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The porosity, pore size and density of the materials were characterized using Mercury Intrusion Porosimetry and Helium Pyncnometer technique, while the structure and chemistry of the materials were elucidated via X-ray diffraction (XRD), environmental scanning electron microscopy (ESEM) and energy dispersive X-ray spectroscopy (EDX).
The structures of the new compounds were elucidated via extensive spectroscopic methods, including NMR and HRMS spectroscopic analyses.
The chemical structures of compounds (22a c) were elucidated via elemental analysis, spectral data and alternative synthesis.
The underlying trends in DC phenotype in relation to conjugate properties were elucidated via multivariate general linear models.
The observed stable crack growth behavior was then related to crack/microstructure interactions that were elucidated via scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDS).
The mechanism behind the high OCV and the corresponding high peak power density were elucidated via separating the polarization processes and the corresponding characteristic frequencies, especially those for oxygen ion diffusion through the interlayer at the anode/electrolyte interface.
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At the same time, the coordination form between ligand and Cu2+ is elucidated via crystal structure.
The photocatalytic mechanism was elucidated via active species trapping experiments and electron spin resonance.
The micromechanisms of fatigue crack growth in the near-threshold and Paris regimes are elucidated via crack tip transmission electron microscopy (TEM) and scanning electron microscopy (SEM).
The underlying fundamental mechanisms governing the compressive and fatigue behavior of the graded cellular structures are elucidated via in situ tomography experiments and digital volume correlation analyses.
The effects of the structural modifications are elucidated via studies of the electronic absorption and emission spectra, fluorescence and triplet state lifetimes and quantum yields, as well as quantum yields of singlet oxygen generation.
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