Porosity — Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks

Measurement evidence

Porosity

Tunneling Electrical Connection to the Interior of Metal-Organic Frameworks · Han S., Warren S.C., Yoon S.M. et al. · Journal of the American Chemical Society · 2015 · 8169-8175

2 measurement groups · 16 results

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

N2 sorption/BET at 77 K and PXRD

Blank MIL-53(Al), Basolite A100 · Powder

Blank MIL-53 and AgNCs@MIL-53 crystals prepared using 0.5 M AgNO3

Temperature
77
Atmosphere
N2 sorption; PXRD ambient/not specified
Geometry
powder/crystals
Context
pristine vs AgNC-loaded MIL-53
Measurement source
18 · Section 10 · Figures S10-S11
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
AgNC@MIL-53 surface area37.3 m2/gText
Exact Reported
6 · Results and Discussion · Figure S10
AgNC occupancy of MIL-53 vacant cavity spaceca. 70% of vacant cavity space occupied by AgNCsText
Approximate
6 · Results and Discussion · Figure 5a
AgNC@MIL-53 FCC Ag (111) PXRD peaksmall peak at 38 degrees corresponds to (111) Bragg reflection of FCC silverCaption
Rounded Reported
S18 · Section 10 · Figure S11
Native MIL-53 surface area124.5 m2/gText
Exact Reported
6 · Results and Discussion · Figure S10
MIL-53 porosity normalised per mass decrease factordecreases by a factor of sevenText
Rounded Reported
S9 · Section 4 · Figure S10
MIL-53 crystallinity after AgNC infiltrationPXRD indicated no significant changes in crystalline natureText
Qualitative
6 · Results and Discussion · Figure S11

N2 sorption/BET at 77 K

Blank Rb-CD-MOF single crystals · Single Crystal

Blank Rb-CD-MOF and AgNC@Rb-CD-MOF prepared with 2, 5 and 10 mM AgNO3

Temperature
77
Atmosphere
N2 sorption
Geometry
not applicable
Context
pristine and AgNC-loaded Rb-CD-MOF series
Measurement source
8 · Section 4 · Figure S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area: blank Rb-CD-MOFMarked as a best value within this paper914 m2/gText
Exact Reported
S8 · Section 4 · Figure S4
BET surface area: AgNC@Rb-CD-MOF high loading632 m2/gText
Exact Reported
S8 · Section 4 · Figure S4
BET surface area: AgNC@Rb-CD-MOF low loading929 m2/gText
Exact Reported
S8 · Section 4 · Figure S4
BET surface area: AgNC@Rb-CD-MOF medium loading746 m2/gText
Exact Reported
S8 · Section 4 · Figure S4
Adsorbed gas volume: blank Rb-CD-MOF290 cm3/gText
Exact Reported
S8 · Section 4 · Figure S4
Adsorbed gas volume: AgNC@Rb-CD-MOF high loading190 cm3/gText
Exact Reported
S8 · Section 4 · Figure S4
Adsorbed gas volume: AgNC@Rb-CD-MOF low loading290 cm3/gText
Exact Reported
S8 · Section 4 · Figure S4
Adsorbed gas volume: AgNC@Rb-CD-MOF medium loading230 cm3/gText
Exact Reported
S8 · Section 4 · Figure S4
High-loading pore volume retained relative to pristine190/290 = 66% of original valueText
Rounded Reported
S9 · Section 4 · Figure S4
High-loading surface area retained relative to pristine632/914 = 69% of original valueText
Rounded Reported
S9 · Section 4 · Figure S4