Electrochemistry Application — Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks

Measurement evidence

Electrochemistry Application

Effects of intervalence charge transfer interaction between π-stacked mixed valent tetrathiafulvalene ligands on the electrical conductivity of 3D metal-organic frameworks · Zhang S., Panda D.K., Yadav A. et al. · Chemical Science · 2021 · 13379-13391

8 measurement groups · 16 results

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

solid-state cyclic voltammetry

Cs-MOF 4 · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~170 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~550 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4

solid-state cyclic voltammetry

K-MOF 2 · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~200 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~600 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4

solid-state cyclic voltammetry

K-MOF 2-ox · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~200 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~600 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4

solution-phase cyclic voltammetry

TTFTC-H4 ligand · Powder

0.2 mM ligand in 0.1 M TBAPF6/MeCN; glassy carbon working, Ag/AgCl reference, Pt counter electrode.

Geometry
solution CV
Context
molecular ligand control
Measurement source
S2/S8 · General Materials and Methods · Fig. S6
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first oxidation potential580 mVText
Rounded Reported
13384 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. S6
second oxidation potential980 mVText
Rounded Reported
13384 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. S6

solution-phase cyclic voltammetry

TTFTC-Me4 ligand · Powder

0.2 mM ligand in 0.1 M TBAPF6/MeCN; glassy carbon working, Ag/AgCl reference, Pt counter electrode.

Geometry
solution CV
Context
molecular ligand control
Measurement source
S2/S8 · General Materials and Methods · Fig. S6
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first oxidation potential880 mVText
Rounded Reported
13384 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. S6
second oxidation potential1180 mVText
Rounded Reported
13384 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. S6

solid-state cyclic voltammetry

Na-MOF 1-ox · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~200 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~620 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4

solid-state cyclic voltammetry

Rb-MOF 3 · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~170 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~550 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4

solid-state cyclic voltammetry

Rb-MOF 3-ox · Powder

MOF suspension drop-cast on Pt-disc working electrode; 0.1 M TBAPF6/MeCN; Ag/AgCl reference, Pt counter electrode.

Geometry
drop-cast MOF thin film on Pt-disc electrode
Context
pristine framework sample state
Measurement source
S2 · General Materials and Methods
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
first anodic oxidation peak~170 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4
second anodic oxidation peak~550 mV vs Ag/AgClText
Approximate
13385 · Electrochemical behavior of TTFTC ligand and MOFs · Fig. 4