TY - JOUR
T1 - Activated triply periodic minimal surfaces (TPMS) gyroid supports for efficient ammonia synthesis in membrane-integrated reactors
AU - Gargiulo, I.
AU - Vita, A.
AU - Italiano, C.
AU - Llosa Tanco, M. A.
AU - Pacheco Tanaka, D. A.
AU - Gallucci, F.
N1 - Publisher Copyright:
© 2026 The Authors. Published by Elsevier Ltd on behalf of Hydrogen Energy Publications LLC. This is an open access article under the CC BY license. http://creativecommons.org/licenses/by/4.0/
PY - 2026/5/20
Y1 - 2026/5/20
N2 - Ammonia is an essential chemical widely used in industry, with its production dominated by the highly energy-intensive Haber-Bosch process. Membrane reactor technology offers a promising alternative by integrating reaction and selective product separation, thereby enabling higher process efficiencies and milder operating conditions. In this work, we investigate a new membrane reactor composed of a carbon membrane immersed in an Activated Triply Periodic Minimal Surface (TPMS) gyroid support uniformly coated with a Ru-based catalytic layer. Different operating conditions have been investigated; The most favourable baseline conditions were identified at the lowest WHSV (715 mLn gcat−1 h−1), and with an under-stoichiometric H2:N2 feed ratio of 2:1, reflecting both the proximity to thermodynamic equilibrium and the beneficial impact of reduced hydrogen partial pressure on Ru-based catalysis.At 250 °C and 40 bar, increasing the sweep gas to feed flow ratio (SW) to 10 led NH3 production rate enhancements of approximately 43 % and corresponding NH3 yield gains of 15 %, with an NH3 recovery factor of 84 %. At lower pressure (30 bar) and higher temperatures (350–450 °C), the membrane reactor still enhanced NH3 production rate at reduced sweep ratios, with gains of about 1-20 % at SW = 1 and 17–41 % at SW = 4 relative to the SCR. However, the NH3 recovery factor dropped to 64-70 % for SW = 1 and 41-66 % for SW of 4, compared with 87-95 % at 40 bar. This behaviour indicates a clear trade-off between productivity and product recovery as pressure and sweep ratio are adjusted. At 450 °C and 10-40 bar, with a SW = 4, H2 conversion exceeded the equilibrium value by approximately 15–30 %, and the conversion achieved at 400 °C in the SCR was already attained at 300 °C in the SCMR. At 400 °C and 40 bar with SW = 4, H2 conversion, NH3 production rate, and NH3 yield increased by 83.4 %, 76.9 %, and 53.4 %, respectively, compared to the structured reactor. Overall, these results provide a clear proof of concept for the application of structured membrane reactors to ammonia synthesis, demonstrating that an appropriate combination of structured Ru-based catalysts and carbon membrane integration can deliver enhanced efficiency and equilibrium shifting under milder operating conditions, and offering a solid basis for future scale-up and process optimization studies.
AB - Ammonia is an essential chemical widely used in industry, with its production dominated by the highly energy-intensive Haber-Bosch process. Membrane reactor technology offers a promising alternative by integrating reaction and selective product separation, thereby enabling higher process efficiencies and milder operating conditions. In this work, we investigate a new membrane reactor composed of a carbon membrane immersed in an Activated Triply Periodic Minimal Surface (TPMS) gyroid support uniformly coated with a Ru-based catalytic layer. Different operating conditions have been investigated; The most favourable baseline conditions were identified at the lowest WHSV (715 mLn gcat−1 h−1), and with an under-stoichiometric H2:N2 feed ratio of 2:1, reflecting both the proximity to thermodynamic equilibrium and the beneficial impact of reduced hydrogen partial pressure on Ru-based catalysis.At 250 °C and 40 bar, increasing the sweep gas to feed flow ratio (SW) to 10 led NH3 production rate enhancements of approximately 43 % and corresponding NH3 yield gains of 15 %, with an NH3 recovery factor of 84 %. At lower pressure (30 bar) and higher temperatures (350–450 °C), the membrane reactor still enhanced NH3 production rate at reduced sweep ratios, with gains of about 1-20 % at SW = 1 and 17–41 % at SW = 4 relative to the SCR. However, the NH3 recovery factor dropped to 64-70 % for SW = 1 and 41-66 % for SW of 4, compared with 87-95 % at 40 bar. This behaviour indicates a clear trade-off between productivity and product recovery as pressure and sweep ratio are adjusted. At 450 °C and 10-40 bar, with a SW = 4, H2 conversion exceeded the equilibrium value by approximately 15–30 %, and the conversion achieved at 400 °C in the SCR was already attained at 300 °C in the SCMR. At 400 °C and 40 bar with SW = 4, H2 conversion, NH3 production rate, and NH3 yield increased by 83.4 %, 76.9 %, and 53.4 %, respectively, compared to the structured reactor. Overall, these results provide a clear proof of concept for the application of structured membrane reactors to ammonia synthesis, demonstrating that an appropriate combination of structured Ru-based catalysts and carbon membrane integration can deliver enhanced efficiency and equilibrium shifting under milder operating conditions, and offering a solid basis for future scale-up and process optimization studies.
KW - 3D printing
KW - Additive manufacturing
KW - Ammonia production
KW - Process intensification
KW - Proof of concept
KW - Structured membrane reactor
KW - TPMS gyroid catalysts
UR - https://www.scopus.com/pages/publications/105036340254
U2 - 10.1016/j.ijhydene.2026.155170
DO - 10.1016/j.ijhydene.2026.155170
M3 - Article
AN - SCOPUS:105036340254
SN - 0360-3199
VL - 235
JO - International Journal of Hydrogen Energy
JF - International Journal of Hydrogen Energy
M1 - 155170
ER -