RHINO
Electrifying chemistry towards net-zero emission industry
The RHINO project aims to establish a new electrified paradigm for the chemical industry that incorporates renewable energy sources and decarbonizes this energy-intensive sector. This paradigm shift has the potential to significantly reduce the industry’s carbon footprint, increase energy efficiency, and enhance the production of high-value chemicals, thereby contributing to a more sustainable and competitive chemical industry.
The core of RHINO’s strategy is the development of electrochemical reactors that use electric power to drive chemical reactions with high selectivity. The project seeks to overcome current barriers by creating a new class of electrified catalytic reactors through an interdisciplinary approach. This approach combines cutting-edge nanomaterials, interface engineering,a deep understanding of reaction kinetics, microwave engineering, and advanced multi-physics modelling.
RHINO will focus on developing two innovative types of electrically driven reactors:
Electrochemical Membrane Reactor Technology. Two approaches for the electrification of membrane reactions are tackled. On the one hand, Joule electric heating in ceramic membrane reactors will allow exploiting the effect of local heating. On the other hand, electrochemical reactors based on membrane electrode assemblies (MEA) will be developed.
Microwave-Driven Enhanced Catalysis: This breakthrough technology will employ microwave (MW) electromagnetic irradiation to enhance the catalysis of reduction-oxidation (redox) reactions. MW irradiation allows for processing at lower reaction times and temperatures, improving energy efficiency and selectivity. The concept of “non-equilibrium local heating”—where specific domains are heated to much higher temperatures than the bulk solution—will be explored to enhance chemical reactions.
The project is led by two Spanish research groups at the forefront of microwave technology (Microwave Division of ITACA Institute -ITACA-DIMAS-) and catalytic materials research (Energy Conversion and Storage group at the Institute of Chemical Technology -CSIC-ITQ-). With a focus on multidisciplinary activities, both partners will collaborate in this 2-year project -from December 2022 to November 2024- to pave the way for a sustainable future in the chemical industry by developing advanced electrified processes that align with sustainable development goals.



