Cellulose nanofibers boost soil water availability, plant growth, and irrigation water use efficiency under deficit irrigation

IF 5.7 1区 农林科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Catena Pub Date : 2025-04-01 DOI:10.1016/j.catena.2025.108998
An Thuy Ngo , Manh Cong Nguyen , Morihiro Maeda , Yasushi Mori
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Abstract

Under climate change, even previously rainfall-prone areas may experience droughts, and effective strategies are vital for soil conservation. Owing to their cutting-edge water absorption and storage properties, cellulose nanofibers (CNF) are expected to increase soil water availability and help plants resist water stress. However, the role of CNF in improving plant growth and soil water retention under various irrigation regimes is not yet known. We evaluated the effects of CNFs on plant available water (PAW), germination, plant growth, and irrigation water use efficiency (IWUE) under both adequate and deficit irrigation conditions. Plant cultivation experiments were conducted using different CNF dosages (0%, 0.1%, 0.5%, and 1.0%), irrigation levels (I100, I50, and I25), and soil types (sandy and silty loam). The results indicated that CNF significantly increased field capacity (FC) and PAW in both soil types, with PAW in CNF-amended soils increasing by up to 110% and 88% in sandy and silty loam soil, respectively, at 1% CNF dosage. In germination tests, CNF showed no phytotoxicity and supported the germination process during water stress, with enhancements of up to 64% and 163% at I50 and up to 125% and 214% at I25 in germination percentage and germination index, respectively. Plant growth experiments revealed that CNF addition helped plants resist water stress, maintaining plant height and weight close to those under full irrigation, while using 50% less water. IWUE analyses demonstrated that CNF enhanced IWUE, with increases of up to 56% under sufficient watering (I100), 169% under moderate water stress (I50), and 120% under severe water stress (I25), at 1% CNF dosage. These findings highlight the potential of CNF as a multifaceted amendment, offering practical solutions for addressing water scarcity challenges and contributing to more resilient and sustainable agricultural practices.

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纤维素纳米纤维在亏缺灌溉条件下提高土壤水分有效性、植物生长和灌溉用水效率
在气候变化的影响下,即使以前容易降雨的地区也可能经历干旱,有效的策略对土壤保持至关重要。由于其尖端的吸水和储存性能,纤维素纳米纤维(CNF)有望增加土壤水分的有效性,并帮助植物抵抗水分胁迫。然而,在各种灌溉制度下,CNF在改善植物生长和土壤保水方面的作用尚不清楚。我们评估了在充足和亏缺灌溉条件下CNFs对植物有效水分(PAW)、发芽、植物生长和灌溉水分利用效率(IWUE)的影响。采用不同CNF用量(0%、0.1%、0.5%和1.0%)、灌溉水平(I100、I50和I25)和土壤类型(沙质和粉质壤土)进行植物栽培试验。结果表明,CNF显著增加了两种土壤类型的田间容量(FC)和PAW,在CNF添加量为1%的情况下,CNF改良土壤的PAW分别增加了110%和88%。在萌发试验中,CNF在水分胁迫下无植物毒性,支持萌发过程,在I50和I25处理下,萌发率和萌发指数分别提高了64%和163%和125%和214%。植物生长试验表明,添加CNF有助于植物抵抗水分胁迫,植株高度和重量保持在与充分灌溉时相近的水平,而耗水量却减少50%。IWUE分析表明,在1%的CNF用量下,充水条件下(I100)的IWUE提高了56%,中度水分胁迫下(I50)的IWUE提高了169%,重度水分胁迫下(I25)的IWUE提高了120%。这些发现突出了CNF作为一种多方面的修正方法的潜力,它为应对水资源短缺挑战提供了切实可行的解决方案,并有助于提高农业实践的复原力和可持续性。
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来源期刊
Catena
Catena 环境科学-地球科学综合
CiteScore
10.50
自引率
9.70%
发文量
816
审稿时长
54 days
期刊介绍: Catena publishes papers describing original field and laboratory investigations and reviews on geoecology and landscape evolution with emphasis on interdisciplinary aspects of soil science, hydrology and geomorphology. It aims to disseminate new knowledge and foster better understanding of the physical environment, of evolutionary sequences that have resulted in past and current landscapes, and of the natural processes that are likely to determine the fate of our terrestrial environment. Papers within any one of the above topics are welcome provided they are of sufficiently wide interest and relevance.
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