Role of Nanotechnology in Precision Agriculture †
Abstract
:1. Introduction
2. Examples of Nanoparticles
- Silver nanoparticles: When compared with commercial silver, silver nanoparticles have a higher antibacterial impact because of their large surface area and atoms. A wide variety of human diseases have been targeted by silver nanoparticles’ antimicrobial properties [5]. As a result, there is increased interest in using silver nanoparticles’ antibacterial properties to manage plant diseases [6].
- Zinc oxide nanoparticles: In alkaline soils containing calcium carbonate, zinc insufficiency is a prevalent micronutrient issue, negatively affecting agricultural productivity. To remediate the zinc shortage in soils, zinc fertilizers, such as zinc sulfate and zinc oxides, are often utilized.
3. Nanotechnology and Its Role
- Fertilizer delivery: The massive volumes of fertilizers delivered have greatly enhanced yield but they also harm healthy soil microbiota. Run-off and pollution make fertilizers unavailable to plants. This issue can be resolved with nanomaterial-coated fertilizers (Figure 1).
- Micronutrient supply: Micronutrients, including zinc, iron, manganese, boron, copper, molybdenum, etc., are known to be crucial for growth and development. The green revolution’s significant increase in crop yields and new agricultural techniques have led to a steady decline in soil micronutrients, including zinc, iron, and molybdenum. Micronutrient treatment on the leaves can improve absorption. Nano formulations of micronutrients can be applied as a spray to plants or added to the soil for root absorption to improve soil quality and strength [9].
- Insect pest management: Although synthetic agrochemicals have transformed agriculture, they have also created a new problem, namely insect pest resistance. For the control and supervision of insect pests in contemporary agriculture, nanoparticles hold enormous potential. PEG-coated nanoparticles have improved the insecticidal efficacy of garlic oil against Tribolium castaneum (the red flour beetle).
- Nano fungicides: Crop fungus infections significantly reduce crop productivity. Although there are several commercially accessible fungicides, their usage harms plants as well. Nanotechnology has significant potential to help with this issue. Antifungal drugs made of nanoparticles have been tested against harmful fungi. Silver nanoparticles showed a stronger antifungal impact with lower concentrations than titanium dioxide and zinc oxide nanoparticles [10].
- Nano herbicides: The largest challenge to agriculture is weeds, which reduce agricultural productivity by consuming nutrients that would otherwise be available to crop plants. Nano herbicides can play an influential role in the environmentally benign removal of weeds from crops. Environmental safety is also achieved by the encapsulation of herbicides in polymeric nanoparticles [11].
- Biosensors: Utilizing computers, sensors, remote sensing tools, global positioning systems, and precision farming to locate environmental variables to ascertain if crops are growing as efficiently as possible or accurately pinpoint the type and location of issues.
4. Conclusions
5. Future Outlooks
- The use of nanotechnologies in agriculture could make a significant contribution by addressing the issue of sustainability and climate change;
- In reality, the use of nano-scale transporters and chemicals can improve the efficient use of pesticides and fertilizers, lowering the quantity that must be sprayed while maintaining yield;
- Nanosensor technologies can promote the spread of precision agriculture and have an influence on waste reduction, leading to both the reuse of waste and more production;
- To obtain consumer approval and support for this technology, it will be crucial to involve all stakeholders, consumer groups, and non-government sectors in an open discussion.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Samreen, T.; Rasool, S.; Kanwal, S.; Riaz, S.; Sidra-Tul-Muntaha; Nazir, M.Z. Role of Nanotechnology in Precision Agriculture. Environ. Sci. Proc. 2022, 23, 17. https://doi.org/10.3390/environsciproc2022023017
Samreen T, Rasool S, Kanwal S, Riaz S, Sidra-Tul-Muntaha, Nazir MZ. Role of Nanotechnology in Precision Agriculture. Environmental Sciences Proceedings. 2022; 23(1):17. https://doi.org/10.3390/environsciproc2022023017
Chicago/Turabian StyleSamreen, Tayyaba, Sehar Rasool, Sehrish Kanwal, Safia Riaz, Sidra-Tul-Muntaha, and Muhammad Zulqernain Nazir. 2022. "Role of Nanotechnology in Precision Agriculture" Environmental Sciences Proceedings 23, no. 1: 17. https://doi.org/10.3390/environsciproc2022023017
APA StyleSamreen, T., Rasool, S., Kanwal, S., Riaz, S., Sidra-Tul-Muntaha, & Nazir, M. Z. (2022). Role of Nanotechnology in Precision Agriculture. Environmental Sciences Proceedings, 23(1), 17. https://doi.org/10.3390/environsciproc2022023017