Author
Listed:
- Andre Christian Daum
(Department of Industrial Engineering, Friedberg Campus, Technical University of Central Hesse, Wilhelm-Leuschner-Straße 13, 61169 Friedberg, Germany)
- Kara Johanna Drath
(Department of Prosthodontics, Justus Liebig University Giessen, University Hospital Giessen, Schlangenzahl 14, 35392 Gießen, Germany)
- Harald Weigand
(Centre of Competence for Sustainable Engineering and Environmental Systems, Technical University of Central Hesse, Wiesenstraße 14, 35390 Gießen, Germany)
- Maximiliane Amelie Schlenz
(Department of Prosthodontics, Christian Albrecht University of Kiel, University Hospital Schleswig-Holstein, Campus Kiel, Arnold-Heller-Strasse 3, 24105 Kiel, Germany)
- Fabian Völker
(Department of Industrial Engineering, Friedberg Campus, Technical University of Central Hesse, Wilhelm-Leuschner-Straße 13, 61169 Friedberg, Germany)
- Holger Rohn
(Department of Industrial Engineering, Friedberg Campus, Technical University of Central Hesse, Wilhelm-Leuschner-Straße 13, 61169 Friedberg, Germany)
Abstract
Despite the significant environmental impact of the healthcare sector, with Germany’s system accounting for a large proportion of national emissions, quantitative sustainability research on specific medical procedures, such as those in dentistry, is critically scarce. This study aimed to address this issue by conducting a Life Cycle Assessment to quantify and compare the Global Warming Potential of the conventional analog and the digital (intraoral scanner) impression techniques for the manufacturing of single-tooth crowns in a German dental practice. The methodology employed a cradle-to-grave approach, defining a positive dental model as the functional unit and focusing on material consumption, waste streams, and equipment usage while excluding patient travel and facility energy. The results revealed that the digital impression procedure offers significant environmental advantages, with its average carbon footprint (approx. 550 CO 2 -eq) being nearly threefold lower than the analog impression (approx. 1620 g CO 2 -eq). This difference is primarily driven by the analog impression technique’s intensive use of disposable materials and the generation of contaminated waste requiring incineration. In contrast, the digital impression’s burden shifts to the manufacturing of the intraoral scanner, highlighting the importance of high clinical utilization to achieve the ecological benefit. This work concludes that the adoption of digital impression taking is a critical step towards more sustainable dentistry by promoting material avoidance and waste reduction, provided that high equipment utilization rates can be ensured. It should be noted that these results are specific to the regional context, particularly the German energy mix and national waste management standards, and may vary in different geographical settings
Suggested Citation
Andre Christian Daum & Kara Johanna Drath & Harald Weigand & Maximiliane Amelie Schlenz & Fabian Völker & Holger Rohn, 2026.
"Sustainability in Dentistry—Insights into Waste Impacts from a Carbon Footprint Comparison Between Conventional and Digital Impression Techniques,"
Waste, MDPI, vol. 4(1), pages 1-22, February.
Handle:
RePEc:gam:jwaste:v:4:y:2026:i:1:p:5-:d:1869553
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