Nano-biochar interactions with contaminants in the rhizosphere and their implications for plant-soil dynamics

Hemen Sarma , Suprity Shyam , Ming Zhang , Giulia Guerriero
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Abstract

The rhizosphere hosts diverse microbes crucial for plant growth. This is because plant roots secrete organic compounds, thereby enriching the rhizosphere with essential nutrients. Biochar improves soil quality, while nano-biochar shows promise in contaminant adsorption. Its production from biochar is easily achievable through top-down methodologies including hydrothermal synthesis, ball-milling, sonication, and centrifugation. The advantages of employing nano-biochar are evident in several aspects. Nano-biochar exhibits enhanced properties such as greater surface area, increased porosity, and greater reactivity compared to bulk-biochar. This enhanced surface area allows for greater adsorption capacity, enabling nano-biochar to effectively immobilize contaminants in the environment. In this review, detailed interactions and applications of nano-biochar are summarized. Nano-biochar interacts with contaminants in the rhizosphere by electrostatic interaction, cation-π interactions and redox reactions, influencing soil microbial communities and plant resilience. Nano-biochar can adsorb contaminants from the rhizosphere, such as heavy metals and organic pollutants. Thus, it helps alleviate abiotic stresses, improves nutrient availability, and supports plant growth. Furthermore, the mechanistic processes of surface oxidation, mineral dissolution, organic matter release, and mechanical fragmentation in biochar are discussed, culminating in biochar ageing and nano-biochar formation, which creates a conducive environment for microorganisms. This review examines nano-biochar-rhizosphere interactions, highlighting their effects on plant-soil dynamics and resilience. Future research should address synthesis scalability and safety concerns to unlock nano-biochar's potential in sustainable agriculture and environmental management.

Abstract Image

根圈中的纳米生物炭相互作用及其对植物-土壤动力学的影响
根瘤层中有对植物生长至关重要的各种微生物。这是因为植物根系会分泌有机化合物,从而为根圈提供必要的养分。生物炭可以改善土壤质量,而纳米生物炭则有望吸附污染物。通过自上而下的方法,包括水热合成、球磨、超声和离心,可以很容易地从生物炭中生产出纳米生物炭。使用纳米生物炭的优势体现在几个方面。与块状生物炭相比,纳米生物炭具有更强的特性,如更大的表面积、更高的孔隙率和更强的反应活性。表面积的增大使其具有更强的吸附能力,从而使纳米生物炭能够有效固定环境中的污染物。本综述总结了纳米生物炭的详细相互作用和应用。纳米生物炭通过静电作用、阳离子-π相互作用和氧化还原反应与根圈中的污染物相互作用,影响土壤微生物群落和植物的恢复能力。纳米生物炭可以吸附根圈中的污染物,如重金属和有机污染物。因此,它有助于缓解非生物压力,改善养分供应,支持植物生长。此外,还讨论了生物炭的表面氧化、矿物溶解、有机物释放和机械破碎等机理过程,最终导致生物炭老化和纳米生物炭的形成,为微生物创造了有利的环境。本综述探讨了纳米生物炭与根瘤菌圈的相互作用,强调了它们对植物-土壤动态和恢复力的影响。未来的研究应解决综合可扩展性和安全性问题,以释放纳米生物炭在可持续农业和环境管理方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
1.80
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