Investigating lanthanide dopant distributions in Yttrium Aluminum Garnet (YAG) using solid state paramagnetic NMR

被引:17
作者
McCarty, Ryan J. [1 ]
Stebbins, Jonathan F. [1 ]
机构
[1] Stanford Univ, Dept Geol Sci, Stanford, CA 94305 USA
基金
美国国家科学基金会;
关键词
Laser materials; Fermi contact shift; Al-27; Y-89; SI-29 MAS NMR; NUCLEAR-MAGNETIC-RESONANCE; ORDER-DISORDER; AL-27; SHIFTS; PYROPE; O-17; SUSCEPTIBILITY; SPECTROSCOPY; Y3AL5O12;
D O I
10.1016/j.ssnmr.2016.10.001
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
This paper demonstrates the approach of using paramagnetic effects observed in NMR spectra to investigate the distribution of lanthanide dopant cations in YAG (yttrium aluminum garnet, Y3Al5O12) optical materials, as a complimentary technique to optical spectroscopy and other standard methods of characterization. We investigate the effects of Ce3+, Nd3+, Yb3+, Tm3+, and Tm3+-Cr3+ on Al-27 and Y-89 NMR spectra. We note shifted resonances for both AlO4 and AlO6 sites. In some cases, multiple shifted peaks are observable, and some of these can be empirically assigned to dopant cations in known configurations to the observed nuclides. In many cases, AlO6 peaks shifted by more than one magnetic neighbor can be detected. In general, we observe that the measured intensities of shifted resonances, when spinning sidebands are included, are consistent with predictions from models with dopant cations that are randomly distributed throughout the lattice. In at least one set of Al-27 spectra, we identify two sub-peaks possibly resulting from two paramagnetic cations with magnetically coupled spin states neighboring the observed nucleus. We identify systematic changes in the spectra related to known parameters describing the magnetic effects of lanthanide cations, such as larger shift distances when the expectation value of electron spins is greater. We lastly comment on the promise of this technique in future analyses of laser and other crystalline oxide materials.
引用
收藏
页码:11 / 22
页数:12
相关论文
共 36 条
[1]  
[Anonymous], 2008, Evaluation of measurement data: Guide to the expression of uncertainty in measurement, P120, DOI [10.1373/clinchem.2003.030528, DOI 10.1373/CLINCHEM.2003.030528]
[2]  
Antonov E. V., 1993, Quantum Electronics, V23, P320, DOI 10.1070/QE1993v023n04ABEH003000
[3]  
Belov K. P., 1977, Soviet Physics - Uspekhi, V20, P149, DOI 10.1070/PU1977v020n02ABEH005332
[4]   Magnetic susceptibility in paramagnetic NMR [J].
Bertini, I ;
Luchinat, C ;
Parigi, G .
PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 2002, 40 (03) :249-273
[5]  
Bertini I., 1988, Metal clusters in proteins, P70
[6]   Dynamic Nuclear Polarization NMR of Low-γ Nuclei: Structural Insights into Hydrated Yttrium-Doped BaZrO3 [J].
Blanc, Frederic ;
Sperrin, Luke ;
Lee, Daniel ;
Dervisoglu, Riza ;
Yamazaki, Yoshihiro ;
Haile, Sossina M. ;
De Paepe, Gael ;
Grey, Clare P. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2014, 5 (14) :2431-2436
[7]   27AL AND 89Y NUCLEAR MAGNETIC RESONANCE IN YTTRIUM-ALUMINUM GARNET [J].
BROG, KC ;
JONES, WH ;
VERBER, CM .
PHYSICS LETTERS, 1966, 20 (03) :258-&
[8]   A partial differential equation for pseudocontact shift [J].
Charnock, G. T. P. ;
Kuprov, Ilya .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2014, 16 (37) :20184-20189
[9]   A multi-nuclear multiple-field nuclear magnetic resonance study of the Y2O3-Al2O3 phase diagram [J].
Florian, P ;
Gervais, M ;
Douy, A ;
Massiot, D ;
Coutures, JP .
JOURNAL OF PHYSICAL CHEMISTRY B, 2001, 105 (02) :379-391
[10]   Critical analysis of the limitations of Bleaney's theory of magnetic anisotropy in paramagnetic lanthanide coordination complexes [J].
Funk, Alexander M. ;
Finney, Katie-Louise N. A. ;
Harvey, Peter ;
Kenwright, Alan M. ;
Neil, Emily R. ;
Rogers, Nicola J. ;
Senanayake, P. Kanthi ;
Parker, David .
CHEMICAL SCIENCE, 2015, 6 (03) :1655-1662