MW Measurement Techniques

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.

 

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RASMIA

Towards sustainable energy processes in chemical industry: development of CO2 capture and utilization assisted by microwave heating

RASMIA project entails the transformation of energy intensive chemical industry through microwave heating, a more efficient way of supplying energy to the processes using renewable electricity and avoiding fossil fuels.

This coordinated project, financed by the Spanish Science and Innovation Ministry (PID2022-138336OB-C21) will focus on the design of new microwave driven processes for CO2 capture and hydrogen generation by Dry Reforming of Methane (DRM). The goal is to contribute to decarbonisation of chemical industry together with process circularity, since the CO2 captured in the microwave adsorption process constitutes the raw material for dry methane reforming.

RASMIA involves researchers from the Institute of Information and Communication Technologies (ITACA) of the Universitat Politècnica de València (UPV), belonging to the Microwave Division (ITACA-DIMAS). The coordination of the project is led by researchers from Universidad de Zaragoza (UNIZAR), Instituto de Nanociencia y Materiales de Aragón, INMA, working in the field of Chemical Engineering and Materials Science.

Continuous evaluation of the results throughout the project will direct RASMIA’s efforts towards optimizing resource efficiency, process scalability, and reducing the cost and carbon footprint compared to the state-of-the-art reference processes of amine absorption for CO2 capture and steam reforming for syngas production.

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eCOCO2

Direct electrocatalytic conversion of CO2 into chemical energy carriers in a co-ionic membrane reactor

Despite the potential benefits of converting CO2 to fuel, current technologies face significant challenges that hinder their industrial implementation. Typically, these processes require multiple steps and incur in high capital and operational costs. Furthermore, multiple steps and unfavourable thermodynamics make these technologies energy-intensive, with efficiencies of around 60%.

One promising solution to reduce costs and improve energy efficiency is process intensification using membrane reactors, multifunctional units combining a chemical reaction with a membrane-based separation. Another approach successfully applied within process engineering to achieve process intensification is using electrochemical reactors that give the chance to use electric power to supply the energy required by a chemical reaction and to do it with high selectivity. Both concepts can be combined in an electrochemical membrane reactor, with the transport of substances controlled by galvanic operation. Electrochemical reactors use ion-selective membrane electrolytes to separate anodic and cathodic reactions.

EcoCO2 project aims to leverage the advantages of electrochemical processes, membrane reactors, and advanced multi-step catalysis to set up an innovative electrocatalytic co-ionic membrane reactor for the single-step conversion of CO2, using renewable electricity and water steam, to carbon-neutral synthetic liquid fuels for their use as transport fuel, and in particular as jet fuel, at high energy efficiency, very high CO2 conversion rate and moderate-to-low cost.

The EcoCO2 project is a collaborative endeavour, bringing together 12 partners from 8 European countries financed by the EU under the H2020-LC-SC3-2018-NZE-C.

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MERIT

Green hydrogen using microwave technology via advanced materials

MERIT project aims to develop fundamental understanding to produce green hydrogen from water by taking advantage of the microwave-driven enhancement of the reduction-oxidation (redox) reactions of solid-state ionic materials (SSIM) at unprecedented mild temperatures (≈ 400 °C). This novel electrochemical water splitting route, delivering just O2 as a by-product, entails a promising opportunity for sustainable, carbon-free H2 production, with projected low energetic costs and high efficiency

The physical principle behind MERIT is based on the induced reduction of selected solid-state materials triggered by microwave irradiation, which promotes the generation of vacancies in the crystal lattice and O2 release.

One of the main singularities of this microwave electromagnetic radiation stems from the unique way it interacts with matter, particularly with SSIM. Microwave energy is directly transferred to the material through the induced excitations on their dipolar and ionic constituents. The exploitation of this property implies the non-contact activation of target molecules in selected SSIMs, being of special interest to those able to generate oxygen vacancies and prompt the H2 generation chain process. Moreover, this type of interaction carries additional inherent advantages. Firstly, eliminating any intermediate step implies simpler equipment than other technologies, namely electrolysers, eliminating the need for cables, electrodes or membranes. Secondly, lacking contact transfer mechanisms avoids inherent potential energy losses, e.g. in conventional thermal heating methods. Indeed, the efficiency of a well-controlled microwave-driven process is only pondered by the SSIM and its ability to absorb the supplied microwave energy, considering that the rest of constituent elements are transparent to this type of radiation.

Experimental setup

In this three-year project, ITACA-DIMAS team will be supported by relevant research groups to study and optimize the formulation and morphology of SSIM for optimal microwave processing. This collaboration will primarily involve the Energy Conversion and Storage group at the Institute of Chemical Technology (ITQ) and the Nanostructured Films & Particles Research Group (NFP) at the Institute of Nanoscience of Aragon (INA).

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MERIT Scientific Workshop on Microwave-Driven Energy Materials

About the Workshop

The MERIT Scientific Workshop will bring together researchers from the MERIT project and invited research groups to discuss recent advances in microwave-driven redox materials and processes for sustainable energy applications. The event aims to present selected scientific results and experimental progress from the MERIT project, while encouraging scientific exchange with the broader research community.

Participants will gain a deeper understanding of fundamental microwave–matter interactions, advanced material design strategies, and reactor concepts enabling low-temperature hydrogen production, oxygen separation, and related redox technologies.

This two-day event, including a dedicated scientific writing course on the second day, will be of particular interest to researchers, early-career scientists, and members of the scientific community working.

 
 

 

Day 1. 25th-November

  • 10:00 – 10:30 Welcome & Opening Remarks
  • 10:30 – 11:30 Microwave–Matter Interaction: A New Paradigm for Redox Chemistry at Low Temperature.
  • 11:30 – 12:00 Coffee Break
  • 12:00 – 13:00 Understanding Microwave-Induced Reduction: Engineering Solid-State Ionic Materials for Efficient Microwave-Driven Water Splitting.
  • 13:00 – 14:00 Advanced Microwave Reactors for Fundamental Microwave–Matter Interaction Studies
  • 14:00 – 15:00 Lunch Break
  • 15:00 – 16:00 Microwave Reactors for Redox Processes: Design, Diagnostics and Scale-Up.
  • 16:00 – 17:00 Beyond Hydrogen: Future Perspectives and Applications of Microwave-Driven Redox Processes

Day 2. 26th-November

  • 09:30 – 10:00 Introduction to the Course
  • 10:00 – 11:30 Training Course: Scientific Writing and Publishing. Part 1.
  • 11:30 – 12:00 Coffee Break
  • 12:00 – 14:00 Training Course: Scientific Writing and Publishing. Part 2.
  • 14:00 – 15:00 Lunch Break
  • 15:00 – 16:00 Round Table: Challenges and Opportunities for Microwave-Driven Technologies in Energy Systems
  • 16:00 – 17:00 Closing Session

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