rrrr
cfdjZ
μεπε
/2tanh/μ
in
=
(6)
Where Zin is the input impedance of the
absorber, c is the velocity of electromagnetic waves
in free space, f is the frequency and d is the layer
thickness. In Fig. 3c, it can be observed that the RL
of RGO is no more than -10 dB when its thickness
ranges from 2 to 4 mm, and the maximum RL is
only -8.9 dB at the frequency of 9.5 GHz with a
thickness of 2 mm.In Fig. 3d, it can be seen that the
maximum RL of RGO/Fe3O4/Fe3O4 nanorods is -
32.6 dB at 14.4 GHz with absorber thickness of 2.0
mm and the absorption bandwidths exceeding -10
dB are more than 6.8 GHz with a thickness of 2.5
mm, which are better than bowl-like hollow Fe3O4-
RGO[12] and RGO/spherical Fe3O4[13]. In
addition, the maximum RL values obviously shift to
a lower frequency range with increasing the layer
thickness. Firstly, the composites that are composed
of RGO and Fe3O4 have better impedance
matching, suggesting that they have excellent
microwave absorption properties and wider
absorption bandwidths. Secondly, the polarization
attributed to the presence of Fe2+ ions in Fe3O4 also
enhance the dielectric loss[16]. Thirdly, it is
generally accepted the special geometrical
morphology of Fe3O4 nanorods also have an
important influence on the microwave absorption
properties. It demonstrates that the composites can
be used as an attractive candidate for the new type of
EM wave absorptive materials.
4 CONCLUSIONS
In summary, Fe
3
O
4
particles and Fe
3
O
4
nanorods on
RGO had been successfully synthesized. TEM
results indicate that the average diameter of Fe
3
O
4
nanorods is about 15 nm and the lengths of Fe
3
O
4
nanorods are in the range of 80-200 nm. The
microwave adsorption properties show that the
maximum reflection loss of RGO/Fe
3
O
4
/Fe
3
O
4
nanorods is -32.6 dB at 14.4 GHz with absorber
thickness of 2.0 mm and the absorption bandwidths
exceeding -10 dB are more than 6.8 GHz with a
thickness of 2.5 mm. The results indicate that
RGO/Fe
3
O
4
/Fe
3
O
4
nanorods can be used as an
attractive candidate material for microwave
absorption.
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