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Erschienen in: Measurement Techniques 4/2015

01.07.2015

Dielectric and Magnetic Adsorbers in Adiabatic Calorimeters for Measuring Extremely Small Energy Releases

verfasst von: L. N. Zherikhina, G. N. Izmailov, A. M. Tskhovrebov

Erschienen in: Measurement Techniques | Ausgabe 4/2015

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Abstract

It is shown that a sequence of processes is possible in ferroelectrics, analogous to those which occur when a saturated paramagnetic material is cooled under adiabatic depolarization conditions, and it becomes a ferromagnetic material. The conditions required to construct a dielectric calorimeter with an extremely high sensitivity of 0.04 eV/Hz1/2 are considered.

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Literatur
1.
Zurück zum Zitat V. A. Ryabov, V. A. Tsarev, and A. M. Tskhovrebov, “Searches for particles of Dark Matter,” Usp. Fiz. Nauk, 178, No. 11, 1129–1164 (2008).CrossRef V. A. Ryabov, V. A. Tsarev, and A. M. Tskhovrebov, “Searches for particles of Dark Matter,” Usp. Fiz. Nauk, 178, No. 11, 1129–1164 (2008).CrossRef
2.
Zurück zum Zitat J. Jaeckel, J. Redondo, and A. Ringwald, “Hidden laser communications through matter – An application of meV-scale hidden photons,” EPL, 87, 10010 (2009).ADSCrossRef J. Jaeckel, J. Redondo, and A. Ringwald, “Hidden laser communications through matter – An application of meV-scale hidden photons,” EPL, 87, 10010 (2009).ADSCrossRef
3.
Zurück zum Zitat A. W. Saenz et al., “Telecommunication with neutrino beams,” Science, 198, No. 4314, 295–297 (1977).ADSCrossRef A. W. Saenz et al., “Telecommunication with neutrino beams,” Science, 198, No. 4314, 295–297 (1977).ADSCrossRef
4.
Zurück zum Zitat A. I. Erokhin et al., “Space location receivers in the λ = 10 μm band,” Irreversible Processes in Nature and Technology: Proc. 7th All-Russ. Conf., MGTU im. N. E. Baumana, Moscow (2013), Pt. 3, 51–54. A. I. Erokhin et al., “Space location receivers in the λ = 10 μm band,” Irreversible Processes in Nature and Technology: Proc. 7th All-Russ. Conf., MGTU im. N. E. Baumana, Moscow (2013), Pt. 3, 51–54.
5.
Zurück zum Zitat N. S. Kardashev et al., “RadioAstron – a telescope with dimensions of 300,000 km: fundamental parameters and first results of observations,” Astron. Zh., 90, No. 3, 179–222 (2013). N. S. Kardashev et al., “RadioAstron – a telescope with dimensions of 300,000 km: fundamental parameters and first results of observations,” Astron. Zh., 90, No. 3, 179–222 (2013).
6.
Zurück zum Zitat L. Lasyna et al., “Advanced x-ray detectors for the analysis of materials,” Low Temp. Phys., 93, No. 3/4, 779–784 (1993).ADSCrossRef L. Lasyna et al., “Advanced x-ray detectors for the analysis of materials,” Low Temp. Phys., 93, No. 3/4, 779–784 (1993).ADSCrossRef
7.
Zurück zum Zitat A. I. Golovashkin et al., “A magnetic calorimeter with a SQUID for detecting weak radiations and recording extremely small energy releases,” Kvant. Elektron., 36, 1168 (2006).ADSCrossRef A. I. Golovashkin et al., “A magnetic calorimeter with a SQUID for detecting weak radiations and recording extremely small energy releases,” Kvant. Elektron., 36, 1168 (2006).ADSCrossRef
8.
Zurück zum Zitat A. I. Golovashkin et al., “Magnetic calorimeter for registration of small energy release,” Europ. Phys. J. B, 58, No. 3, 243–249 (2007).ADSCrossRef A. I. Golovashkin et al., “Magnetic calorimeter for registration of small energy release,” Europ. Phys. J. B, 58, No. 3, 243–249 (2007).ADSCrossRef
9.
Zurück zum Zitat A. I. Golovashkin, L. N. Zherikhina, G. V. Kuleshova, et al., “Capabilities of a magnetic adiabatic calorimeter in measurement technology,” Izmer. Tekhn., No. 11, 24–30 (2009); Measur. Techn., 51, No. 11, 1203–1208 (2008). A. I. Golovashkin, L. N. Zherikhina, G. V. Kuleshova, et al., “Capabilities of a magnetic adiabatic calorimeter in measurement technology,” Izmer. Tekhn., No. 11, 24–30 (2009); Measur. Techn., 51, No. 11, 1203–1208 (2008).
10.
Zurück zum Zitat A. I. Golovashkin et al., “Dark Matter particle detection system SQUID – magnetic calorimeter,” Amer. J. Mod. Phys., 2, No. 4, 208–216 (2013).CrossRefMATH A. I. Golovashkin et al., “Dark Matter particle detection system SQUID – magnetic calorimeter,” Amer. J. Mod. Phys., 2, No. 4, 208–216 (2013).CrossRefMATH
11.
Zurück zum Zitat A. I. Golovashkin et al., “A two-channel scheme for recording particles of Dark Matter based on a low-temperature magnetic calorimeter,” Krat. Soobsh. Fizike, No. 10, 35–44 (2007). A. I. Golovashkin et al., “A two-channel scheme for recording particles of Dark Matter based on a low-temperature magnetic calorimeter,” Krat. Soobsh. Fizike, No. 10, 35–44 (2007).
12.
Zurück zum Zitat A. I. Golovashkin, V. G. Elenskii, and K. K. Likharev, The Josephson Effect and Its Application, Nauka, Moscow (1983). A. I. Golovashkin, V. G. Elenskii, and K. K. Likharev, The Josephson Effect and Its Application, Nauka, Moscow (1983).
13.
Zurück zum Zitat J. Clarke and A. I. Braginski, The SQUID Handbook, Wiley-VCH VerlagGmBH&Co, Weinheim (2004). J. Clarke and A. I. Braginski, The SQUID Handbook, Wiley-VCH VerlagGmBH&Co, Weinheim (2004).
14.
Zurück zum Zitat M. Bühler and E. Umlauf, “The noise of the magnetic bolometer,” Low Temp. Phys., 93, No. 3/4, 697–702 (1993).ADSCrossRef M. Bühler and E. Umlauf, “The noise of the magnetic bolometer,” Low Temp. Phys., 93, No. 3/4, 697–702 (1993).ADSCrossRef
15.
Zurück zum Zitat T. Fausch, M. Bühler, and E. Umlauf, “Signal rise time of the magnetic bolometer,” ibid., 703–708. T. Fausch, M. Bühler, and E. Umlauf, “Signal rise time of the magnetic bolometer,” ibid., 703–708.
16.
Zurück zum Zitat V. V. Protopopov and N. D. Ustinov, Infra-Red Laser Location Systems, Voenizdat, Moscow (1987). V. V. Protopopov and N. D. Ustinov, Infra-Red Laser Location Systems, Voenizdat, Moscow (1987).
17.
Zurück zum Zitat T. Mitsui and W. B. Westphal, “Dielectric and x-ray studies of Ca x−Ba1−x TiO3 and Ca x Sr1−x TiO3,” Phys. Rev., 124, 1354 (1961).ADSCrossRef T. Mitsui and W. B. Westphal, “Dielectric and x-ray studies of Ca xBa1−x TiO3 and Ca x Sr1−x TiO3,” Phys. Rev., 124, 1354 (1961).ADSCrossRef
18.
Zurück zum Zitat I. V. Ivanov, “Low-temperature ferroelectrics: dielectric nonlinearity and parametric interaction in the microwave band,” Usp. Fiz. Nauk, 132, 695–698 (1980).CrossRef I. V. Ivanov, “Low-temperature ferroelectrics: dielectric nonlinearity and parametric interaction in the microwave band,” Usp. Fiz. Nauk, 132, 695–698 (1980).CrossRef
19.
Zurück zum Zitat Yu. V. Sinyavskii, “Achievements in the field of constructing electric and magneto-caloric refrigerators,” Cryogenic and Vacuum Machine Building, Ser. KhM-6, TsINTIKhIMNEFTEMASH, Moscow (1988). Yu. V. Sinyavskii, “Achievements in the field of constructing electric and magneto-caloric refrigerators,” Cryogenic and Vacuum Machine Building, Ser. KhM-6, TsINTIKhIMNEFTEMASH, Moscow (1988).
Metadaten
Titel
Dielectric and Magnetic Adsorbers in Adiabatic Calorimeters for Measuring Extremely Small Energy Releases
verfasst von
L. N. Zherikhina
G. N. Izmailov
A. M. Tskhovrebov
Publikationsdatum
01.07.2015
Verlag
Springer US
Erschienen in
Measurement Techniques / Ausgabe 4/2015
Print ISSN: 0543-1972
Elektronische ISSN: 1573-8906
DOI
https://doi.org/10.1007/s11018-015-0730-2

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