Design for a multifrequency high magnetic field superconducting quantum interference device-detected quantitative electron paramagnetic resonance probe:: Spin-lattice relaxation of cupric sulfate pentahydrate (CuSO4•5H2O)

被引:15
作者
Cage, B [1 ]
Russek, S [1 ]
机构
[1] Natl Inst Stand & Technol, Boulder, CO 80305 USA
关键词
D O I
10.1063/1.1808893
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
We have designed a spectrometer for the quantitative determination of electron paramagnetic resonance (EPR) at high magnetic fields and frequencies. It uses a superconducting quantum interference device (SQUID) for measuring the magnetic moment as a function of the applied magnetic field and microwave frequency. We used powdered 2,2-diphenyl-1-picrylhydrazyl to demonstrate resolution of g-tensor anisotropy to 1 mT in a magnetic field of 3 T with a sensitivity of 10(14) spins per 0.1 mT. We demonstrate multifrequency operation at 95 and 141 GHz. By use of an aligned single crystal of cupric sulfate pentahydrate (chalcanthite) CuSO4.5H(2)O, we show that the spectrometer is capable of EPR line shape analysis from 4 to 200 K with a satisfactory fit to a Lorentzian line shape at 100 K. Below 100 K, we observed line-broadening, g shifts, and spectral splittings, all consistent with a known low-dimensional phase transition. Using SQUID magnetometry and a superconducting magnet, we improve by an order of magnitude the sensitivity and magnetic field range of earlier power saturation studies of CuSO4.5H(2)O. We were able to saturate up to 70% of the magnetic moment with power transfer saturation studies at 95 GHz, 3.3 T, and 4 K and obtained the spin-lattice relaxation time, T-1=1.8 ms, of CuSO4.5H(2)O at 3.3 T and 4 K. We found an inverse linear dependence of T-1, in units of seconds (s) at 3.3 T between 4 and 2.3 K, such that T-1=0.016.K.s.tau(-1)-0.0022.s, where tau is the absolute bath temperature. The quantitative determination of EPR is difficult with standard EPR techniques, especially at high frequencies or fields. Therefore this technique is of considerable value.
引用
收藏
页码:4401 / 4405
页数:5
相关论文
共 29 条
[11]   PARAMAGNETIC-RESONANCE, MAGNETIC-SUSCEPTIBILITY, AND ANTI-FERROMAGNETIC EXCHANGE IN A CR-5+ PARAMAGNET - POTASSIUM PERCHROMATE (K3CRO8) [J].
DALAL, NS ;
MILLAR, JM ;
JAGADEESH, MS ;
SEEHRA, MS .
JOURNAL OF CHEMICAL PHYSICS, 1981, 74 (03) :1916-1923
[12]   PARAMAGNETISM OF CARBAZYL AND HYDRAZYL FREE RADICALS [J].
DUFFY, W ;
STRANDBURG, DL .
JOURNAL OF CHEMICAL PHYSICS, 1967, 46 (02) :456-+
[13]   HIGH-TEMPERATURE SPIN DYNAMICS AS STUDIED BY ELECTRON-PARAMAGNETIC RESONANCE (ELECTRON-PARAMAGNETIC-RES) IN THE QUASI-ONE-DIMENSIONAL HEISENBERG MAGNETIC SYSTEM CUSO4.5H2O [J].
GHARBAGE, S ;
MEKNASSI, OF ;
BISSEY, JC ;
SERVANT, Y .
PHYSICA B & C, 1987, 144 (02) :200-204
[14]  
GOLDFARB RB, 1985, NBS SPEC PUBL
[15]   Ultrawide band multifrequency high-field EMR technique: A methodology for increasing spectroscopic information [J].
Hassan, AK ;
Pardi, LA ;
Krzystek, J ;
Sienkiewicz, A ;
Goy, P ;
Rohrer, M ;
Brunel, LC .
JOURNAL OF MAGNETIC RESONANCE, 2000, 142 (02) :300-312
[16]   A multifrequency-resonator-based system for high-sensitivity high-field EPR investigations of small single crystals [J].
Hill, S ;
Dalal, NS ;
Brooks, JS .
APPLIED MAGNETIC RESONANCE, 1999, 16 (02) :237-245
[17]   Some remarks on reported inconsistencies in the high-field EPR spectrum of DPPH [J].
Kolaczkowski, SV ;
Cardin, JT ;
Budil, DE .
APPLIED MAGNETIC RESONANCE, 1999, 16 (02) :293-298
[18]   Electronic structure of Sn/Si(111)-(√3x√3)R30° as a function of Sn coverage -: art. no. 235332 [J].
Lobo, J ;
Tejeda, A ;
Mugarza, A ;
Michel, EG .
PHYSICAL REVIEW B, 2003, 68 (23)
[19]   1-MM WAVE ELECTRON-SPIN-RESONANCE SPECTROMETER [J].
LYNCH, WB ;
EARLE, KA ;
FREED, JH .
REVIEW OF SCIENTIFIC INSTRUMENTS, 1988, 59 (08) :1345-1351
[20]  
MCELFRESH M, 1994, MPMS APPL NOTES