Microscopy Morphology — Toward Enhancing Performance of Electromagnetic Wave Absorption for Conductive Metal-Organic Frameworks: Nanostructure Engineering or Crystal Morphology Controlling

Measurement evidence

Microscopy Morphology

Toward Enhancing Performance of Electromagnetic Wave Absorption for Conductive Metal-Organic Frameworks: Nanostructure Engineering or Crystal Morphology Controlling · Wang X., Zhang X., He A. et al. · Inorganic Chemistry · 2024 · 6948-6956

3 measurement groups · 3 results

Reported values remain attached to the sample, method, conditions, extraction quality and source location that produced them.

Scanning electron microscopy (SEM), HITACHI S-4800

A-Cu-HHTP nanosheet powder · Nanosheet

SEM images used to determine nanosheet morphology and approximate sheet thickness.

Context
Pristine A-Cu-HHTP powder
Measurement source
3 · 3.1 · Figure 2a
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
A-Cu-HHTP nanosheet thicknessapproximately 53 nmText
Approximate
3 · 3.1 · Figure 2a

Scanning electron microscopy (SEM), HITACHI S-4800

B-Cu-HHTP nanorod powder · Powder

SEM images used to determine nanorod morphology and average diameter.

Context
Pristine B-Cu-HHTP powder
Measurement source
3 · 3.1 · Figure 2b
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
B-Cu-HHTP nanorod average diameteraverage diameter of 141 nmText
Rounded Reported
3 · 3.1 · Figure 2b

Scanning electron microscopy (SEM), HITACHI S-4800

C-Cu-HHTP nanoball powder · Powder

SEM images used to determine nanoball/agglomerated morphology.

Context
Pristine C-Cu-HHTP powder
Measurement source
3 · 3.1 · Figure 2c
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
C-Cu-HHTP agglomerated nanoball morphologysmaller nanoball particles aggregate into larger nanoball particlesText
Qualitative
3 · 3.1 · Figure 2c