环境科学
生物结皮
表土
土壤水分
生物量(生态学)
含水量
保水性
光合作用
土壤退化
土壤科学
农学
土壤肥力
护根物
干旱
植被恢复
风积作用
侵蚀控制
叶绿素
纤维素
土壤结皮
野外试验
腐蚀
土壤生物多样性
光合效率
植被(病理学)
水分
光合有效辐射
作者
Shylee Belsey,Omer Shoseyov,Hagit Zer,Shira Yochelis,Yossi Paltiel,Nir Keren,Oded Shoseyov
标识
DOI:10.1016/j.eti.2025.104501
摘要
Degraded soils in arid and semi-arid regions face growing threats from erosion and water scarcity, necessitating new strategies for rehabilitation. Biological soil crusts (biocrusts), play a critical role in stabilizing topsoil and enhancing soil function. In this study, we developed a hybrid living material by combining cellulose nano-crystals (CNC) with the desert cyanobacterium Leptolyngbya ohadii , aiming to accelerate and strengthen biocrust formation. The CNC matrix improved the dispersion and reduced the aggregation of cyanobacteria in suspension, promoting a 42% increase in dry biomass and a 34% increase in chlorophyll content over 6 days. When applied to sand, the CNC-cyanobacteria hybrid maintained photosynthetic activity (Fv/Fm = 0.4–0.45) suggesting successful application to the soil. Mechanical testing showed that the incubated hybrid material (ICCB) increased soil crust strength to 27±4 N and enhanced tensile strength to 79±8 MPa in standalone films, significantly outperforming CNC alone. Wind tunnel experiments revealed over 75% reduction in soil erosion, and moisture retention improved to 36±5% after 4 days, compared to 11±3% in control soils. Field experiment further validated sustained photosynthetic activity and a 33% increase in soil carbohydrate content over 25 days post-application. Together, these findings demonstrate that the CNC-Cyanobacteria hybrid promotes robust, photosynthetically active biocrusts and offers a biodegradable, low-cost strategy for soil stabilization and restoration in arid environments.
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