Efficacy of novel water-absorbing polymer amended soil for improving drought resilience of Solanum lycopersicum

Bharat Rattan, Abhisekh Saha, Sanandam Bordoloi, Ankit Garg, Lingaraj Sahoo, S. Sekharran
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Abstract

Climate change has exacerbated the frequency and duration of droughts. To sustain food production in such conditions, water storage and retention capacity of soil must be enhanced. Development of water-absorbing polymer (WAP) from coal carbon residue (fly ash) can provide an economical and environmentally friendly alternative to commercial WAP for enhancing water retention and crop yield. The main objective of this study is to evaluate the growth performance of tomato species (Solanum lycopersicum L.) under continued drought conditions in the presence of in-house developed fly ash-based WAP (FA-WAP) against that of commercially available WAP (Com-WAP). Quantification of the soil–water retention curve (SWRC) revealed an increase in plant wilting time and plant-available water content (PAWC) in the order: control soil (no amendment) < Com-WAP-amended soil < FA-WAP-amended soil. Both the WAPs positively influenced the transpiration factors of crops in terms of stomatal conductance (SC) and photosynthetic yield under continued drought conditions. The yield parameters (i.e., the number of fruits, total weight, and shoot fresh biomass) increased by 82, 106, and 115%, respectively, in the case of FA-WAP-amended soil as compared with that of the control. Nevertheless, FA-WAP provided 20% higher yield of tomato species during continued drought conditions than commercial WAP. The application of FA-WAP can be an effective strategy to impart beneficial usage of FA waste by significantly reducing the irrigation frequency and irrigation water requirement without compromising the crop yield. It also ensures sustainable water stress management for a major food crop (tomato), thereby contributing towards United Nation's Sustainable Development Goals 2, 13, and 15.

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新型吸水聚合物改性土壤对番茄茄抗旱性的影响
气候变化加剧了干旱的频率和持续时间。为了在这种条件下维持粮食生产,必须加强土壤的储水和保水能力。从煤炭渣(粉煤灰)中开发吸水聚合物(WAP)是一种经济、环保的可替代商业WAP的材料,可提高作物的保水性和产量。本研究的主要目的是评估在持续干旱条件下,番茄品种(Solanum lycopersicum L.)在自主开发的粉煤灰WAP (FA-WAP)和市售WAP (Com-WAP)存在下的生长性能。土壤-水分保持曲线(SWRC)的量化显示,植物枯萎时间和植物有效水分含量(PAWC)的增加顺序为:对照土壤(无改剂);com - wap改性土壤<;FA-WAP-amended土壤。在持续干旱条件下,两种wap对作物蒸腾因子的气孔导度和光合产量均有正向影响。与对照相比,fa - wap改良土壤的产量参数(即果实数、总重和地上部鲜生物量)分别提高了82%、106 %和115%。然而,FA-WAP在持续干旱条件下的番茄产量比商业WAP高出20%。FA- wap的应用可以是一种有效的策略,通过显着降低灌溉频率和灌溉需水量而不影响作物产量,使FA废物得到有益利用。它还确保对主要粮食作物(番茄)进行可持续的水资源压力管理,从而有助于实现联合国可持续发展目标2、13和15。
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