Nanoparticles in Soil Remediation: Challenges and Opportunities

Wei Xuen New, J. E. Ogbezode, Paran Gani
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Abstract

Nanoremediation emerges as a promising technology for mitigating soil contamination, encompassing various nanotechnology applications, including chemical degradation, Fenton-type oxidation, photocatalytic degradation, immobilization, and integration with bioremediation techniques like phytoremediation. In addressing soil pollution, the most extensively researched nanomaterials (NMs) are based on carbon, metal and metal oxide, nZVI, and other nanocomposites. Nevertheless, limitations accompany the use of NMs in soil remediation. To assess whether nanotechnology applications outweigh environmental threats, it is crucial to investigate potential effects of NMs on terrestrial vegetation, soil organisms, and human well-being. The impacts of NMs on ecology and the soil environment must be taken into consideration when formulating remediation strategies. Future directions for applied and fundamental studies could include developing multifaceted nanocomposites, integrating them with technologies like bioremediation. Additionally, exploring real-time control and monitoring of NMs and their efficacy in removing pollutants is worth consideration. Pursuing these avenues is vital for advancing the field of soil remediation and comprehending the impact of nanotechnology on the environment.
土壤修复中的纳米粒子:挑战与机遇
纳米修复技术是一种很有前途的缓解土壤污染的技术,它包含各种纳米技术应用,包括化学降解、芬顿式氧化、光催化降解、固定化以及与植物修复等生物修复技术的结合。在解决土壤污染问题方面,研究最广泛的纳米材料(NMs)是基于碳、金属和金属氧化物、nZVI 和其他纳米复合材料。然而,纳米材料在土壤修复中的应用也存在局限性。为了评估纳米技术的应用是否大于对环境的威胁,研究纳米材料对陆地植被、土壤生物和人类福祉的潜在影响至关重要。在制定补救策略时,必须考虑到纳米金属对生态和土壤环境的影响。未来的应用和基础研究方向可能包括开发多元纳米复合材料,并将其与生物修复等技术相结合。此外,探索实时控制和监测纳米复合材料及其去除污染物的功效也值得考虑。探索这些途径对于推动土壤修复领域的发展和了解纳米技术对环境的影响至关重要。
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