The Verwey transition - a topical review

被引:697
作者
Walz, F [1 ]
机构
[1] Max Planck Inst Met Res, D-70569 Stuttgart, Germany
关键词
D O I
10.1088/0953-8984/14/12/203
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
This review encompasses the story of the Verwey transition in magnetite over a period of about 90 years, from its discovery up to the present. Despite this long period of thorough investigation, the intricate multi-particle system Fe3O4 with its various magneto-electronic interactions is not completely understood, as yet-although considerable progress has been achieved, especially during the last two decades. It therefore appeared appropriate to subdivide this retrospect into three eras: (I)from the detection of the effect to the Verwey, model (1913-1947), being followed by a period of: (11) checking, questioning, and Modification of Verwey's original concepts (1947-1979). Owing to prevailing under-estimation of the role of crystal preparation and quality control, this period is also characterized by a series of uncertainties and erroneous statements concerning the reaction order (one or two) and type of the transition (multi-stage or single stage). These latter problems, beyond others, could definitely be solved within era (111) (1979 to the present)-in favour of a first-order, single-stage transition near 125 K-on the basis of experimental and theoretical standards established in the course of a most inspiring conference organized in 1979 by Sir Nevill Mott in Cambridge and solely devoted to the present topic. Regarding the experimental field of further research, the remarkable efficiency of magnetic after-effect (MAE) spectroscopy as a sensitive probe for quality control and investigation of low-temperature (4 K < T < T-V) charge transport mechanisms is pointed out. Under theoretical aspects two concepts, going back to Mott and Ihle-Lorenz, presently appear most promising. Mott's view of the Verwey transition, as corresponding to the phase changing of a Wigner glass (T > T-V) into a Wigner crystal (T < T-V), describes most adequately the various low-temperature mechanisms in Fe3O4 in terms of tunnelling and variable range hopping of small polarons. On the other hand, the well-elaborated Ihle-Lorenz model, assuming a superposition of polaron-band and -hopping conductivity, is in better agreement with the high-temperature data (T-V < T < 600 K).
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页码:R285 / R340
页数:56
相关论文
共 287 条
[11]   EFFECT OF STOICHIOMETRY CHANGES ON ELECTRICAL-PROPERTIES OF MAGNETITE [J].
ARAGON, R ;
RASMUSSEN, RJ ;
SHEPHERD, JP ;
KOENITZER, JW ;
HONIG, JM .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1986, 54-7 :1335-1336
[12]   MEAN-FIELD MODEL OF THE VERWEY TRANSITION IN MAGNETITE [J].
ARAGON, R ;
HONIG, JM .
PHYSICAL REVIEW B, 1988, 37 (01) :209-218
[13]   POLARONS IN CRYSTALLINE AND NON-CRYSTALLINE MATERIALS [J].
AUSTIN, IG ;
MOTT, NF .
ADVANCES IN PHYSICS, 1969, 18 (71) :41-+
[14]   OPTICAL MEASUREMENTS ON MAGNETITE SINGLE CRYSTALS [J].
BALBERG, I ;
PANKOVE, JI .
PHYSICAL REVIEW LETTERS, 1971, 27 (09) :596-&
[15]   THERMODYNAMICS OF FE(II)FE(III) OXIDE SYSTEMS .1. HYDROTHERMAL FE3O4 [J].
BARTEL, JJ ;
WESTRUM, EF ;
HAAS, JL .
JOURNAL OF CHEMICAL THERMODYNAMICS, 1976, 8 (06) :575-581
[16]  
Barth TFW, 1932, Z KRISTALLOGR, V82, P325
[17]   THE LOW TEMPERATURE TRANSFORMATION IN FERRITES [J].
BICKFORD, LR .
REVIEWS OF MODERN PHYSICS, 1953, 25 (01) :75-79
[18]   FERROMAGNETIC RESONANCE ABSORPTION IN MAGNETITE SINGLE CRYSTALS [J].
BICKFORD, LR .
PHYSICAL REVIEW, 1950, 78 (04) :449-457
[19]  
Blythe HJ, 2000, PHYS STATUS SOLIDI A, V181, P233, DOI 10.1002/1521-396X(200010)181:2<233::AID-PSSA233>3.0.CO
[20]  
2-8