H‐Glass Supported Hybrid Gold Nano‐Islands for Visible‐Light‐Driven Hydrogen Evolution

Author:

Mandal Indrajeet1ORCID,Gangareddy Jagannath1,Sethurajaperumal Abimannan2ORCID,NK Murugasenapathi34ORCID,Majji Manikanta5,Bera Susmita6,Rudra Pratyasha14,Ravichandran Vanmathi2ORCID,Bysakh Sandip1,Jacob Noah5,Rao K. D. M.7,Singh Rajiv K.48,Krishnan N. M. Anoop9,Chirumamilla Manohar1011ORCID,Palanisamy Tamilarasan34ORCID,Motapothula M.5,Varrla Eswaraiah2ORCID,Ghosh Srabanti14,Allu Amarnath R.14ORCID

Affiliation:

1. CSIR‐Central Glass and Ceramic Research Institute 196 Raja S C Mullick Road Kolkata 700 032 India

2. Sustainable Nanomaterials and Technologies Lab Department of Physics and Nanotechnology SRM Institute of Science and Technology Kattankulathur Chengalpattu Tamil Nadu 603203 India

3. Electrodics and Electrocatalysis Division (EEC) CSIR‐Central Electrochemical Research Institute (CECRI) Karaikudi Tamil Nadu 630003 India

4. Academy of Scientific and Innovative Research (AcSIR) Ghaziabad 201002 India

5. Department of Physics SRM University AP Amaravati Andhra Pradesh 522502 India

6. Research Institute for Sustainable Energy (RISE) TCG Centres for Research and Education in Science and Technology (TCG CREST) Sector V, Salt Lake Kolkata 700091 India

7. School of Applied & Interdisciplinary Sciences Indian Association for the Cultivation of Science 2A & 2B Raja S. C. Mullick Road, Jadavpur Kolkata 700032 India

8. Photovoltaic Metrology Section Advanced Material and Devices Metrology Division CSIR‐National Physical Laboratory New Delhi 110012 India

9. Department of Civil Engineering Indian Institute of Technology Delhi New Delhi 110016 India

10. Department of Materials and Production Aalborg University Skjernvej 4A Aalborg 9220 Denmark

11. Institute of Optical and Electronic Materials Hamburg University of Technology Eissendorfer Strasse 38 21073 Hamburg Germany

Abstract

AbstractFlat panel reactors, coated with photocatalytic materials, offer a sustainable approach for the commercial production of hydrogen (H2) with zero carbon footprint. Despite this, achieving high solar‐to‐hydrogen (STH) conversion efficiency with these reactors is still a significant challenge due to the low utilization efficiency of solar light and rapid charge recombination. Herein, hybrid gold nano‐islands (HGNIs) are developed on transparent glass support to improve the STH efficiency. Plasmonic HGNIs are grown on an in‐house developed active glass sheet composed of sodium aluminum phosphosilicate oxide glass (H‐glass) using the thermal dewetting method at 550 °C under an ambient atmosphere. HGNIs with various oxidation states (Au0, Au+, and Au) and multiple interfaces are obtained due to the diffusion of the elements from the glass structure, which also facilitates the lifetime of the hot electron to be ≈2.94 ps. H‐glass‐supported HGNIs demonstrate significant STH conversion efficiency of 0.6%, without any sacrificial agents, via water dissociation. This study unveils the specific role of H‐glass‐supported HGNIs in facilitating light‐driven chemical conversions, offering new avenues for the development of high‐performance photocatalysts in various chemical conversion reactions for large‐scale commercial applications.

Funder

Science and Engineering Research Board

Department of Science and Technology, Government of Rajasthan

Novo Nordisk Fonden

Publisher

Wiley

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