Defect‐Rich Graphdiyne Quantum Dots as Efficient Electron‐Donors for Hydrogen Generation

Author:

Ullah Wahid1,Slassi Amine23,Wang Cong1,Paineau Erwan4,Ha‐Thi Minh‐Huong5,Pino Thomas5,Halime Zakaria6,Gayral Audrey1,Vallet Maxime78,Degrouard Jéril4,Cornil Jérôme3,Ghazzal Mohamed Nawfal1ORCID

Affiliation:

1. Université Paris‐Saclay UMR8000 CNRS Institut de Chimie Physique Orsay 91405 France

2. ENS LIRBEM Cadi Ayyad University Marrakech 40000 Morocco

3. Laboratory for Chemistry of Novel Materials University of Mons Place du Parc 20 Mons 7000 Belgium

4. Université Paris‐Saclay, CNRS Laboratoire de Physique des Solides Orsay 91405 France

5. Université Paris‐Saclay, CNRS Institut des Sciences Moléculaires d’Orsay Orsay 91405 France

6. Université Paris‐Saclay, CNRS Institut de Chimie Moléculaire et des Matériaux d'Orsay Orsay 91405 France

7. CentraleSupélec ENS Paris‐Saclay CNRS LMPS ‐Laboratoire de Mécanique Paris‐Saclay Université Paris‐Saclay Gif‐sur‐Yvette 91190 France

8. Université Paris‐Saclay CNRS Laboratoire SPMS CentraleSupélec Gif‐sur‐Yvette 91190 France

Abstract

AbstractDownsizing the graphdiyne (GDY) network to shape quantum dots (QDs) will provide attractive optical and electronic properties associated with quantum confinement and edge effects. Here, it is demonstrated that quantum confinement and defect introduction allow using GDY in donor–acceptor photocatalytic systems for solar‐to‐hydrogen conversion. The defect‐rich GDY QDs (GDYO‐QDs) exhibit a blue‐to‐green excitation‐dependent photoluminescence behavior, demonstrating their ability to harvest light over a wide energy range. Quantum‐chemical calculations evidenced an increase in the electronic bandgap of GDY upon quantum confinement and defect introduction without the appearance of trap states that can hamper charge transport properties. Such a unique optical behavior of QDs is used in photocatalytic hydrogen generation through the hybridization with TiO2 as a model photocatalyst. Theoretical and experimental results demonstrate that the donor−acceptor system tremendously boosts the photocatalytic performance, reaching 5288 µmol g−1 after 4 h of illumination at a constant rate of 1322 µmol g−1 h−1, using a low volume of a sacrificial electron donor (6% v/v). The QDs act as efficient chromophores harvesting UV and visible light while injecting electrons into the TiO2. This work opens a new area of using GDYO‐QDs as an efficient chromophore in developing donor–acceptor systems for photocatalysis and future photovoltaic devices.

Funder

Agence Nationale de la Recherche

Publisher

Wiley

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