES. The knowledge generated here is also valuable for the design of scientific instruments for the next generation of low-energy, accelerator-driven neutron sources.

AB - The fixed-energy window scan approach, for both elastic and inelastic modes, is a valuable tool to discriminate between motions activated when dynamical phase transitions occur in a sample as a function of time, temperature, pressure, electrical field or illumination. Considering that, on one hand, such variations can generate a weak signal, and on the other, high data throughput makes it possible to screen many samples during a beam time, pulse multiplication is an ideal strategy to optimize the intensity of the analyzed signal. To ensure this capability, a proposal for a future upgrade of MIRACLES, the neutron time-of-flight backscattering spectrometer at the European Spallation Source (ESS) under construction in Lund, is reported in this article. The concept for a new chopper layout relies on the extraction of several elastic pulses, ensuring an increase in the neutron total elastic intensity hitting the sample. This proposal can be extended to the inelastic counterpart. The premise is to maintain the original beamline layout without modification, either of the guide sections or of the current chopper layout of MIRACLES, thereby guaranteeing that minimal changes and impact will occur during the proposed upgrade. However, this also presents a significant challenge, namely, to achieve an efficient pulse multiplication within the width and the length of the guide and within the rising/decay time of the pulses. With the concept presented here, an increase in elastic intensity by a factor of 2.8 was obtained. This is analogous to performing elastic fixed window (EFW) measurements with an ESS source operating at 14 MW, widening considerably the performance capabilities of MIRACLES. The knowledge generated here is also valuable for the design of scientific instruments for the next generation of low-energy, accelerator-driven neutron sources.

KW - neutron instrumentation

KW - inelastic neutron scattering

KW - fixed-energy window scan

KW - neutron time of flight

KW - pulse multiplication

U2 - 10.3390/qubs5010002

DO - 10.3390/qubs5010002

M3 - Journal article

VL - 5

JO - Quantum Beam Science

JF - Quantum Beam Science

SN - 2412-382X

IS - 1

M1 - 2

ER -

ID: 260296092