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Water quality is recognized as a fundamental determinant of human health, ecosystem functioning, and sustainable development, with degradation linked to increased disease, biodiversity loss, and socioeconomic risks (UNEP 2008; Lai et al. 2022).
In addition to efforts aimed at reducing pollution at its source, the development of advanced wastewater remediation technologies presents considerable potential for mitigation. Nevertheless, it is essential to evaluate the anticipated environmental benefits prior to widespread implementation, given the substantial investment and operational expenditures required.
How should the environmental benefits of wastewater treatment technologies be quantified?
So far, the environmental benefits of wastewater treatment technologies have been expressed at an inventory level, meaning that the effectiveness of contaminants removal is assessed by calculating the quotient of the contaminant concentration at the outlet and the contaminant concentration and the inlet.
In this work, we approach the calculation of the environmental benefits of wastewater treatment technologies from an impact perspective and under consideration of potential trade-offs, following the environmental handprint method (Pajula et al. 2021) and its theoretical specification for environmental remediation technologies exemplified in Forin et al. (2025).
First, we classify and characterize the contaminants measured at the inlet and outlet of the wastewater treatment technology under analysis. In this way, the type of local impact (e.g. eutrophication, acidification, ecotoxicity) and its severity are accounted for.
Second, we carry out the LCA of the remediation technology from cradle to gate. In this way, potential trade-offs occurring at global scale over the life cycle as well as non-water-quality related impacts (e.g. on climate change, air quality, water scarcity, biodiversity or mineral resources) can be detected and juxtaposed to the benefits calculated in the first step.
The resulting water quality handprint accounts for the difference between the impact assessment results of the characterized pollutants (outlet minus inlet), and the burdening effects of the life-cycle impacts.
We will present a selection of the pilot cases realized within the HORIZON Europe iMERMAID project on the following technologies: a pulse discharge plasma system for the degradation of persistent organic pollutants, a pre-filtration system based on reclaimed RO membranes, designed to optimize influent quality, a microfluidic systems for the removal of emissions from pharmaceutical production and the scavenger technology for the removal of metal contaminants in wastewater.
We will share insights on the water footprint and handprint of innovative wastewater treatment technologies and draw conclusions on the applicability of the environmental handprint method.