Porosity — Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands

Measurement evidence

Porosity

Metal-organic framework-mediated synthesis of LiNi0.5Mn1.5O4: Tuning the Mn3+ content and electrochemical performance by organic ligands · Yin C., Bao Z., Tan H. et al. · Chemical Engineering Journal · 2019 · 408-419

12 measurement groups · 48 results

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

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

BCA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface areaMarked as a best value within this paper871.3Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7e
pore size14.29Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7e
pore volume1.245Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7e

N2 adsorption/desorption; BET; BJH pore volume; tap density

BCA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface areaMarked as a best value within this paper12.9Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volume0.132Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap density1.74Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI inset4.47Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4e

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

DTA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area842.1Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7c
pore size19.8Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7c
pore volumeMarked as a best value within this paper1.766Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7c

N2 adsorption/desorption; BET; BJH pore volume; tap density

DTA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area9.0Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volume0.137Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap density2.01Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI inset6.32Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4c

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

OBA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area361.1Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7d
pore size10.07Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7d
pore volume0.547Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7d

N2 adsorption/desorption; BET; BJH pore volume; tap density

OBA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area7.1Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volume0.148Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap density1.89Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI inset8.64Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4d

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

PTA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area369.7Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7a
pore size12.05Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7a
pore volume0.686Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7a

N2 adsorption/desorption; BET; BJH pore volume; tap density

PTA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area8.1Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volume0.108Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap density2.27Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI inset5.42Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4a

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

PTCDA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area609.3Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7f
pore size8.23Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7f
pore volume0.751Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7f

N2 adsorption/desorption; BET; BJH pore volume; tap density

PTCDA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area9.9Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volumeMarked as a best value within this paper0.235Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap densityMarked as a best value within this paper2.47Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI insetMarked as a best value within this paper9.57Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4f

N2 adsorption/desorption isotherm; BET surface area; pore-size distribution

TCA-Ni-Mn-MOFs · Powder

Supporting Information adsorption-desorption isotherm for prepared Ni-Mn-MOF precursor

Temperature
77
Atmosphere
N2
Context
pristine mixed-metal MOF precursor
Measurement source
5 · Appendix A. Supporting Information · Fig. S7
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area595.6Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7b
pore size10.6Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7b
pore volume0.953Figure Axis
Rounded Reported
5 · Appendix A. Supporting Information · Fig. S7b

N2 adsorption/desorption; BET; BJH pore volume; tap density

TCA-LNMO powder · Powder

BET measured with ASAP 2020 at liquid nitrogen temperature (77 K); isotherms classified as type IV with narrow mesopores 5-10 nm.

Temperature
77
Atmosphere
N2
Geometry
powder sorption
Context
derived LNMO powder
Measurement source
6-7 · 2.2 Materials characterization / 3. Results · Table 1; Fig. S4
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
BET surface area7.0Table
Exact Reported
6 · Table 1 · Table 1
BJH pore volume0.124Text
Exact Reported
7 · 3. Results and discussion · Fig. S4
tap density2.18Table
Exact Reported
6 · Table 1 · Table 1
mesopore diameter range5 to 10 nmText
Range
7 · 3. Results and discussion · Fig. S4
BJH pore size from SI inset6.05Figure Axis
Rounded Reported
3 · Appendix A. Supporting Information · Fig. S4b