HEIndividual fellowship2026–2028

NPG membrane for H-B · High-Temperature Nanoporous Graphene Membranes for Integrated Haber–Bosch Reactors

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2026-04-01 → 2028-03-31
EU contribution
€307,959
Participants
1
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Project objective

The Haber–Bosch (H–B) process sustains global food supply through ammonia fertiliser production and is increasingly recognised as a carbon-free energy carrier. However, it operates under harsh conditions (150–300 bar, 400–500 °C), consuming ~2% of global energy and emitting 1.6% of CO2 worldwide. Reducing its energy and carbon footprint remains a major scientific and technological challenge. Integrating membranes directly into the H–B reactor offers a promising route to energy-efficient ammonia production by enabling in-situ ammonia removal, shifting the thermodynamic equilibrium towards higher conversion under milder conditions (30 bar, 350 °C). Nanoporous graphene (NPG) membranes hold great potential for this application: their atomic thickness, tunable Å-scale pores, and pore-edge functionalities allow ultrahigh permeance with strong potential for NH₃ selectivity; while graphene’s intrinsic thermal stability makes them highly promising for high-temperature separations in reactive environments. Yet, the integration of NPG membranes has been hindered by the absence of scalable fabrication of NPG membranes on thermally robust inorganic substrates, and the lack of experimental validation of NH₃ separation under realistic H–B conditions. The project will (i) develop a scalable method for fabricating NPG membranes on robust mesoporous-SiO2 substrates; (ii) investigate the pore structure, edge functionalisation, and thermal stability of NPG membranes up to 350 °C under reactive atmospheres; and (iii) evaluate their temperature-dependent NH₃ separation performance and demonstrate the first proof-of-concept of an NPG membrane-integrated H–B reactor. Beyond its scientific impact, the fellow will gain cutting-edge expertise in materials chemistry and chemical process engineering, together with transferable skills and networks across academia and industry, consolidating her transition to independence as a future PI in sustainable membrane technologies.

Original text from CORDIS.

Participants

  • ECOLE POLYTECHNIQUE FEDERALE DE LAUSANNE · LausanneCoordinatorSwitzerland

Links

Data: CORDIS, © European Union