Low Temperature Vibrating Sample Magnetometr Cryogenic Limited (CRYOGENIC)
CONTACT US
Guarantor:
Viktor Danchuk
Instrument status:
Non Operational, 10.9.2026 11:19, Lost connection between PC and LakeShore 350 controller. In contact with service
Equipment placement:
CEITEC Nano - C1.56
Research group:
CF: CEITEC Nano
Description:
This cryogen-free magnet system (CRYOGENIC), suitable for measuring both electrical and magnetic properties of samples, allows the experimenter to achieve low temperatures 1.6K up to 400K while applying magnetic fields up to 9T to their samples.
The Cryogen-Free High Field Measurement System combines the latest cryogen-free technology with sophisticated measurement techniques providing a versatile, powerful investigative device achieving low temperatures and high magnetic fields without the use of liquid helium or nitrogen. The cryocooler provides the cooling to both the magnet and the variable temperature insert (VTI).
Available for these fields and temperature ranges are the following measurement options:
· DCR (direct current resistivity)
· VSM (vibrating sample magnetometry)
· ACS (alternative current susceptibility)
Publications:
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Pham, N. S.; Huong, N. Q.; Pazourek, P.; Meduna, M.; Caha, O.; Hong, N. H., 2025: . APPLIED PHYSICS A 131(11), doi: 10.1007/s00339-025-09031-7; FULL TEXT
(LYRA, WOOLLAM-VIS, CRYOGENIC, KRATOS-XPS)
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Horký, M., 2025: . PH.D. THESIS , p. 1 - 181; FULL TEXT
(RAITH, MIRA-EBL, LYRA, TEGRAMIN, SUSS-MA8, DEKTAK, NANOCALC, MAGNETRON, EVAPORATOR, RIE-FLUORINE, WIRE-BONDER, MPS150, CRYOGENIC, LAKESHORE, VERSALAB, ICON-SPM, UHV-PREPARATION, TITAN, HELIOS, VERIOS, RIGAKU3, RIGAKU9)
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Martyniuk, O.; Chaudhary, V.; Rhanbouri, MA.; Laguta, O.; Tahsin, M.; Gaskill, DK.; El Fatimy,A .; Neugebauer, P., 2025: Quantum dots array: an approach to multipixel devices. JOURNAL OF PHYSICS D-APPLIED PHYSICS 58(13), doi: 10.1088/1361-6463/adacf8; FULL TEXT
(EVAPORATOR, RAITH, CRYOGENIC, KRATOS-XPS)
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Klimek, J., 2023: . BACHELOR'S THESIS , p. 1 - 32; FULL TEXT
(ICON-SPM, VERSALAB, CRYOGENIC, KRATOS-XPS)
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POLAT, Ö.; HORÁK, M.; ARREGI URIBEETXEBARRIA, J.; BUKVIŠOVÁ, K.; ZLÁMAL, J.; ŠIKOLA, T., 2023: . SURFACES AND INTERFACES 40, doi: 10.1016/j.surfin.2023.103118; FULL TEXT
(MAGNETRON, RIGAKU9, TITAN, HELIOS, CRYOGENIC, LYRA, KRATOS-XPS)
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NEMEC, I.; KOTÁSKOVÁ, L.; HERCHEL, R., 2023: . CRYSTAL GROWTH AND DESIGN 23(3), p. 1323 - 7, doi: 10.1021/acs.cgd.2c01411; FULL TEXT
(CRYOGENIC)
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Ramazanov, S.; Sobola, D.; Gajiev, G.; Orudzhev, F.; Kaspar, P.; Gummetov, A., 2023: . NANOMATERIALS 13(1), doi: 10.3390/nano13010139; FULL TEXT
(WITEC-RAMAN, CRYOGENIC, KRATOS-XPS)
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Havlíček, L., 2022: . PH.D. THESIS , p. 1 - 101; FULL TEXT
(CRYOGENIC, WITEC-RAMAN, KRATOS-XPS)
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MICHAL, L.; ROY, R.; HOLEC, D.; GOMEZ PEREZ, I.; PIZÚROVÁ, N.; NEČAS, D.; DOLEČKOVÁ, A.; MEDALOVÁ, J.; LEPCIO, P.; ZAJÍČKOVÁ, L., 2022: . J PHYS CHEM LETT 13(49), p. 11536 - 7, doi: 10.1021/acs.jpclett.2c02964; FULL TEXT
(FTIR, WITEC-RAMAN, CRYOGENIC, ICON-SPM, KRATOS-XPS)
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POLAT, Ö.; ARREGI URIBEETXEBARRIA, J.; HORÁK, M.; POLČÁK, J.; BUKVIŠOVÁ, K.; ZLÁMAL, J.; ŠIKOLA, T., 2022: . JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS 161, p. 1 - 6, doi: 10.1016/j.jpcs.2021.110447; FULL TEXT
(MAGNETRON, RIGAKU9, TITAN, HELIOS, CRYOGENIC, LYRA, KRATOS-XPS)
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ANTAL, P.; NEMEC, I.; PECHOUŠEK, J.; HERCHEL, R., 2022: . INORGANICS 10(11), doi: 10.3390/inorganics10110199; FULL TEXT
(CRYOGENIC)
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POLAT, Ö.; MOHELSKÝ, I.; ARREGI URIBEETXEBARRIA, J.; HORÁK, M.; POLČÁK, J.; BUKVIŠOVÁ, K.; ZLÁMAL, J.; ŠIKOLA, T., 2022: . MATERIALS RESEARCH BULLETIN 149, p. 111696-1 - 7, doi: 10.1016/j.materresbull.2021.111696; FULL TEXT
(MAGNETRON, RIGAKU9, TITAN, HELIOS, CRYOGENIC, LYRA, KRATOS-XPS)
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HAVLÍČEK, L.; HERCHEL, R.; NEMEC, I.; NEUGEBAUER, P., 2022: . POLYHEDRON 223, doi: 10.1016/j.poly.2022.115962; FULL TEXT
(CRYOGENIC)
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Ramazanov, S.; Sobola, D.; Ţălu, Ş.; Orudzev, F.; Arman, A.; Kaspar, P.; Dallaev, R.; Ramazanov, G., 2021: . MICROSCOPY RESEARCH AND TECHNIQUE , p. 1 - 11, doi: 10.1002/jemt.23996; FULL TEXT
(SIMS, CRYOGENIC, VERIOS, LYRA, KRATOS-XPS)
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PENG, X.; URSO, M.; PUMERA, M., 2021: . SMALL METHODS 5(10), p. 2100617-1 - 9, doi: 10.1002/smtd.202100617; FULL TEXT
(MIRA-STAN, CRYOGENIC)
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ZBONČÁK, M.; ONDREÁŠ, F.; UHLÍŘ, V.; LEPCIO, P.; MICHALIČKA, J.; JANČÁŘ, J., 2020: . POLYMER ENGINEERING AND SCIENCE 60(3), p. 587 - 10, doi: 10.1002/pen.25317; FULL TEXT
(MIRA-STAN, FISCHIONE-TEM-MILL, CRYOGENIC)
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RAMAZANOV, S.; SOBOLA, D.; ORUDZHEV, F.; KNÁPEK, A.; POLČÁK, J.; POTOČEK, M.; KASPAR, P.; DALLAEV, R., 2020: . NANOMATERIALS 10(10), p. 1990-1 - 17, doi: 10.3390/nano10101990; FULL TEXT
(HELIOS, SIMS, CRYOGENIC, KRATOS-XPS)
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Mohelský, I., 2020: . MASTER'S THESIS , p. 1 - 49
(FTIR, WOOLLAM-MIR, MAGNETRON, CRYOGENIC, KRATOS-XPS)
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Jaskowiec, J., 2019: . MASTER'S THESIS , p. 1 - 55
(MAGNETRON, MIRA-EBL, RAITH, CRYOGENIC, VERSALAB, ICON-SPM)
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Rienks, EDL.; Wimmer, S.; Sanchez-Barriga, J.; Caha, O.; Mandal, PS.; Ruzicka, J.; Ney, A.; Steiner, H. ; Albu, M.; Kothleitner, G.; Michalicka, J. ; Khan, SA.; Minar, J.; Ebert, H.; Bauer, G. ; Freyse, F.; Varykhalov, A.; Rader, O. Springholz, G. , 2019: . NATURE 576(7787), p. 423 - 19, doi: 10.1038/s41586-019-1826-7; FULL TEXT
(CRYOGENIC, TITAN, HELIOS, RIGAKU9)
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Hajduček, J., 2019: . BACHELOR'S THESIS , p. 1 - 46
(MAGNETRON, CRYOGENIC, MIRA-EBL, RIE-FLUORINE, EVAPORATOR, VERSALAB, ICON-SPM)
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Friš, P.; Munzar, D.; Caha, O.; Dubroka, A., 2018: . PHYSICAL REVIEW B 97(4), p. 045137-1 - 045137-5, doi: 10.1103/PhysRevB.97.045137
(WOOLLAM-MIR, WOOLLAM-VIS, RIGAKU9, FTIR, CRYOGENIC)
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Motyčková, L., 2018: . BACHELOR'S THESIS , p. 1 - 55
(MAGNETRON, CRYOGENIC, LYRA, ICON-SPM)
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Holobrádek, J., 2017: . BACHELOR'S THESIS , p. 1 - 48
(TITAN, MIRA-EBL, EVAPORATOR, WIRE-BONDER, CRYOGENIC, ICON-SPM)
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Jaskowiec, J., 2017: . BACHELOR'S THESIS , p. 1 - 47
(MAGNETRON, MIRA-EBL, RAITH, CRYOGENIC, LYRA, ICON-SPM)
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Kukolova, A., 2017: . MASTER'S THESIS , p. 1 - 91
(WOOLLAM-MIR, WOOLLAM-VIS, CRYOGENIC)
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