Synthesis evidence

Isonicotinic acid-based copper-MOF: An exotic redox propertied electrode material for high energy asymmetric supercapacitor

Khan J., Iqbal M.Z., Rubab B. et al. · Journal of Energy Storage · 2023 · 108655

4 structured synthesis routes

Completeness describes how fully the route could be reconstructed from the main article and supporting information.

Vague recipeSource: Main

Route 1: Other

2-3 · Fabrication of electrodes and characterizations detail

Solventsnot reported
Additivesnot reported
Atmospherenot reported
Substrate orientationnot reported
Work-upActivated carbon electrode prepared/employed as negative electrode; full fabrication details not separately reported.
Activationnot reported
Show 1 structured reagent record
RoleReagentAmount / concentrationSource
Otheractivated carbon6.50 mg2-3 · Fabrication of electrodes and characterizations detail
Partial recipeSource: Main

Route 2: Drop Cast

2-3 · Fabrication of electrodes and characterizations detail

Metal precursorsCu-MOF active material, 4.00 mg for positive electrode
SolventsNMP solvent
Additives10 wt% acetylene; 10 wt% PVDF binder
Atmospherenot reported
Temperature60
Time6 drying; 6 stirring before coating
Substrate orientation1 cm2 portion of washed nickel foam current collector/substrate
Work-upSlurry stirred for 6 h, coated on nickel foam, then dried for 6 h at 60 C.
Activationnot reported
Scalability contextLab-scale electrode coating over 1 cm2 area; coating method and thickness not reported.
Show 5 structured reagent records
RoleReagentAmount / concentrationSource
Othersynthesized organic webbing / Cu-MOF80 wt%; 4.00 mg for positive electrode2-3 · Fabrication of electrodes and characterizations detail
Additiveacetylene10 wt%2-3 · Fabrication of electrodes and characterizations detail
AdditivePVDF binder10 wt%2-3 · Fabrication of electrodes and characterizations detail
SolventNMPnot reported2-3 · Fabrication of electrodes and characterizations detail
Othernickel foam1 cm2 coated portion2-3 · Fabrication of electrodes and characterizations detail
Partial recipeSource: Main

Route 3: Hydrothermal

2 · Synthesis of electrode material · Fig. 1

Metal precursorsCopper Chloride, 0.5 mmol (85.2 mg)
Linker precursorsIsonicotinic acid, 0.5 mmol (61.5 mg)
Solvents4.0 mL methanol for copper chloride; 4.0 mL distilled water for isonicotinic acid
AdditivesNone reported; solution pH 4.0
Atmospherenot reported
Temperature150
Time4
Work-upAfter reaction completion, sky blue Cu-MOF crystals were collected, washed and dried.
Activationnot reported
Scalability contextSmall-batch Teflon-lined hydrothermal bomb; no yield or scale-up information reported.
Show 4 structured reagent records
RoleReagentAmount / concentrationSource
Metal SourceCopper Chloride0.5 mmol (85.2 mg) · dissolved in 4.0 mL methanol2 · Synthesis of electrode material · Fig. 1
Linkerisonicotinic acid0.5 mmol (61.5 mg) · dissolved in 4.0 mL distilled water2 · Synthesis of electrode material · Fig. 1
Solventmethanol4.0 mL2 · Synthesis of electrode material · Fig. 1
SolventDistilled water4.0 mL2 · Synthesis of electrode material · Fig. 1
Partial recipeSource: Main

Route 4: Other

2, 6 · Fabrication; Two electrode configuration · Fig. 6

Metal precursorsCu-MOF positive electrode
Solvents1 M KOH electrolyte
Additivesthin porous membrane separator
Atmosphereroom-temperature electrochemical environment; assembly atmosphere not reported
Substrate orientationtwo-electrode asymmetric assembly
Work-upCu-MOF positive and activated carbon negative electrodes assembled with a porous membrane; charge balancing by reported m+/m- equation.
Activationnot reported
Scalability contextPrototype device only; separator dimensions and electrolyte volume not reported.
Show 4 structured reagent records
RoleReagentAmount / concentrationSource
OtherCu-MOF positive electrode4.00 mg Cu-MOF active material2, 6 · Fabrication; Two electrode configuration · Fig. 6
Otheractivated carbon negative electrode6.50 mg activated carbon2, 6 · Fabrication; Two electrode configuration · Fig. 6
ElectrolyteKOH1 M2, 6 · Fabrication; Two electrode configuration · Fig. 6
Otherthin porous membranenot reported2, 6 · Fabrication; Two electrode configuration · Fig. 6