Soil salinity presents a significant nutritional challenge, characterized by high sodium (Na+) levels, which hamper agricultural productivity. Zinc oxide nanoparticles (ZnO NPs) and biochar have gained attention as sustainable methods to mitigate abiotic stresses. However, there is limited information on using ZnO NPs combined with biochar to reduce salinity stress across different salinity levels ((i) non-saline, (ii) slightly saline, (iii) moderately saline, and (iv) highly saline). This study investigated the effects of applying biochar (1.3 w w−1 in soil) and ZnO NPs (priming at 50 mg l−1 and 100 mg l−1) alone and combined on the growth and nutrient availability of wheat genotypes (V1; Gohar and V2; Van) under salinity stress. Results showed that in the absence of amendments, plants experienced maximum growth retardation under slight to high salinity due to ionic, osmotic and oxidative stress, leading to reduced growth parameters (root and shoot lengths), biomass (fresh and dry weight), photosynthetic rate (via CCI analysis) and lower nutrient availability (K+), increased Na+/K+ ratio and affected stress tolerance indices (STI). Application of biochar and ZnO NPs priming improved growth, biomass (fresh and dry weight), chlorophyll content, increased K+ and decreased the Na+/K+ ratio, enhancing the STI of wheat genotypes (V1; Gohar and V2; Van) under salinity stress. Notably, the combined treatment of ZnO NPs with biochar has a more pronounced beneficial effect. Overall, both individual and combined applications of ZnO NPs and biochar proved effective and sustainable strategies to alleviate salinity stress and enhance crop growth quality.
Heavy metals, petroleum hydrocarbons, microplastics, and pesticides exhibit mutagenic, carcinogenic, immunotoxic, and teratogenic properties, leading to significant changes in the soil’s physical, chemical, and microbiological characteristics. This poses a substantial threat to overall ecosystem health. Consequently, addressing soil contamination requires the prompt adoption of sustainable physico-chemical and bio-based remediation approaches. This review provides a systematic analysis of current soil remediation methods that utilise green technologies. Particular attention is given to phytoremediation techniques, the use of soil conditioners such as biochar, hydrochar, and biopolymers, as well as the application of layered double hydroxides. The mechanisms by which these technologies mitigate pollutants such as heavy metals, organic contaminants, and nutrients are analysed, highlighting their role in enhancing soil health while minimising ecological impact. By integrating these green approaches, sustainable soil remediation can be achieved, supporting environmental restoration and agricultural productivity. This review offers valuable insights for researchers and policymakers in advancing eco-friendly soil rehabilitation strategies.
E. Kravchenko, Zi-Long Li, Tatiana Minkina et al.· Environmental Geotechnics· 0 citations
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