Tungsten Disulfide-Interfacing Nickel-Porphyrin For Photo-Enhanced Electrocatalytic Water Oxidation.
Michail-Panagiotis MinadakisRuben Canton-VitoriaChristina StangelEmmanuel KlontzasKaushik GhoshJavier Hernández-FerrerAna M BenitoWolfgang K MaserNikos TagmatarchisPublished in: ChemSusChem (2023)
Covalent functionalization of tungsten disulfide (WS 2 ) with photo- and electro-active nickel-porphyrin (NiP) is reported. Exfoliated WS 2 interfacing NiP moieties with 1,2-dithiolane linkages is assayed in the oxygen evolution reaction under both dark and illuminated conditions. The hybrid material presented, WS 2 -NiP, is fully characterized with complementary spectroscopic, microscopic, and thermal techniques. Standard yet advanced electrochemical techniques, such as linear sweep voltammetry, electrochemical impedance spectroscopy, and calculation of the electrochemically active surface area, are used to delineate the catalytic profile of WS 2 -NiP. In-depth study of thin films with transient photocurrent and photovoltage response assays uncovers photo-enhanced electrocatalytic behavior. The observed photo-enhanced electrocatalytic activity of WS 2 -NiP is attributed to the presence of Ni centers coordinated and stabilized by the N 4 motifs of tetrapyrrole rings at the tethered porphyrin derivative chains, which work as photoreceptors. This pioneering work opens wide routes for water oxidation, further contributing to the development of non-noble metal electrocatalysts.
Keyphrases
- electron transfer
- metal organic framework
- reduced graphene oxide
- gold nanoparticles
- photodynamic therapy
- high resolution
- optical coherence tomography
- single molecule
- molecular docking
- nitric oxide
- hydrogen peroxide
- high throughput
- cerebral ischemia
- subarachnoid hemorrhage
- carbon nanotubes
- oxide nanoparticles
- ionic liquid
- crystal structure
- neural network
- monte carlo
- energy transfer