Infrared absorption on impurity excitations near the upper edge of spin-wave band of the antiferromagnet
Solid State Communications, Vol. 34, pp. 629—633. Pergamon Press Ltd. 1980. Printed in Great Britain. INFRARED ABSORYFION ON IMPURITY EXCITATIONS NEAR...
Solid State Communications, Vol. 34, pp. 629—633. Pergamon Press Ltd. 1980. Printed in Great Britain. INFRARED ABSORYFION ON IMPURITY EXCITATIONS NEAR THE UPPER EDGE OF SPIN-WAVE BAND OF THE ANTIFERROMAGNET M.A. Ivanov and Yu. G. Pogorelov Institute of Metal Physics, Academy of Sciences Ukrainian SSR, Kiev 180, USSR (Received 22 January 1980 by E.A. Kaner) The dependence of infrared (IR) light absorption on external magnetic field is considered when the impurity level approaches the upper edge of spin-wave band of antiferromagnet. It is explained a strongly nonlinear field dependence and rapid decrease of corresponding line intensity been observed experimentally in Fe1~Co0F2.Such behaviour is due to existence of some subthreshold range near the band edge and corresponds to the incoherent collective rearrangement (ICR) of the system spectrum. AN INVESTIGATION of electromagnetic radiation absorption in antiferromagnets with the impurity levels near the spin-wave band edge is of considerable interest now [1—4]. In such a system the band edge ~.)m(H)and impurity level wo(H) may be drawn closer when the external magnetic field H is applied. As a result different kinds frequencies of the spectrum rearrangement are observed in these crossing the vicinity [5]. So far the main attention was given to the case when the impurity level approaches lower band edge corresponding to the uniform precession frequency (AFMR frequency). Thereby the strong increase of intensity of the impurity line (the “burning up”) was observed. Then either this line confluence with the AFMR one [21 or cross splitting of these lines [1—4] occur depending on the ICR or the coherent rearrangement (CR) of spectrum taking place, respectively [61. An interesting experiment [7] concerning IR absorption in the crystal Fe 1_~Co~F2 (impurity concentration c 1%) was carried out recently. The impurity 2~level (~ 85.5 cm’) is located slightly above the Co upper band edge (~78 cm’ [81) in this system. In the fieldH II C 4 (C4 is the antiferromagnetic axis) an essentially nonlinear field dependence of frequency was observed for the line which approaches the band edge. Accordingly the intensity of this line decreased (linearly in the band edge vicinity); that is “burning down” took place instead of “burning up”. An essential difference of an impurity line’s behaviour as compared to [2] is due to the upper edge being inactive optically. Note that analogous “burning down” effect is known for the exciton line in molecular crystals [91. When the frequencies ~,0(H) and ~~m(H) approach themselves the impurity state radius i(H) = av’E(~2/Iwo(H) Wm(H)I)] (a lattice parameter and £2 parameter determined by the band width) increases —
—
—
and may exceed the mean distance between impurities ac’ “s. Then a collective spectrum rearrangement occurs in the close vicinity of wo(H) and Wm(H) crossing so that the single impurity approximation (SIA) fails here. The kind of rearrangement is determined by the relation between c and some 6concentration (m is the characteristic systeminteraction ce,. = ~(m/cz) matrix elementforofthe resonant of impurity and host spin-wave excitation and ~ are some numerical factor). The ICR occurs at c ce,.. The impurity line behaviour far from its crossing with the band edge (when the SIA is true) depends nevertheless essentially on the kind of collective rearrangement taking place in the crossing area. Hence, studying the frequency and the intensity of impurity line in a wide range of fields, a conclusion may be drawn about the kind of rearrangement which have to occur in given sample. Particularly the nonlinear dependence ~0(H) and linear intensity fall would have to to be [7].observed for ICR near the upper band edge similar To describe the impurity level behaviour near the upper band edge we shall use the simplest model considering only the resonant interaction of the upper (from the two split in the field) branch of host spin excitations with that impurity level which frequency decreases with the field increasing (since the impurity ions can substitute both magnetic sublattices there are two impurity levels at H II C4): ~C = ~ [w(k) + pgH] a~ah+ ~ (“.‘o k
—
p,gH)a;a~
P
i +
-~
~ (m e~ a~a~ + h.c.),
V
k,p
—
where 4 is the magnon creation operator and the 629
(1)
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INFRARED ABSORPTION ON IMPURITY EXCITATIONS
Vol. 34, No.8
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Fig. 1. Field dependence of frequency (a) and intensity (b) of impurity line when it approaches the upper band edge in Fe1_~Co~F2. 1. The dots are experimental data of [7], full lines theoretical curves at ~S= 15 cm”, 2j.~gH,. 15.6 cm dispersion law near the upper band edge is w(k) + ~ e~_~”((a~Ia;’)Y~], (2) Wm (47T)2~’3cz(z2(k km)2, p denotes the impurity N~ sites with the spin directed opposite to the field and N is the number of magnetic cells in crystal. The resonant where A is a parameter weakly depending on frequency. interaction constant m is non-zero for oppositely Using the Hamiltonian (1) an expression for a(co) near polarized excitations only if the single ion anisotropy is the upper band edge Wm(H), when 1w j4gHI ~ taken into account [10]. According to the experimental w w(0) pgH £2 and c ~ 1, may be obtained: data for Fei..~Co~F 2 g-factors of impurity and host m were considered to be equal [3, 7] (g 2.2). o(w) = cA 1 + w—w(0)—~gH) The coefficient of absorption of light polarized in the plane I C4 may be written as usual by means of [‘~/2 + Im P(co, 2 + H) [r 2 retarded Green’s functions [11]: [w w0 + pgH Re P(w, H)] 0/2 + Im P(w, H)] a(w) = A Im [<(aaIa~))’~ Here F 0 is an intrinsic width of impurity line, and (3) k 0 P(w, H) is the polarization operator due to impurity— host interaction; the form of P(w, H) depends on the + ~ (e~’(” + e ~ ((ak?, I a~)’°) choice of relevant representation (renormalized or non-renormalized [6]). As c ~ 1 we neglect elsewhere the clusters of neighbouring impurities which do not —