Logo
Nazad
M. Lappa, Philip A. Carvil, V. Shevtsova, P. S. Sánchez, Jose Miguel Ezquerro Navarro, Jeff Porter, Ana Laverón Simavilla, D. Langevin, David J. Browne, T. Lyubimova, K. Kostarev, M. Denisova, Á. Romero-Calvo, P. Capobianchi, Peter Lewis, Andrew Tarrant, A. Frehn, Stefan Surrey, Martyn Acreman, F. Grensing, B. Šeta, Tusher Mollah, Navid Ranjbar, J. Spangenberg, I. Hamerton, Priyadarshini Patel, Komal Parmar, Aakash Bansal, William G. Whittow, M. Domingos, L. Moroni, C. Iorio, Y. Samad, M. Bodaghi, J. García-Ruiz, F. Otálora, J. Gavira, Luis Fernando Gonzáles-Torres, Marcus Krüger, D. Grimm, Içvara Aor, R. Ledesma‐Amaro, S. Vincent-Bonnieu, Aidan Cowley, Advenit Makaya, Lukas Schlueter, Altan Alpay Altun, M. Schwentenwein, M. Fateri, J. Guenster, Matthias Sperl, J. Western, Katie King
0 10. 6. 2026.

Roadmap on materials development and utilization in space

Materials science underpins national economies and infrastructures worldwide, contributing significantly to the delivery of key services, as well as supporting multiple industrial sectors, including space. The space sector, represents a cornerstone of technological progress, driving both direct and indirect innovation across many terrestrial fields. Taken together, materials science and the space sector represent a transformative frontier that remains only partially exploited, offering opportunities for scientific, economic, and societal advancement. In this context, this roadmap presents a special focus on where such interplay can yield fruitful outcomes over the next two decades, exploring specific intersections between these fields. The rationale behind this is routed in the current demand and forward view for specialized materials to address both terrestrial challenges and extraterrestrial ambitions, with the global space economy projected to reach $1.8 trillion by 2035, requiring a coordinated interdisciplinary effort. Microgravity provides a unique platform to achieve this, enabling critical insights, more precise control over material formation and the creation of advanced materials with enhanced properties for diverse applications. These breakthroughs are already informing applications across a range of industries on Earth, from semiconductors to pharmaceuticals, while laying the groundwork for advanced manufacturing in space. Emerging sectors such as the ‘In-Orbit Economy’ and in-situ resource utilization (ISRU) further underscore this critical opportunity, emphasizing the need for resilient materials that can withstand the harsh conditions of space and utilize extraterrestrial resources sustainably. This roadmap brings together a diverse array of contributions covering relevant subjects across these areas—from space exploration and ISRU to the production of new inorganic, organic, and even ‘living’ materials on microgravity platforms—while paying special attention to concrete examples, i.e. cases with a technological readiness level of 4 or higher, which warrant continued attention and effort.


Pretplatite se na novosti o BH Akademskom Imeniku

Ova stranica koristi kolačiće da bi vam pružila najbolje iskustvo

Saznaj više