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1.
The magnetic structure of tetragonal U2N2Te has been studied by means of neutron diffraction on polycrystalline sample. A ferromagnetic alignment of the magnetic moments below 68 K has been confirmed. The best agreement between the calculated and observed intensities of the magnetic reflections has been obtained for the moment direction forming an angle 70 ± 5° to the tetragonal axis. The magnitude of the uranium ordered moment was found to be 2.50 ± 0.05 μB.  相似文献   

2.
The linear birefringence (LB) of the antiferromagnet (CH2)2(ND3)2MnCl4 has been measured as a function of temperature and in magnetic fields up to 100 kOe. The temperature dependence of the LB points to a pronounced two dimensional magnetic behaviour. No anomaly corresponding to the effect of three dimensional ordering could be detected at TN. In theffield dependent measurements the spin flop at HSF = 33.6 ± 1 kOe (T = 4K) could clearly be detected.  相似文献   

3.
Measurements of magnetization σ in fields up to 14 kOe on four sintered samples of Fe2+-Cr-Ti spinels reveal σ-temperature curves which exhibit in part compensation points (Tco). The magnetic moments are low, indicating non Néel spin configuration. Close to Tco viscose magnetic effects have been detected.  相似文献   

4.
Neutron diffraction studies of polycrystalline PrCo2Si2 and TbCo2Si2 compounds were carried out at 4.2 and 293 K. Both samples have collinear antiferromagnetic order below TN(31(1) and 46(1) K for Pr and Tb compound respectively), with their magnetic moments parallel to the c axis. The ordered magnetic moment values of Pr and Tb at 4.2 K (3.19 and 9.12 μB respectively), are close to the saturation value of the free ions. The corresponding magnetic space group Pl4/mnc (Sh410128) is body-anticentered (k = 111222 refering to Pl cell).  相似文献   

5.
The magnetic structure of the rare earth tetraboride TbB4 (crystallographic space group P4/mbm) has been determined by neutron diffraction on a polycrystalline sample. Below the experimentally determined Néel temperature of TN = (43±1) K TbB4 is ordered antiferromagnetically. The data refinement yielded a magnetic moment value of (7.7 ± 0.2) μB/Tb ion at 4.2 K which we interpret as Tb4+. The magnetic structure is antiferromagnetic collinear with the moments perpendicular to the tetragonal axis.  相似文献   

6.
A correlation between the second critical field Hc2 of the helix to paramagnetic transition and the magnetic specific heat C-peak was found in ZnCr2−xAlxSe4 spinel single crystals with x=0.15, 0.23. The specific heat peak is anomalously sharp for all finite magnetic fields used here and this points to a first order magneto-structural transition (from cubic to tetragonal symmetry). The C(T)-peak is increasingly suppressed as the external field increases. Approaching the Neel temperature TN, a broad ac-magnetic susceptibility peak is observed for zero dc-magnetic field. That peak does not show an energy loss and thus points towards a return to a second order type of transition. The magnetic contribution to the specific heat displays a sharp peak at TN and is maximal at the spin fluctuation temperature Tsf=34 K. Tsf is related to the maximum of the magnetic susceptibility at Tm=40 K (at 50 kOe) in the spin fluctuation region, as evidenced by the entropy exceeding 90% of the entropy calculated classically for the complete alignment of the Cr spins, (2−x)R ln(2S+1). The X-ray photoelectron spectroscopy (XPS) data indicate that Al-substitution does not affect Cr3+ 3d3 electronic configuration.  相似文献   

7.
Neutron diffraction and magnetization study of polycrystalline NdRh2Si2 and ErRh2Si2 was performed in the temperature range from 4.2 to 293 K. Both compounds are of ThCr2Si2 type crystal structure and exhibit antiferromagnetic ordering below TN = 53 K and TN = 12.8 K respectively. The magnetic structure wave vector is τ = [0, 0, 1].  相似文献   

8.
In the isostructural cyanobridged chain compounds N(CH3)4MnIIMIII(CN)6 · 8H2O high spin Mn(II) ions couple antiferromagnetically to low spin Mn(III) of Fe(III) ions. The MnII–MnIII compound orders ferrimagnetically below TN = 28.5 ± 1 K. The tetragonal a and b axes are easy ones for the magnetic moments. In the MnII–FeIII compound antiferromagnetic order occurs below TN = 9.3 K, with spins aligned along the tetragonal c axis. The compound undergoes a meta-magnetic transition from the antiferromagnetic to a ferrimagnetic phase. This occurs at 2 K for a field Hcrit ≈ 1.2 T. The temperature dependence of Hcrit, which vanishes at TN, is followed. The tricritical temperature T1 is ~ 5 K.  相似文献   

9.
The 57Fe Mössbauer effect in conjunction with an external magnetic field Hext has been used to measure the signs of quadrupole coupling constants Δ at the octahedral (a) and tetrahedral (d) iron sites in the Eu3Sc2Fe3O12 garnet. It is shown that application of Hext to the sample at temperatures T above the Néel temperature TN slows down the relaxation effects, whose influence on the spectra depends upon the temperature difference T-TN. By comparing a spectrum measured at 203.0 K and in Hext=62.4 kOe with theoretical spectra computed for different combinations of Δ(a), Δ(d) signs, it is concluded that Δ(d) is negative. The sign of Δ(a) could not be determined.  相似文献   

10.
The alloy systems Mn2?xFexSb and Mn1.98?xCrxFe0.02Sb have been investigated by Mössbauer spectroscopy of 57Fe in the region x? 0.2.In Mn2?xFexSb the spinflop transition known to exist in pure Mn2Sb at Tt = 240 K is observed. At Tt the magnetic hyperfine field H changes from -50 to -80 kOe and the electric quadrupole interaction QS from positive to negative with increasing T. The value of ΔH at Tt can be understood in terms of dipolar contributions to H. Fe is deduced to occupy the MnI sites in the lattice.In Mn1.98?xCrxFe0.02Sb the transition from the ferrimagnetic to the antiferromagnetic state is observed. In the antiferromagneti c state we find | H| ≈ 15 kOe.  相似文献   

11.
The magnetic structure of the tetragonal ErCo2Si2 compound is determined by neutron diffraction on powder sample at 4.2 K. The magnetic ordering is connected with a symmetry lowering, magnetic space group P2s1 (Sh72)k = 000. The structure is collinear antiferromagnetic with the erbium magnetic moments making an angle of 56.2° with the c axis. The magnetic moment value for erbium is 6.75μB.  相似文献   

12.
237Np Mössbauer effect and magnetic susceptibility measurements of the U1?NpxO2 fluorite solid solution have been performed in the composition range 0.15 ? x ? 0.75. For x = 0.15 and 0.25, the Np ions order magnetically at a lower temperature T0 than the bulk material (TN) (T0 ~ 19 K, TN ~ 27 K for x = 0.15). For x = 0.50, T0 ~ 10 K (TN ~ 12 K from recent neutron diffraction measurements). For x = 0.75, T0TN ~ 9 K. The Np (induced) ordered moment is ~ 0.5 μB. The 237Np Mössbauer isomer shift shows that the Np ions are in a IV charge state.  相似文献   

13.
The longitudinal magnetostriction along the [001] axis of MnF2 was measured at temperatures 64 < T < 300 K in magnetic fields, H, up to 130 kOe. This magnetostriction is proportional to H2 at low H, exhibits a λ anomaly near the Néel temperature TN, and shows the field-induced transition from the antiferromagnetic phase to the paramagnetic phase for T just below TN. The results are well described by a model which relates the magnetostriction to the two-spin correlation function.  相似文献   

14.
NdCo9Si2 has been synthesized and studied over the temperature range 4.2 to 500 K and at magnetic fields up to 90 kOe. The material is found to crystallize in the tetragonal BaCd11-type structure, which has four formula units per unit cell. Magnetic studies indicate that NdCo9Si2 is ferromagnetic with Tc=454 K. The Co moment is determined to be 0.9μB at 4.2 K. Magnetization measurements on aligned powders indicate observable anisotropy but because of the anomalous nature of the magnetization versus field measurements, values of the anisotropy field (HA) cannot be reliably determined. HA at 295 K is roughly estimated to be 12 kOe. This material does not seem to offer promise for permanent magnet fabrication.  相似文献   

15.
The heat capacity of the layer compounds tetrachlorobis (n-propylammonium) manganese II and tetrachlorobis (n-propylammonium) cadmium II, (CH3CH2CH2NH3)2MnCl4 and (CH3CH2CH2NH3)2CdCl4 respectively, has been measured over the temperature range 10 K ?T ? 300 K.Two known structural phase transitions were observed for the Mn compound in this temperature region: at T = 112.8 ± 0.1 K (ΔHt= 586 ± 2 J mol?1; ΔSt = 5.47 ± 0.02 J K?1mol?1) and at T =164.3 ± (ΔHt = 496 ± 7 J mol?1; ΔSt =3.29 ± 0.05 J K?1mol?1). The lower transition is known to be from a monoclinic structure to a tetragonal structure, while the upper is from the tetragonal phase to an orthorhombic one. From comparison with the results for the corresponding methyl Mn compound it is deduced that the lower transition primarily involves changes in H-bonding while the upper transition involves motion in the propyl chain.A new structural phase transition was observed in the Cd compound at T= 105.5 ± 0.1 K (ΔHt= 1472.3 ± 0.1 J mol?1; ΔSt = 13.956 ± 0.001 J K?1mol?1), in addition to two transitions that have been observed previously by other techniques. The higher of these transitions(T = 178.7 ± 0.3 K; ΔHt = 982 ± 4 J mol?1 ΔSt = 6.16 ± 0.02 J K? mol?1) is known to be between two orthorhombic structures, while the structural changes at the lower transition (T= 156.8 ± 0.2 K; ΔHt = 598 ± 5 J mol?1, ΔSt = 3.85 ± 0.03 J K?1 mol?1) and at the new transition are not known. It is proposed that these two transitions correspond respectively to the tetragonal to orthorhombic and monoclinic to tetragonal transitions in the propyl Mn compounds.In addition to the structural phase transitions (CH3CH2CH2NH3)2MnCl4 magnetically orders at t? 130 K. The magnetic contribution to the heat capacity is deduced from the heat capacity of the corresponding diamagnetic Cd compound and is of the form expected for a quasi 2-dimensional Heisenberg antiferromagnet.  相似文献   

16.
Using powder neutron diffraction techniques, we have examined the magnetic order of the pseudoternary compound Ho(Rh0.3Ir0.7)4B4 below the Néel temperature TN=2.7K. The magnetic structure consists of stacked antiferromagnetic basal plane sheets forming a body centered tetragonal unit cell, with a sublattice magnetization corresponding to 9.6±0.6μB per Ho3+ion at 1.5 K. Magnetic intensity versus temperature measurements indicate that the transition is second order and reveal no anomalous effects when the compound becomes superconducting at Tc=1.34K.  相似文献   

17.
The temperature dependence of the hyperfine parameters of 57Fe in SrTb2Fe2O7 gave a magnetic ordering temperature TN=542 K, saturation effective magnetic fieldHeff(0)=552 kGand Debye temperature θD=330 K. The princip al axis of the PFG tensorVzzis angled at 9° to the crystallographic c axis. Mössbauer spectra at 4.2 K reveal reorientation of iron spin.  相似文献   

18.
Magnetization measurements have been made on a Sm2Fe14B single crystal in magnetic fields up to 140 kOe. The easy direction of the magnetization lies along [100] in the tetragonal structure P42/mnm. Magnetic anisotropy energies at 290K along [110] and [001] have been estimated to be 5.8×106 and 1.1×108 erg/cm3, respectively, both becoming much larger at lower temperature. No evidence of the spin canting of Nd2Fe14B type is observed even at 4.2K.  相似文献   

19.
The magnetic properties of MnNb2O6 single crystals have been studied in the temperature range 1.6–300 K (TN = 4.4 K), in fields up to 220 kOe. The high field saturation at low temperature, as well as the paramagnetic susceptibility at high temperature, agree well with a 6S52 state for Mn2+ ions. From 1.6 to 3.8 K a spin flop is induced by fields ranging from 17 to 21 kOe, applied in the direction of the a-axis. Elements of the magnetic susceptibility tensors up to rank 12, measured below the spin flop field, are in accordance with a magnetic anisotropy originating mainly from magnetic dipolar interactions.  相似文献   

20.
The sample of FeSc2S4 was prepared by solid reaction method. The crystallographic structure and the magnetic properties of the fabricated compound were investigated by X-ray, and superconducting quantum interference device (SQUID) magnetometer and Mössbauer spectroscopy. The polycrystalline FeSc2S4 confirmed the normal cubic spinel structure (space group Fd3m). The lattice constants a0 and anion parameter u are 10.519 Å and 0.255, respectively. The Mössbauer spectroscopy has been studied for the FeSc2S4 at various temperatures, ranging from 4.2 K to room temperature. The spectra consist of two doublets at 4.2 K while a single line at room temperature. It is noticeable that the Mössbauer spectra of two doublet patterns with large electric quadrupole splitting (ΔEQ) remain over the Néel temperature. Those are interpreted as a result of large electric quadrupole interaction compared to magnetic dipole interaction. The magnetic susceptibility measurements were performed with a SQUID magnetometer for temperatures 2<T<320 K, in external fields up to 5 kOe. Magnetic behavior shows antiferromagnetic behavior and the magnetic superexchange interactions between the Fe ions are weakly antiferromagnetic. The paramagnetic susceptibilities follow Curie–Weiss (CW) law with CW temperature ΘCW=−100 K, and frustration parameter f=−ΘCW/TN is of the order of 1000. We conclude that two sublattices are coupled antiferromagnetically, leading to strong frustration effects.  相似文献   

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