Building Green Generative AI: An Ecosystem-Wide Approach to Environmental Sustainability

Authors

Fabian Helms
TU Dortmund University
https://orcid.org/0009-0001-1640-1330
Kay Hönemann
TU Dortmund University
https://orcid.org/0000-0001-9825-7522
Manuel Wiesche
TU Dortmund University
https://orcid.org/0000-0003-0401-287X

Synopsis

Generative AI's (GenAI) rapid growth raises environmental concerns due to high energy consumption. Despite accelerating technological advancements, understanding how different stakeholders in the GenAI ecosystem can contribute to environmental sustainability remains limited. We address this gap with a taxonomy of actions for environmentally sustainable GenAI ecosystems. Our taxonomy, developed through a design science approach combining literature review and case analysis, categorizes environmental sustainability interventions across resources, models, and usage. We identify key stakeholders (hardware manufacturers, cloud providers, model developers, application providers) and map their roles in implementing these actions. The taxonomy reveals trade-offs between performance, cost, and environmental sustainability, highlighting the need for context-specific strategies. Through an illustrative vignette, we demonstrate how GenAI application providers can systematically implement sustainability measures. We provide a framework for researchers and practitioners to develop environmentally responsible GenAI solutions, fostering coordinated action to ensure GenAI benefits without compromising environmental well-being.

Author Biographies

Fabian Helms, TU Dortmund University

Dortmund, Germany. E-mail: fabian.helms@tu-dortmund.de

Kay Hönemann, TU Dortmund University

Dortmund, Germany. E-mail: kay.hoenemann@tu-dortmund.de

Manuel Wiesche, TU Dortmund University

Dortmund, Germany. E-mail: manuel.wiesche@tu-dortmund.de

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Published

June 9, 2025

License

Creative Commons License

This work is licensed under a Creative Commons Attribution 4.0 International License.

How to Cite

Helms, F., Hönemann, K., & Wiesche, M. (2025). Building Green Generative AI: An Ecosystem-Wide Approach to Environmental Sustainability. In A. Pucihar, M. Kljajić Borštnar, S. Blatnik, M. Marolt, R. W. H. Bons, K. Smit, & M. Glowatz (Eds.), & (Ed.), 38th Bled eConference: Empowering Transformation: Shaping Digital Futures for All: Conference Proceedings (pp. 617-632). University of Maribor Press. https://press.um.si/index.php/ump/catalog/book/947/chapter/623