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b SAED pattern of the nanorod.
Inset of (b) shows the SAED pattern of the nanorod.
(a) TEM image of the tip of a typical Sn/TiO2 NR shown in the inset, (b) HRTEM image of edge of the nanorod, where the inset is SAED pattern of the nanorod.
(a) Low-magnification SEM image of Na2- x Mn8O16 nanorods; (b) high-magnification SEM image of Na2- x Mn8O16 nanorods; (c) TEM image of Na2- x Mn8O16 nanorods; (d) TEM image of a single Na2- x Mn8O16 nanorod; (e) HRTEM image of the Na2- x Mn8O16 nanorod, the inset of (e) is the corresponding SAED pattern of the nanorod.
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The ED pattern of the nanorods is shown in Fig. 8 suggests the single crystalline nature of the nanorods and can be indexed to the wurtzite single phase ZnO.
(d) The corresponding SAED patterns of the nanorod.
The SAED patterns of the nanorod were shown in Figure6d.
Anyway, the far-field patterns of the nanorod LEDs are well simulated, and the modes coupling in nanocavity and diffracted by PhC are demonstrated.
(a) X-ray diffraction pattern of the TiO2 nanorod array grown on FTO glass.
Figure 6 a andb HRTEM images,c Lattice-resolved HRTEM image, andd SAED pattern of the Ag nanorod synthesized using 1 5 ratio Ag2C2O4and CTAB.
Typical XRD pattern of the Nb2O5 nanorod precursors obtained from the ethanol-water system shown in Figure 1 exhibits diffraction peaks corresponding to the orthorhombic Nb2O5 with lattice constants of a = 3.607 Å and c = 3.925 Å (JCPDS no. 30-0873).
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