Electrochemistry Application — The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands

Measurement evidence

Electrochemistry Application

The Advent of Electrically Conducting Double-Helical Metal-Organic Frameworks Featuring Butterfly-Shaped Electron-Rich π-Extended Tetrathiafulvalene Ligands · Gordillo M.A., Benavides P.A., Panda D.K. et al. · ACS Applied Materials and Interfaces · 2020 · 12955-12961

3 measurement groups · 8 results

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

Cyclic voltammetry

1 drop-cast thin film on glassy carbon · Thin Film

Pristine dhMOF 1 thin film drop-cast on glassy carbon, vs Ag/AgCl, 0.1 M Bu4NPF6 in MeCN; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Geometry
drop-cast thin film on glassy carbon electrode
Context
pristine framework redox
Measurement source
S-2 · General Materials and Methods · Figure 3; Figure S2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Pristine 1 first anodic peak potential0.50 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3b,c
Pristine 1 second anodic peak potential0.66 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3b,c

Cyclic voltammetry

1a iodine-treated thin film for CV · Thin Film

Iodine-treated 1a vs Ag/AgCl, 0.1 M Bu4NPF6 in MeCN; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Geometry
film/electrode CV; exact construction blocked by missing SI
Context
iodine-treated partially oxidised framework redox
Measurement source
S-2 · General Materials and Methods · Figure 3; Figure S2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Iodine-treated 1a first anodic peak potential0.53 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3b,d
Iodine-treated 1a second anodic peak potential0.74 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3b,d
CV cycling stability of 1 and 1aMultiple CV cycles displayed good agreement among repetitive cyclesText
Qualitative
S-5 · Supporting figures · Figure S2

Cyclic voltammetry

Free ExTTFTB ligand · Model

Free ExTTFTB ligand vs Ag/AgCl in 0.1 M Bu4NPF6/DMF; SI: Princeton Applied Research VersaStat 3-450, glassy carbon working electrode, Ag/AgCl reference, Pt-mesh counter, 0.1 M Bu4NPF6 in MeCN or DMF

Geometry
solution CV
Context
free ligand model
Measurement source
S-2 · General Materials and Methods · Figure 3; Figure S2
PropertyReported valueNormalised valueUncertaintyOrigin and qualitySource
Free ExTTFTB anodic peak potential0.66 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3a
Free ExTTFTB cathodic peak potential0.34 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3a
Free ExTTFTB oxidation midpointEox = 0.50 V vs Ag/AgClText
Exact Reported
3 · Electrochemical Behavior · Figure 3a