Large Time Projection Chambers for Rare Event Detection

Large Time Projection Chambers for Rare Event Detection
Title Large Time Projection Chambers for Rare Event Detection PDF eBook
Author
Publisher
Pages 5
Release 2009
Genre
ISBN

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The Time Projection Chamber (TPC) concept [add ref to TPC section] has been applied to many projects outside of particle physics and the accelerator based experiments where it was initially developed. TPCs in non-accelerator particle physics experiments are principally focused on rare event detection (e.g. neutrino and darkmater experiments) and the physics of these experiments can place dramatically different constraints on the TPC design (only extensions to the traditional TPCs are discussed here). The drift gas, or liquid, is usually the target or matter under observation and due to very low signal rates a TPC with the largest active mass is desired. The large mass complicates particle tracking of short and sometimes very low energy particles. Other special design issues include, efficient light collection, background rejection, internal triggering and optimal energy resolution. Backgrounds from gamma-rays and neutrons are significant design issues in the construction of these TPCs. They are generally placed deep underground to shield from cosmogenic particles and surrounded with shielding to reduce radiation from the local surroundings. The construction materials have to be carefully screened for radiopurity as they are in close contact with the active mass and can be a signification source of background events. The TPC excels in reducing this internal background because the mass inside the fieldcage forms one monolithic volume from which fiducial cuts can be made ex post facto to isolate quiet drift mass, and can be circulated and purified to a very high level. Self shielding in these large mass systems can be significant and the effect improves with density. The liquid phase TPC can obtain a high density at low pressure which results in very good self-shielding and compact installation with a lightweight containment. The down sides are the need for cryogenics, slower charge drift, tracks shorter than the typical electron diffusion, lower energy resolution (e.g. xenon) and limited charge readout options. Slower charge drift requires long electron lifetimes placing strict limits on the oxygen and other impurities with high electron affinity. A significant variation of the liquid phase TPC, that improves the charge readout, is the dual-phase TPC where a gas phase layer is formed above the liquid into which the drifting electrons are extracted and amplified, typically with electroluminescence. The successful transfer of electrons through the phase boundary requires careful control of its position and setting up an appropriate electric field. A high pressure gas phase TPC has no cryogenics and density is easily optimized for the signal, but a large heavy pressure vessel is required. Although shelf shielding is reduced, it can in some cases approach that of the liquid phase; in xenon at 50atm the density is about half that of water or about 1/6 of liquid xenon. A significant feature of high pressure xenon gas is the energy resolution. Below a density of about 0.5g/cc the intrinsic resolution is only a few times that of high purity germanium. A neutrino-less double beta decay (0[nu]2[beta]) TPC operated below this density limit could enjoy excellent energy resolution and maintain particle tracking for background rejection. An observable interaction with the TPC results in a charged particle that travels in the drift matter exciting and ionizing the atoms until the initial energy is converted into ionization, scintillation, or heat with relatively large fluctuations around a mean distribution. Rare event TPCs can be designed to detect scintillation light as well as charge to exploit the anti-correlation to improve energy resolution and/or signal to noise. An electric drift field separates the electrons and positive ions from the ionization although the separation is not complete and some electrons are captured, exciting atoms and releasing more light than the primary excitation alone. The average partition between the scintillation and ionization can be manipulated to increase the ionization (at a loss of scintillation) by a number of methods such as, increasing the strength of the electric field up to a saturation of the ionization yield, increasing the temperature to enhance the diffusion of the ionized electrons, and adding dopants such as triethylamine that can be photoionized by the scintillation photons releasing more ionization. Scintillation light is typically collected with photomultiplier tubes (PMTs) and avalanche photo diodes (APDs) although any fast (compared to the ionization drift speed) light collector capable of detecting the typically UV photons, maintaining high radiopurity and perhaps withstanding pressure would work. CCDs are slow and therefore only record 2 dimensions integrating over the time direction, some of which can be recovered with a few PMTs.

Studies with a Liquid Argon Time Projection Chamber

Studies with a Liquid Argon Time Projection Chamber
Title Studies with a Liquid Argon Time Projection Chamber PDF eBook
Author Michael Schenk
Publisher Springer
Pages 158
Release 2015-04-02
Genre Science
ISBN 3658094303

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Michael Schenk evaluates new technologies and methods, such as cryogenic read-out electronics and a UV laser system, developed to optimise the performance of large liquid argon time projection chambers (LArTPC). Amongst others, the author studies the uniformity of the electric field produced by a Greinacher high-voltage generator operating at cryogenic temperatures, measures the linear energy transfer (LET) of muons and the longitudinal diffusion coefficient of electrons in liquid argon. The results are obtained by analysing events induced by cosmic-ray muons and UV laser beams. The studies are carried out with ARGONTUBE, a prototype LArTPC in operation at the University of Bern, Switzerland, designed to investigate the feasibility of drift distances of up to five metres for electrons in liquid argon.

Non-accelerator Particle Astrophysics - Proceedings Of The 4th School

Non-accelerator Particle Astrophysics - Proceedings Of The 4th School
Title Non-accelerator Particle Astrophysics - Proceedings Of The 4th School PDF eBook
Author Giorgio Giacomelli
Publisher World Scientific
Pages 554
Release 1996-07-13
Genre
ISBN 9814547778

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The volume presents a broad coverage of this timely subject. The work is up-to-date and detailed enough to constitute a fine reference for experimental as well as for theoretical physicists, but also maintains an informative pedagogical tone so that it can serve as the basis for a modern course on the subject.Major sections include fundamentals of particle physics with results from accelerator experiments, the particle-cosmology interface, neutrino physics, large scale searches for proton decay and for exotic matter in the universe, neutrino astronomy, the physics of cosmic rays and gamma ray astronomy. A portion of the volume deals with facilities and instrumentation for particle astrophysics and on data acquisition.

Non-accelerator Particle Astrophysics

Non-accelerator Particle Astrophysics
Title Non-accelerator Particle Astrophysics PDF eBook
Author Giorgio Giacomelli
Publisher World Scientific
Pages 554
Release 1996
Genre Nuclear astrophysics
ISBN 981453112X

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Topics In Electroweak Physics - Proceedings Of The Eleventh Lake Louise Winter Institute

Topics In Electroweak Physics - Proceedings Of The Eleventh Lake Louise Winter Institute
Title Topics In Electroweak Physics - Proceedings Of The Eleventh Lake Louise Winter Institute PDF eBook
Author Alan Astbury
Publisher World Scientific
Pages 618
Release 1997-04-01
Genre Electronic books
ISBN 9814546488

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The week-long Lake Louise Winter Institute starts with three days of pedagogical lectures by invited speakers, and the remainder of the time is for short presentations on current research topics. This year, the theme of the Institute was 'Topics in Electroweak Physics'. The invited lecturers were Drs E G Adelberger, G Altarelli, J Ellis, J-M Poutissou, B Sadoulet and S Wojcicki.

Micro-pattern Gaseous Detectors: Principles Of Operation And Applications

Micro-pattern Gaseous Detectors: Principles Of Operation And Applications
Title Micro-pattern Gaseous Detectors: Principles Of Operation And Applications PDF eBook
Author Fabio Sauli
Publisher World Scientific
Pages 364
Release 2020-11-25
Genre Science
ISBN 9811222231

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As a continuation of the author's earlier work (Gaseous Radiation Detectors: Fundamental and Applications, Cambridge University Press 2014), this book describes in detail the recent developments and applications of advanced micro-pattern gaseous devices. Across different chapters, readers will learn of the most basic observations, measurements and applications of this novel technology within particle physics, astrophysics, medicine, cultural heritage studies and more. The content is based richly on a pool of information distilled from a large number of papers and reports on the subject, as well as presentations at topical Conferences and Symposia.The author, Fabio Sauli, is an expert with several hundreds of publications in the field. He is also the inventor of one of the major technologies described — the Gas Electron Multiplier — widely used in particle physics and other applied fields.

Energy and Water Development Appropriations for 1984: Department of Energy FY 1984 budget justifications

Energy and Water Development Appropriations for 1984: Department of Energy FY 1984 budget justifications
Title Energy and Water Development Appropriations for 1984: Department of Energy FY 1984 budget justifications PDF eBook
Author United States. Congress. House. Committee on Appropriations. Subcommittee on Energy and Water Development
Publisher
Pages 1626
Release 1983
Genre Power resources
ISBN

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