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by
Cui, Fiona Yuwei, author. (orcid)0000-0002-7118-3233
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-field-scanning transmission electron microscopy (HAADF-STEM) was utilized to characterize grain boundary structure and
by
Gordon, Jerard Vincent Alexander, author.
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the WAAM structure. Further scanning electron microscopy (SEM), light optical microscopy (LOM), x
by
Jamadagni, Harsha, author.
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) nanoparticles (NPs) (MgO, TiO2, ZnO) with PCL NFM to create each MO-PCL NFM. The scanning electron microscopy
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Chavez, Andres Cornel, author.
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. Regarding strain effects, the innovative magnetic measurement technique of Scanning Electron Microscopy with
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Rabbi, Md. Fazle, author.
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fracture is observed using digital microscopy and scanning electron microscopy of the fracture surface. It
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Korde, Sarang, author.
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, dispersion of nanoparticles) using wetting angle measurements and scanning electron microscopy. Anti
by
She, Dawei, author.
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composition of precipitation was examined by scanning electron microscopy (SEM). It was further studied by
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Hau, William, author.
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Surface morphology was observed by Atomic Force Microscopy (AFM) and Scanning Electron Microscopy
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Alrefae, Majed A., author.
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film was characterized by Raman spectroscopy, scanning electron microscopy, transmission electron
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Abdelaziz, Mohamed Hassan A., author.
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With respect to the strengthening precipitates, transmission electron microscopy (TEM
by
Han, Meng, author. (orcid)0000-0003-4763-5559
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size of 375 nm, close to the 404 nm grain size uncovered by transmission electron microscopy. The c
by
Liu, Dong, author.
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IMC dealloying) is closely relating to the chloride. Transmission electron microscopy (TEM) reveals





