Synthesis evidence

Nanostructured Conductive Metal Organic Frameworks for Sustainable Low Charge Overpotentials in Li–Air Batteries

Majidi L., Ahmadiparidari A., Shan N. et al. · Small · 2022 · 2102902

2 structured synthesis routes

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

Partial recipeSource: Main

Route 1: Drop Cast

7 · Experimental Section, Cathode Preparation

Metal precursorsCu-THQ NFs
Linker precursorstetrahydroxyquinone present in Cu-THQ NFs
Solventsnot specified for coating step
Atmospherenot specified for coating; battery assembled in argon-filled glovebox
Substrate orientation1 cm2 GDE (Sigracet 25 BC)
Work-up100 mg Cu-THQ NFs coated on 1 cm2 GDE
Show 2 structured reagent records
RoleReagentAmount / concentrationSource
OtherCu-THQ NFs100 mg7 · Experimental Section, Cathode Preparation
OtherGDE (Sigracet 25 BC)1 cm27 · Experimental Section, Cathode Preparation
Partial recipeSource: Both

Route 2: Other

2 · S1. Synthesis of Cu-THQ Nano-flakes (NFs)

Metal precursorspre-synthesised bulk Cu-THQ powder
Linker precursorscontained in pre-synthesised Cu-THQ powder; tetrahydroxyquinone linker not separately used in this route
Solventsisopropyl alcohol (IPA), 12 mL
Atmospherenot specified
Time4 h sonication; 1 h centrifugation
Work-upprobe sonication (Vibra Cell Sonics 130 W) for 4 h; centrifuge 60 min at 2000 rpm; collect supernatant
Show 2 structured reagent records
RoleReagentAmount / concentrationSource
OtherCu-THQ powder30 mg2 · S1. Synthesis of Cu-THQ Nano-flakes (NFs)
Solventisopropyl alcohol (IPA)12 mL2 · S1. Synthesis of Cu-THQ Nano-flakes (NFs)