Porosity — Bottom-Up Fabrication of 1D Cu-based Conductive Metal–Organic Framework Nanowires as a High-Rate Anode towards Efficient Lithium Storage

Measurement evidence

Porosity

Bottom-Up Fabrication of 1D Cu-based Conductive Metal–Organic Framework Nanowires as a High-Rate Anode towards Efficient Lithium Storage · Guo L., Sun J., Zhang W. et al. · ChemSusChem · 2019 · 5051-5058

1 measurement group · 5 results

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

N2 adsorption/desorption, BET SSA, BJH mesopore distribution, nonlocal DFT micropore distribution

as-obtained Cu-CAT NWs · Powder

Autosorb-IQ/MP surface area analyser; adsorption branch used for BET SSA and pore volume at P/P0 = 0.99.

Atmosphere
N2
Context
pristine Cu-CAT NWs
Measurement source
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BJH average pore sizeapproximately 7.29 nmText
Approximate
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3b
BET specific surface areaMarked as a best value within this paperapproximately 154 m^2 g^-1Text
Approximate
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3
micropore size lower boundapproximately 1.4 nmText
Range
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3b inset
micropore size upper boundMarked as a best value within this paperapproximately 1.8 nmText
Range
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3b inset
maximal pore volume0.28 m^3 g^-1 at P/P0 = 0.99Text
Approximate
main p.3 / article p.5053 · Physicochemical and structural characteristics · Figure 3