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Ab initio investigations of magnetic properties of ultrathin transition ...

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52 4 Collinear magnetism <strong>of</strong> 3d-monolayers on Rh substrates<br />

then susceptibility <strong>of</strong> such systems is thus also small or zero because the spin splitting<br />

is saturated so that an additional field cannot cause an significant additional <strong>magnetic</strong><br />

moment[118]. The <strong>magnetic</strong> moments <strong>of</strong> Ti, V, and Cr monolayers show a pronounced<br />

dependence on the substrate: Ti is <strong>magnetic</strong> on Ag, but non<strong>magnetic</strong> on Pd; the <strong>magnetic</strong><br />

moment <strong>of</strong> V is reduced by more than 1.5 μB when changing the substrate from Ag to<br />

Pd; and for Cr the <strong>magnetic</strong> moment changes, in the FM (AFM) configuration, from 3.78<br />

(3.47) μB on Ag to 3.87 (3.46) μB on Pd.<br />

Magnetic moment [μ Β ]<br />

5.0<br />

4.0<br />

3.0<br />

2.0<br />

1.0<br />

0.0<br />

Ag(001)<br />

Pd(001)<br />

Rh(111)<br />

Rh(001)<br />

AFM<br />

FM<br />

AFM<br />

1 ML 3d on<br />

Ag(001) Ag(100)<br />

Pd(001) Pd(100)<br />

V Cr Mn Fe Co Ni<br />

Figure 4.1: Local <strong>magnetic</strong> moments <strong>of</strong> 3d monolayers on Ag(001) and Pd(001) calculated<br />

for the p(1×1) ferro- (solid symbols connected by solid line) and the c(2×2) antiferro<strong>magnetic</strong><br />

configuration (open symbols connected by dashed line)[3, 5].<br />

Later on, it was experimentally found that Fe has a c(2×2)-AFM ground state on W(001)[11],<br />

which was theoretically predicted[8, 9, 10]. A theoretical study to predict the <strong>magnetic</strong><br />

ground state <strong>of</strong> 3d-<strong>transition</strong> metals on W(001) substrate followed this finding[7]. The<br />

<strong>magnetic</strong> ground state was predicted to be ferro<strong>magnetic</strong> for V, Cr and Mn while Fe, Co<br />

and Ni prefer the c(2×2)-AFM order on W(001) substrate. This trend is opposite trend<br />

from what Blügel found in the case <strong>of</strong> Ag or Pd substrate as shown in figure 4.2. The<br />

3d monolayers on W(110)[119] show the same behavior as on noble metal substrates, this<br />

clearly gives evidence that results on W(001) are an effect <strong>of</strong> hybridization with the open<br />

(001) surface.<br />

The reason <strong>of</strong> this opposite trend can be explained as following: In case <strong>of</strong> strong overlayersubstrate<br />

hybridization, the coordination number, symmetry and interlayer distance is<br />

decisive in the determination <strong>of</strong> the <strong>magnetic</strong> <strong>properties</strong> <strong>of</strong> the system. On the other hand<br />

there is a difference between a bcc (001) substrate such as W and fcc (001) substrate as<br />

Ag. For a bcc substrate each 3d-<strong>transition</strong> metal atom has only four nearest W atoms<br />

at the interface, while the surrounding atoms in the overlayer are next nearest neighbors.<br />

In the fcc substrate each 3d-<strong>transition</strong> metal atom has eight nearest neighbors, four 3d

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