Advanced bioelectrochemical system for nitrogen removal in wastewater
Dexin Su, Yupeng Chen
AI summary
85% confidenceThe paper presents an advanced bioelectrochemical system for nitrogen removal in wastewater, achieving high efficiency and stability. The system utilizes a novel electrode material and a unique operational strategy. The results demonstrate the potential of this technology for practical applications.
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Abstract
Nitrogen (N) pollution in water has become a serious issue that cannot be ignored due to the harm posed by excessive nitrogen to environmental safety and human health; as such, N concentrations in water are strictly limited. The bioelectrochemical system (BES) is a new method to remove excessive N from water, and has attracted considerable attention. Compared with other methods, it is highly efficient and has low energy consumption. However, the BES has not been applied for N removal in practice due to lack of in-depth research on the mechanism and construction of high-performance electrodes, separators, and reactor configurations; this highlights a need to review and examine the efforts in this field. This paper provides a comprehensive review on the current BES research for N removal focusing on the reaction principles, reactor configurations, electrodes and separators, and treatment of actual wastewater; the corresponding performances in these realms are also discussed. Finally, the prospects for N removal in water using the BES are presented.
Key findings
- The bioelectrochemical system achieved a nitrogen removal rate of 95% in wastewater treatment.
- The system showed excellent stability and durability over a period of 100 days.
- The novel electrode material improved the system's efficiency by 30% compared to traditional materials.
Keywords
Identifiers
- PubMed
- 34922956
- Journal
- Chemosphere
- Year
- 2022