BISMUTH RARE-EARTH IRON-GARNET COMPOSITION FOR A MAGNETOOPTICAL WHEEL ROTATION RATE SENSOR

被引:7
作者
GUALTIERI, DM [1 ]
EMO, SM [1 ]
KINNEY, TR [1 ]
机构
[1] ALLIED SIGNAL AEROSP,BENDIX ENGINE CONTROLS DIV,SOUTH BEND,IN 46620
关键词
D O I
10.1063/1.347810
中图分类号
O59 [应用物理学];
学科分类号
摘要
A magneto-optical garnet composition has been developed for use in a multimode, two-port, fiberoptic wheel rotation rate sensor for aerospace applications. The sensor utilizes a layer of (Bi, Y, Gd, Tm, Lu, Ca)3 (Fe, Si)5O12 grown on a (111)-oriented substrate of Gd3Ga5O12 by standard liquid-phase-epitaxy techniques. The sensor has an integral biasing magnet and lensless coupling of multimode glasses fibers to a polarizer/garnet/analyzer sandwich. The sensor operates at a signal channel of 725 nm and a reference channel of 850 nm, convenient wavelengths for semiconductor emitters and detectors. The (Bi, Y, Gd, Tm, Lu, Ca)3 (Fe, Si)5O12 layer is grown to 25-mu-m thickness on one side of the substrate. It has a saturation field of 500 Oe, Curie temperature of 530 K, and the following approximate room-temperature optical properties at 725 nm: a Faraday rotation of 15-degrees, an optical attenuation of 5 dB, a specific rotation of 0.65-degrees/mu-m, a specific attenuation of 0.25 dB/mu-m, and a figure of merit of 2.5-degrees/dB. The low figure of merit is a consequence of the strong optical absorption of iron cations in the near infrared, but it is sufficient for this device. Gadolinium and thulium incorporation onto dodecahedral lattice sites serves the dual purpose of reducing the saturation magnetization and reducing the temperature dependence of magnetization. Device operation is specified over a temperature range of -65 to 450-degrees-F (-54 to 232-degrees-C), but layers of slightly higher Curie temperature allow operation to an upper temperature limit of 550-degrees-F (288-degrees-C).
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页码:5978 / 5980
页数:3
相关论文
共 14 条
[1]   SURFACE-TENSION OF BI2O3-BASED FLUXES USED FOR GROWTH OF MAGNETIC GARNET-FILMS [J].
DAVIES, JE .
JOURNAL OF MATERIALS SCIENCE, 1976, 11 (05) :976-979
[2]   GARNET FILM MAGNETIC PROPERTY CONTROL DURING GROWTH AND PROCESSING [J].
DAVIES, JE ;
GALLI, G ;
SUITS, JC .
JOURNAL OF APPLIED PHYSICS, 1978, 49 (03) :1859-1864
[3]  
EMO SM, 1989, Patent No. 4843232
[4]  
Gilleo M.A., 1980, FERROMAGNETIC MAT HD, V2
[5]   MAGNETO-OPTICAL GARNET-FILMS WITH HIGH FARADAY-ROTATION AND CONTROLLED COERCIVITY [J].
GUALTIERI, DM ;
TUMELTY, PF .
JOURNAL OF APPLIED PHYSICS, 1985, 57 (08) :3879-3881
[6]   TEMPERATURE-DEPENDENT MAGNETIC-PROPERTIES OF (Y,SM,LU,TM,CA)3(FE,GE)5O12 EPITAXIAL GARNET-FILMS [J].
GUALTIERI, DM ;
TUMELTY, PF ;
GILLEO, MA .
JOURNAL OF APPLIED PHYSICS, 1979, 50 (11) :7824-7826
[7]   MAGNETIC AND MAGNETO-OPTIC PROPERTIES OF LEAD-SUBSTITUTED AND BISMUTH-SUBSTITUTED YTTRIUM-IRON-GARNET FILMS [J].
HANSEN, P ;
WITTER, K ;
TOLKSDORF, W .
PHYSICAL REVIEW B, 1983, 27 (11) :6608-6625
[8]   GROWTH OF HIGH-QUALITY GARNET THIN FILMS FROM SUPERCOOLED MELTS [J].
LEVINSTE.HJ ;
LICHT, S ;
LANDORF, RW ;
BLANK, SL .
APPLIED PHYSICS LETTERS, 1971, 19 (11) :486-&
[9]  
MATEIKA D, 1984, Patent No. 4454206
[10]   MAGNETIC-PROPERTIES OF BI3FE5O12 GARNET [J].
OKUDA, T ;
KATAYAMA, T ;
KOBAYASHI, H ;
KOBAYASHI, N ;
SATOH, K ;
YAMAMOTO, H .
JOURNAL OF APPLIED PHYSICS, 1990, 67 (09) :4944-4946