Department of Earth and Environmental Sciences, Indian Institute of Science Education and Research Mohali (IISER Mohali), Knowledge City, Sector 81, SAS, Nagar, 140306, Punjab, India.
Department of Earth and Environmental Sciences, Indian Institute of Science Education and Research Mohali (IISER Mohali), Knowledge City, Sector 81, SAS, Nagar, 140306, Punjab, India; Present address: Department of Civil Engineering, Indian Institute of Technology, Delhi, 110016, New Delhi, India.
Trends Biotechnol. 2023 Apr;41(4):484-496. doi: 10.1016/j.tibtech.2022.09.001. Epub 2022 Sep 30.
The need for sustainable technological solutions for wastewater management at different scales has led to the emergence of several promising integrated bioelectrochemical technologies in the past decade. A thorough assessment of these technologies is imperative to understand their practical implementation feasibility and to identify the key challenges to prioritise the research and development work. Our multicriteria-based assessment reveals that the integrated technologies are efficient for wastewater treatment in terms of normalised land footprint [(0.31-1.39 m/population equivalent (PE))] - and energy consumption (0.18-1.49 kWH/m) as compared to the conventional biotechnologies, and suggests that they have potential for real-world application. Specifying the boundaries according to their treatment capabilities and scale-up potential besides niche application sites or geographical locations is required to expedite their transition to the real-world wastewater management sector.
为了满足不同规模的废水管理对可持续技术解决方案的需求,在过去十年中出现了几种有前途的集成生物电化学技术。彻底评估这些技术对于了解其实际实施的可行性以及确定关键挑战以优先开展研究和开发工作至关重要。我们基于多标准的评估表明,与传统生物技术相比,这些集成技术在归一化土地足迹[(0.31-1.39 m/人口当量 (PE))]和能源消耗(0.18-1.49 kWH/m)方面,对废水处理非常有效,并表明它们具有实际应用的潜力。需要根据其处理能力和扩大规模的潜力以及特定的应用地点或地理位置来限定其应用范围,以加速它们向实际的废水管理领域过渡。