Templated 2D Polymer Heterojunctions for Improved Photocatalytic Hydrogen Production

Author:

Aitchison Catherine M.1ORCID,Gonzalez‐Carrero Soranyel2ORCID,Yao Shilin2,Benkert Max1,Ding Zhiyuan3ORCID,Young Neil P.3,Willner Benjamin1,Moruzzi Floriana1,Lin Yuanbao1,Tian Junfu1,Nellist Peter D.3,Durrant James R.2ORCID,McCulloch Iain1ORCID

Affiliation:

1. Department of Chemistry University of Oxford 12 Mansfield Road Oxford OX1 3TA UK

2. Department of Chemistry and Centre for Processable Electronics Imperial College London Exhibition Road London SW7 2AZ UK

3. Department of Materials University of Oxford 16 Parks Road Oxford OX1 3PH UK

Abstract

Abstract2D polymers have emerged as one of the most promising classes of organic photocatalysts for solar fuel production due to their tunability, charge‐transport properties, and robustness. They are however difficult to process and so there are limited studies into the formation of heterojunction materials incorporating these components. In this work, a novel templating approach is used to combine an imine‐based donor polymer and an acceptor polymer formed through Knoevenagel condensation. Heterojunction formation is shown to be highly dependent on the topological match of the donor and acceptor polymers with the most active templated material found to be between three and nine times more active for photocatalysis than its constituent components. Transient absorption spectroscopy reveals that this improvement is due to faster charge separation and more efficient charge extraction in the templated heterojunction. The templated material shows a very high hydrogen evolution rate of >20 mmol h−1m−2with an ascorbic acid hole scavenger but also produces hydrogen in the presence of only water and a cobalt‐based redox mediator. This suggests the improved charge‐separation interface and reduced trapping accessed through this approach could be suitable for Z‐scheme formation.

Funder

Engineering and Physical Sciences Research Council

China Scholarship Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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