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February 22, 2026Separations0 citationsOpen Access

Separation and Reutilization of Nitrogen and Phosphorus in Stormwater/Greywater Using Chinese Herbal Plant-Based Green Roof Wetland System

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BLBingjie LiPingdingshan UniversityYPYang PuNanjing Tech UniversityBWBinjie WangWenzhou University

Key Points

  • The aim is to evaluate the efficiency of a hydroponic green roof wetland system in separating and reutilizing nitrogen and phosphorus from stormwater and greywater.
  • Constructed a pilot-scale hydroponic green roof wetland system with Mentha spicata L. and Basella alba L.
  • Tested various plant ratios to determine the optimal configuration for nutrient separation.
  • Analyzed plant biomass, nutrient separation efficiencies, and microbial diversity.
  • Achieved nitrogen separation efficiency of 82.09% and phosphorus separation efficiency of 81.90%.
  • Optimal plant ratio of 1:3 resulted in the highest biomass and greatest purification success.
  • Increased Basella alba proportion reduced microbial richness in Mentha spicata roots, enhancing its allelopathic effects.

Abstract

Stormwater and greywater are increasingly recognized as freshwater resources, and the effective separation and reutilization of nitrogen (N) and phosphorus (P) from these streams is vital for water quality improvement and urbanization sustainability. In this study, we constructed a pilot-scale hydroponic green roof wetland system planted with two economically important Chinese herbal plant species (Mentha spicata L. (ML) and Basella alba L. (BL)) to separate and reutilize N and P from synthetic stormwater/greywater. The results reveal that the highest plant biomass was obtained at an ML:BL ratio of 1:3, indicating their superior adaptation to rooftop hydroponics with synthetic stormwater/greywater. This configuration also achieved the strongest water purification, with substantial separation and reutilization efficiency of N (82.09%) and P (81.90%). Furthermore, the lowest microbial richness in the ML roots at this specific plant ratio suggested that increasing BL may enhance ML’s allelopathic effects. An increase in the BL proportion was further associated with a gradual shift in the dominant ML root-associated microorganisms toward microeukaryotic taxa. The green vegetation of the two plant species also effectively suppressed algal blooms (especially diatoms) in the hydroponic rooftop system. This study demonstrates that a Chinese herb-based green roof wetland system can effectively separate and reuse N and P from stormwater/greywater while concurrently purifying water and producing economic crops.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/699a9e9f482488d673cd4c85https://doi.org/10.3390/separations13020074
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