Sasi Syamlal, Prasad Karthika, Weerasinghe Janith, Bazaka Olha, Ivanova Elena P, Levchenko Igor, Bazaka Kateryna
Product Development, BudMore Pty Ltd, Brisbane, QLD 4000, Australia; School of Engineering, College of Engineering and Computer Science, The Australian National University, Canberra, ACT 2600, Australia.
Product Development, BudMore Pty Ltd, Brisbane, QLD 4000, Australia; School of Engineering, College of Engineering and Computer Science, The Australian National University, Canberra, ACT 2600, Australia.
Trends Biotechnol. 2023 Jan;41(1):46-62. doi: 10.1016/j.tibtech.2022.08.001. Epub 2022 Sep 6.
Global environmental, social, and economic challenges call for innovative solutions to food production. Current food production systems require advances beyond traditional paradigms, acknowledging the complexity arising from sustainability and a present lack of awareness about technologies that may help limit, for example, loss of nutrients from soil. Aquaponics, a closed-loop system that combines aquaculture with hydroponics, is a step towards the more efficient management of scarce water, land, and nutrient resources. However, its large-scale use is currently limited by several significant challenges of maintaining desirable water chemistry and pH, managing infections in fish and plants, and increasing productivity efficiently, economically, and sustainably. This paper investigates the opportunities presented by plasma technologies in meeting these challenges, potentially opening new pathways for sustainability in food production.
全球环境、社会和经济挑战要求创新粮食生产解决方案。当前的粮食生产系统需要超越传统模式,认识到可持续性带来的复杂性以及目前对有助于减少土壤养分流失等技术缺乏认识的问题。鱼菜共生是一种将水产养殖与水培相结合的闭环系统,是朝着更高效管理稀缺的水、土地和养分资源迈出的一步。然而,目前其大规模应用受到维持理想水质化学和pH值、管理鱼类和植物感染以及高效、经济和可持续地提高生产力等几个重大挑战的限制。本文研究了等离子体技术在应对这些挑战方面所带来的机遇,有可能为粮食生产的可持续性开辟新途径。