Flexible Bifunctional Electrode for Alkaline Water Splitting with Long-Term Stability.
Abhijit GangulyRuairi J McGlynnAdam BoiesPaul MaguireDavide MariottiSupriya ChakrabartiPublished in: ACS applied materials & interfaces (2024)
Progress in electrochemical water-splitting devices as future renewable and clean energy systems requires the development of electrodes composed of efficient and earth-abundant bifunctional electrocatalysts. This study reveals a novel flexible and bifunctional electrode ( NiO@CNTR ) by hybridizing macroscopically assembled carbon nanotube ribbons ( CNTRs ) and atmospheric plasma-synthesized NiO quantum dots (QDs) with varied loadings to demonstrate bifunctional electrocatalytic activity for stable and efficient overall water-splitting (OWS) applications. Comparative studies on the effect of different electrolytes, e.g., acid and alkaline, reveal a strong preference for alkaline electrolytes for the developed NiO@CNTR electrode, suggesting its bifunctionality for both HER and OER activities. Our proposed NiO@CNTR electrode demonstrates significantly enhanced overall catalytic performance in a two-electrode alkaline electrolyzer cell configuration by assembling the same electrode materials as both the anode and the cathode, with a remarkable long-standing stability retaining ∼100% of the initial current after a 100 h long OWS run, which is attributed to the "synergistic coupling" between NiO QD catalysts and the CNTR matrix. Interestingly, the developed electrode exhibits a cell potential ( E 10 ) of only 1.81 V with significantly low NiO QD loading (83 μg/cm 2 ) compared to other catalyst loading values reported in the literature. This study demonstrates a potential class of carbon-based electrodes with single-metal-based bifunctional catalysts that opens up a cost-effective and large-scale pathway for further development of catalysts and their loading engineering suitable for alkaline-based OWS applications and green hydrogen generation.
Keyphrases
- carbon nanotubes
- solid state
- highly efficient
- metal organic framework
- reduced graphene oxide
- ionic liquid
- quantum dots
- single cell
- ion batteries
- gold nanoparticles
- systematic review
- anaerobic digestion
- drug delivery
- dna methylation
- molecularly imprinted
- particulate matter
- sensitive detection
- climate change
- carbon dioxide
- label free
- simultaneous determination
- energy transfer
- mesenchymal stem cells
- crystal structure
- liquid chromatography