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Both characterizations suggest that pure-phase CTZSe NCs are synthesized.
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Systematic characterizations suggest that the as-prepared RGOA is a three-dimensional mesoporous material with functionalized surface.
Systematic catalyst characterizations suggest that ACF-based catalysts remain ultra-microporous after Fe2O3 NPs (∼2 nm) deposition.
Our characterizations suggest that the modification by K+ accelerates the generation of χ-Fe5C2 phase under the reaction conditions.
These fabrication methods and characterizations suggest that hydrothermally synthesized β-Ga2O3 nanorods can be expected to be a promising alternative for photocatalysts in the environmental remediation process.
Materials characterizations suggest that the Bi-NS with a size of 20 30 nm are uniformly distributed in the sponge-like porous carbon network.
Comprehensive characterizations suggest that CNTs@TiO2 nanohybrids exhibit unique properties of CNTs and TiO2 nanoparticles with one-dimensional structure, excellent electrical conductivity, high surface area, and good biocompatibility.
The physicochemical characterizations suggest that pure Ce Fe O solid solution is formed for the samples with relatively low Fe content (x ≤ 0.3).
Characterizations suggest that this resultant CF/CNT-50 electrode material has a good cycling stability with capacitance retention of 96.5% even after 10000 cycles.
The characterizations suggest that combination of the surface chemistry of the MWCNTs with the solvents decides the deposition and the dispersion of the metal nanoparticles.
The characterizations suggest that copper species with content of ≤5 wt.% are located in the mesoporous channels of SBA-15 existing mainly as CuOx clusters and Cu2+ ions, and there exists an interaction between K+ and the copper species.
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