EventsThe 3rd International Electronic Conference on Catalysis Sciences
Published
This submission belongs to the session G. Industrial Catalysis of the event The 3rd International Electronic Conference on Catalysis Sciences
Published date
21 Apr, 2025
Academic Editor
author-avatarGuido Busca
Citation
Barbie Borthakur, Partha Protim Borthakur, The Role of Industrial Catalysts in Accelerating the Renewable Energy Transition, in Proceedings of The 3rd International Electronic Conference on Catalysis Sciences, 23 April–25 April 2025, MDPI: Basel, Switzerland
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The Role of Industrial Catalysts in Accelerating the Renewable Energy Transition

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1. Department of Mechanical Engineering, IIT, Ropar, India
2. Department of Mechanical Engineering, Dibrugarh University, India 786004, India
Abstract

Industrial catalysts are accelerating the global transition toward renewable energy, serving as enablers for innovative technologies that enhance efficiency, lower costs, and improve environmental sustainability. This review explores the pivotal roles of industrial catalysts in hydrogen production, biofuel generation, and biomass conversion, highlighting their transformative impact on renewable energy systems. Precious-metal-based electrocatalysts such as ruthenium (Ru), iridium (Ir), and platinum (Pt) demonstrate high efficiency but face challenges due to their cost and stability. Alternatives like nickel-cobalt oxide (NiCo₂O₄) and Ti₃C₂ MXene materials show promise in addressing these limitations, enabling cost-effective and scalable hydrogen production. Additionally, nickel-based catalysts supported on alumina optimize SMR, reducing coke formation and improving efficiency. In biofuel production, heterogeneous catalysts play a crucial role in converting biomass into valuable fuels. Co-based bimetallic catalysts enhance hydrodeoxygenation (HDO) processes, improving the yield of biofuels like dimethylfuran (DMF) and γ-valerolactone (GVL). Innovative materials such as biochar, red mud, and metal–organic frameworks (MOFs) facilitate sustainable waste-to-fuel conversion and biodiesel production, offering environmental and economic benefits. Power-to-X technologies, which convert renewable electricity into chemical energy carriers like hydrogen and synthetic fuels, rely on advanced catalysts to improve reaction rates, selectivity, and energy efficiency. Innovations in non-precious metal catalysts, nanostructured materials, and defect-engineered catalysts provide solutions for sustainable energy systems. These advancements promise to enhance efficiency, reduce environmental footprints, and ensure the viability of renewable energy technologies.

Keywords
Industrial Catalysts
Renewable Energy
Biofuel Generation
Electrocatalysis
Sustainable Energy Transition.
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