Adjustable P(AM-co-NIPAM)/gelatin hydrogel soilless cultivation substrates for soybean seedling and root growth

苗木 明胶 水培 园艺 化学 农学 生物 生物化学
作者
Chao Qin,Xinyuan Kan,DELIANG XU,Ying Zhao,Yue Qi,Nan Wu,Wenlong Xu
出处
期刊:Industrial Crops and Products [Elsevier BV]
卷期号:231: 121189-121189 被引量:17
标识
DOI:10.1016/j.indcrop.2025.121189
摘要

The increasing demand for sustainable agricultural practices has intensified interest in soilless cultivation systems. However, hydroponics is unable to provide mechanical support for plant roots, and traditional soilless cultivation substrates mostly suffer from poor water retention capacity, rapid nutrient loss, and difficulty in precise control. Hydrogel-based soilless cultivation substrates show great potential for application due to their excellent water absorption, water retention and adjustable transparency. In this study, P(AM-co-NIPAM)/gelatin composite hydrogels with adjustable pore structures, mechanical strength and transparency were obtained by regulating the concentration of crosslinker. Soybean seedlings were grown on these substrates to evaluate the effects of hydrogel properties on root and shoot growth. The results demonstrate that hydrogels with optimized crosslink density possess superior mechanical properties, enhanced water retention capacity, and adequate transparency, facilitating both robust plant growth and high-resolution root system observation. We found that under the MBA content of 0.05 %, the hydrogel matrix could significantly promote the growth of aerial part and root system of soybean seedlings, and was conducive to the colonization of root bacteria. This work highlights the potential of controlled hydrogel matrices in soilless cultivation as a sustainable solution to improve root growth environments, enhance resource utilization, and enable dynamic root system studies. Given their adjustable structure and compatibility with plant growth, such hydrogels may also serve as promising candidates for future application in soilless crop production systems, particularly in scenarios where water and substrate optimization are critical to sustainable agricultural practices. • Hydrogels with adjustable properties were prepared for soilless cultivation. • The effect of crosslinker concentration on hydrogel and soybean growth was studied. • The hydrogel transparency was used to observe root dynamics.
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