Low-frequency method for magnetothermopower and Nernst effect measurements on single crystal samples at low temperatures and high magnetic fields

被引:35
|
作者
Choi, ES
Brooks, JS [1 ]
Qualls, JS
Song, YS
机构
[1] Florida State Univ, Natl High Magnet Field Lab, Tallahassee, FL 32310 USA
[2] Florida State Univ, Dept Phys, Tallahassee, FL 32310 USA
[3] Ewha Womans Univ, Dept Phys, Seoul 120750, South Korea
[4] Univ Houston, Texas Ctr Superconduct, Houston, TX 77204 USA
来源
REVIEW OF SCIENTIFIC INSTRUMENTS | 2001年 / 72卷 / 05期
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.1353192
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
We describe an alternating current method for the measurement of the longitudinal (S-xx) and transverse (S-xy, i.e., Nernst) thermopower of millimeter-size crystal samples at low temperatures (T <1 K) and high magnetic fields (B similar to 30 T). A low-frequency (33 mHz) heating method is used to increase the resolution and to determine the temperature gradient reliably in high magnetic fields. Samples are mounted between two thermal blocks which are heated by a sinusoidal frequency f(0) with a pi /2 phase difference. The phase difference between two heater currents gives a temperature gradient at 2f(0). The corresponding thermopower and Nernst effect signals are extracted by using a digital signal processing method due to the low frequency of the measurement. An important component of the method involves a superconducting link, YBa2Cu3O7+delta, which is mounted in parallel with sample to remove the background magnetothermopower of the lead wires. The method is demonstrated for the quasi-two-dimensional organic conductor alpha-(BEDT-TTF)(2)KHg(SCN)(4), which exhibits a complex, magnetic field dependent ground state above 22.5 T at low temperatures. (C) 2001 American Institute of Physics.
引用
收藏
页码:2392 / 2397
页数:6
相关论文
共 50 条
  • [1] Measurements of magnetic resonance and high-frequency conductivity at low temperatures and high magnetic fields
    Schrama, JM
    Rzepniewski, E
    Ardavan, A
    Edwards, R
    Klehe, AK
    Kornilov, A
    Singleton, J
    TERAHERTZ SPECTROSCOPY AND APPLICATIONS 11, 1999, 3828 : 180 - 193
  • [2] Measurement of low-frequency magnetic fields
    Wolfmayr, Holger
    Ziemann, Peter
    Technische Sicherheit, 2017, 7 (11-12): : 54 - 58
  • [3] Low-frequency electrical and magnetic fields
    Angerer, Manfred
    Eisenbahningenieur, 1997, 48 (09): : 37 - 40
  • [4] THERMAL AND ELECTRICAL RESISTANCE OF A TUNGSTEN SINGLE CRYSTAL AT LOW TEMPERATURES AND IN HIGH MAGNETIC FIELDS
    DENOBEL, J
    PHYSICA, 1949, 15 (5-6): : 532 - 540
  • [5] PROTON POLARIZATION MEASUREMENTS AT HIGH MAGNETIC FIELDS AND LOW TEMPERATURES
    NICHOLAS, DJ
    WILLIAMS, WG
    BANKS, PHT
    CRAGG, DA
    NUCLEAR INSTRUMENTS & METHODS, 1970, 87 (02): : 301 - &
  • [6] Extremely Low-Frequency Magnetic Fields Effects on the Snail Single Neurons
    Partsvania, B.
    Sulaberidze, T.
    Modebadze, Z.
    Shoshiashvili, L.
    ELECTROMAGNETIC BIOLOGY AND MEDICINE, 2008, 27 (04) : 409 - 417
  • [7] A sensor for very low-frequency magnetic fields
    Ejiogu, EC
    Nishiyama, Y
    Kawabata, T
    Tanno, T
    Karasawa, K
    IECON '97 - PROCEEDINGS OF THE 23RD INTERNATIONAL CONFERENCE ON INDUSTRIAL ELECTRONICS, CONTROL, AND INSTRUMENTATION, VOLS. 1-4, 1997, : 1240 - 1243
  • [8] Sensor for very low-frequency magnetic fields
    Ritsumeikan Univ, Shiga-ken, Japan
    IECON Proc, (1240-1243):
  • [9] Measurement and prediction method for low-frequency magnetic fields on railway vehicles
    Kato, Yoshihito
    Hasegawa, Hitoshi
    Quarterly Report of RTRI (Railway Technical Research Institute), 2015, 56 (02) : 137 - 142
  • [10] Calorimetric single particle detection in high magnetic fields at low temperatures
    DeMoor, P
    Camps, J
    Schuurmans, P
    Severijns, N
    Vanderpoorten, W
    VanGeert, A
    Vanhellemont, Y
    Vanneste, L
    Wouters, J
    Coron, N
    Jegoudez, G
    Leblanc, J
    JOURNAL OF APPLIED PHYSICS, 1996, 79 (08) : 3811 - 3815