High-octane biofuels are a promising advancement in bioenergy, offering significant advantages over conventional fuels. These biofuels, derived from sources like algae, sugarcane, and corn, possess higher octane ratings, which enhance engine performance and efficiency. Their elevated octane levels reduce engine knock and improve fuel combustion, leading to smoother operation and better power output. Additionally, high-octane biofuels contribute to reduced greenhouse gas emissions, as they are produced from renewable resources and can replace fossil fuels. By incorporating high-octane biofuels into the energy mix, we can advance towards cleaner and more sustainable energy solutions, while also promoting energy security and reducing reliance on oil imports. This approach aligns with the broader goals of transitioning to a circular economy and mitigating environmental impacts.
Title : A strategic technological roadmap for the future of biodiesel: Catalytic innovation and process intensification.
Suzana Borschiver, Federal University of Rio de Janeiro, UFRJ, Brazil
Title : Hydrogen production from contaminated residual biomass: An integrated gasification and SEWGS process study
Enrico Paris, CREA-IT, Italy
Title : Application of vanadium and tantalum single-site zeolite catalysts in heterogeneous catalysis
Stanislaw Dzwigaj, Sorbonne University, France
Title : Robust MPPT-based design and simulation of integrated solar PV–hydrogen production systems
Elkhatib Kamal, Ecole Centrale de Nantes, France
Title : Green management of enterprises as a response to climate change
Dai Yeun Jeong, Asia Climate Change Education Center, Korea, Republic of
Title : Modeling of anaerobic biodegradation of organic waste
Ivan Simeonov, Institute of Microbiology St. Angeov Bulgarian Academy of Science, Bulgaria