Pasos-Panqueva, J., Yulistyorini, A., Baker, A. et al. (1 more author) (2026) Decoding Wolffia: A Predictive Model for Duckweed Growth and Nutrient Uptake for Resource Recovery from Wastewater in Tropical Countries. ACS ES&T Engineering. ISSN: 2690-0645
Abstract
Duckweed-based wastewater treatment systems have attracted increasing attention for sustainable water pollution control, yet predictive tools to optimize their operation under real-world conditions remain limited. Here, we develop and validate a temperature- and nutrient-dependent kinetic model for the duckweed species Wolffia angusta, integrating nutrient limitation (Monod model), temperature dependence (Arrhenius model) and internal nutrient reserve dynamics. The model was parametrized and validated through laboratory-scale batch experiments (20–30 °C), in small cylindrical plastic vessels, under varying phosphorus and nitrogen supplies, including nutrient-limiting scenarios. Temperature predominantly drives biomass production, with optimal growth observed at 25–30 °C (maximum relative growth rate of 0.427 d‾¹), while nutrient availability more strongly governs biological nutrient uptake and removal efficiency. Maximum nutrient removal rates reached 6.85 mg N L‾¹ d‾¹ and 1.85 mg P L‾¹ d‾¹ under nutrient-replete conditions. Biomass accumulation increases at the higher end of optimum temperature values, but specific nitrogen uptake rates decrease, indicating metabolic constraints. Model calibration markedly improved predictive accuracy (R² > 0.9; RPD > 2), even under nutrient-limited conditions. The model was applied to simulate a duckweed-based pond systems to polish the effluent from a hybrid anaerobic baffled reactor (HyABR) processing domestic wastewater under tropical conditions (Indonesia). Beyond predicting effluent nutrient concentrations, the model was used as a process design tool to optimize system configuration to meet local effluent discharge consents. Simulations showed that increasing the number of duckweed ponds in series reduces total hydraulic retention time and total land area while lowering per-pond productivity, with an optimal configuration of two to three ponds balancing treatment performance and resource recovery. This work advances the mechanistic understanding of Wolffia’s growth and nutrient uptake, and delivers a practical, transferable modeling framework for design and optimization of duckweed-based nutrient control units for decentralised wastewater treatment, particularly in tropical regions. The approach represents a significant step toward integrating nature-based systems into circular, sustainable water management strategies.
Metadata
| Item Type: | Article |
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| Authors/Creators: |
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| Copyright, Publisher and Additional Information: | © 2026 The Authors. Published by American Chemical Society This publication is licensed under a Creative Commons Attribution 4.0 International License. |
| Keywords: | duckweed, growth kinetics, nutrient uptake, wastewater treatment, Wolffia angusta |
| Dates: |
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| Institution: | The University of Leeds |
| Academic Units: | The University of Leeds > Faculty of Engineering & Physical Sciences (Leeds) > School of Civil Engineering (Leeds) |
| Funding Information: | Funder Grant number ESRC - Economic and Social Research Council ES/S008179/1 |
| Date Deposited: | 03 Sep 2026 15:40 |
| Last Modified: | 03 Sep 2026 15:40 |
| Published Version: | https://pubs.acs.org/aeecco/article/doi/10.1021/ac... |
| Status: | Published online |
| Publisher: | ACS |
| Identification Number: | 10.1021/acsestengg.6c00224 |
| Open Archives Initiative ID (OAI ID): | oai:eprints.whiterose.ac.uk:244905 |

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