Zero-field electron magnetic resonance spectra of copper carboxylates

被引:5
|
作者
Delfs, CD
Bramley, R
机构
[1] Research School of Chemistry, Australian National University, Canberra, ACT 2601
来源
JOURNAL OF CHEMICAL PHYSICS | 1997年 / 107卷 / 21期
关键词
D O I
10.1063/1.475315
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The design of a new zero-field electron magnetic resonance spectrometer including cryogenic capabilities and a new tuning mechanism for sweeping over approximately two octaves is described, The tuning mechanism is based on a one-loop, two-gap resonator mounted on quartz rods in such a manner that rotating the rods changes the width of the gap and the resonant frequency of the resonator, The spectrometer was used to measure the zero-field emr spectra of several copper carboxylate dimers at 90 K and 70 K. The parallel hyperfine structure was well resolved in all of the spectra and this allowed accurate determination of D, E, and A(parallel to). A(perpendicular to) was found to be poorly defined in general and least square refinements attached large errors to this term in the spin Hamiltonian. The zero-field terms in the spin Hamiltonian at 90 K were determined to be D=9.828 GHz, E=83 MH2, A(parallel to)=217 MHz for [Cu(CH3CO2)(2)(CO(NH2)(2))](2) . 2H(2)O; D=9,985 GHz, E = 43 MHz, A(parallel to) = 221 MHz for [Cu(C2H5CO2)(2) (H2O)](2); D= 10.107 GHz, E = 49 MHz, A(parallel to) = 218 MHz for [Cu(C2H5CO2)(2)(CO(NH2)(2))](2); D=9.979 GHz, E = 192 MHz, (parallel to) = 223 MHz for [Cu(C6H5CO2)(2)(C6M5CO2H)](2). A model which assumes A(perpendicular to)=0 is discussed in detail as it was found that all of the features observed in the spectra could be interpreted using simple explicit expressions derived from the model. (C) 1997 American Institute of Physics.
引用
收藏
页码:8840 / 8847
页数:8
相关论文
共 50 条
  • [21] Zero-field nuclear magnetic resonance of chemically exchanging systems
    Barskiy, Danila A.
    Taylen, Michael C. D.
    Marco-Rius, Irene
    Kurhanewicz, John
    Vigneron, Daniel B.
    Cikrikci, Sevil
    Aydogdu, Ayca
    Reh, Moritz
    Pravdivtsev, Andrey N.
    Hoevener, Jan-Bernd
    Blanchard, John W.
    Wu, Teng
    Budker, Dmitry
    Pines, Alexander
    NATURE COMMUNICATIONS, 2019, 10 (1)
  • [22] Parahydrogen-enhanced zero-field nuclear magnetic resonance
    Theis T.
    Ganssle P.
    Kervern G.
    Knappe S.
    Kitching J.
    Ledbetter M.P.
    Budker D.
    Pines A.
    Nature Physics, 2011, 7 (7) : 571 - 575
  • [23] ZERO-FIELD NMR - CALCULATION OF SPECTRA
    HENNEL, JW
    BIRCZYNSKI, A
    SAGNOWSKI, SF
    STACHUROWA, M
    ZEITSCHRIFT FUR PHYSIK B-CONDENSED MATTER, 1984, 56 (02): : 133 - 138
  • [24] Zero-field nuclear magnetic resonance in high field by modulated rf sequences
    Nishiyama, Yusuke
    Yamazaki, Toshio
    JOURNAL OF CHEMICAL PHYSICS, 2007, 126 (13):
  • [25] Zero-field magnetic resonance of cobalt ion pairs in ZnO nanocrystals
    Marin, D.
    Tiwari, S. K.
    Bertaina, S.
    Savoyant, A.
    PHYSICAL REVIEW B, 2022, 105 (03)
  • [26] Zero-field nuclear magnetic resonance of ordered RbNiF3
    Stauss, George H.
    PHYSICAL REVIEW B-SOLID STATE, 1970, 2 (09): : 3472 - 3477
  • [27] ZERO-FIELD MANGANESE NUCLEAR MAGNETIC RESONANCE IN ANTIFERROMAGNETIC MANGANESE FLUORIDE
    JONES, ED
    JEFFERTS, KB
    PHYSICAL REVIEW A-GENERAL PHYSICS, 1964, 135 (5A): : 1277 - &
  • [28] Nuclear magnetic resonance at millitesla fields using a zero-field spectrometer
    Tayler, Michael C. D.
    Sjolander, Tobias F.
    Pines, Alexander
    Budker, Dmitry
    JOURNAL OF MAGNETIC RESONANCE, 2016, 270 : 35 - 39
  • [29] Experimental benchmarking of quantum control in zero-field nuclear magnetic resonance
    Jiang, Min
    Wu, Teng
    Blanchard, John W.
    Feng, Guanru
    Peng, Xinhua
    Budker, Dmitry
    SCIENCE ADVANCES, 2018, 4 (06):
  • [30] ZERO-FIELD SPLITTING VERSUS INTERELECTRONIC DISTANCE IN TRIPLET ELECTRON-SPIN-RESONANCE SPECTRA OF LOCALIZED DINITRENES
    MINATO, M
    LAHTI, PM
    JOURNAL OF PHYSICAL ORGANIC CHEMISTRY, 1993, 6 (08) : 483 - 487