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(5) No diffraction peak of lanthanum or lanthanum-manganite and lanthanum-cobaltite composites were detected in the diffractograms.
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Additionally, the elemental composition of AgNPs@Tan-ESM composites was detected by EDX (Fig. 2d) where the peak of Ag element was obviously observed, confirming the AgNPs were successfully imported into AgNPs@Tan-ESM composition.
The crystal phase of the CoS2/RGO composites was detected by X-ray diffrastisn, as is presented in Fig. 4.
A higher thermal stability of NR/CSM/BSi composites was detected.
A tendency of increasing particle size with increasing TiO2 content in the composites was detected accordingly to the PSD characterization in the aqueous media.
On the contrary, the low velocity impact tests indicated an opposite dependence on the interface strength, and higher energy absorption in not compatibilized composites was detected.
Cohesive failures within the aged composite were detected only in primed groups.
Mineralogical and morphological changes in the structure of hardened composite were detected by XRD and SEM, respectively.
The element mapping over the desired region of prepared composite was detected by an EDX analysis attached to SEM.
Li4Ti5O12/C nano-particles is synthesized at 800 °C, and investigated by XRD, SEM, TEM and HRTEM, and the carbon in the composite is detected by Raman spectroscopy.
The rGO content of the composite was detected by TGA (Fig. S1), which exhibits a weight loss of approximately 0.4% between 25 and 200 °C, attributed to the loss of absorbed water, and a ~ 24.5% decrease from 200 to 900 °C, corresponding to the oxidation of SnS2, CoS2, and combustion of carbon, in accordance with other metal sulfide/carbon studies [16].
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