2023, Issue 11, Volume 15

NANO-FERTILIZERS: POSSIBILITIES FOR THE SUSTAINABLE AGRICULTURE

Jitendra Singh and Beerendra Singh*

Department of Soil Science and Agricultural Chemistry

Veer Kunwar Singh, College of Agriculture, Dumraon

(Bihar Agricultural University, Sabour), Buxar-802 136, India

Email: beerendrasoil@gmail.com

Received-01.11.2023, Revised-14.11.2023, Accepted-24.11.2023

Abstract: Fertilizers and pesticides are less effective for many reasons, including inefficiency in distribution and use, and more energy requirement and water resources impacting agricultural ecosystems. Ensuring and maintaining food security is a global task, and the agricultural technologies must be changed and be effective over time due to negative factors such as climate change, population growth and decreasing in agricultural areas. Due to spiralling growth of population, the agriculture sector is facing a tremendous pressure for the food production and its economics. Nano-fertilizers may be important substances in crop production because decreasing per capita land-holding area and increasing population, conventional fertilizers having low nutrient use efficiency, causing of environmental pollution and more requirement of costly labour for their application. Recently nano-technology based products i.e. nano-fertilizers can improve plant growth and production by ensuring the distribution of nutrients in plant system. The framework is yet to be seen, because the main task in the coming years will be to create new and effective products in agriculture. They have more nutrient use efficiency.  They should improve ecological biodiversity, sustainable agriculture and food quality. They should also economic viable. This study reviews the potentiality and possibilities of nano-fertilizers for improving plant performance under abiotic stress.

Keywords: Nano-fertilizers, Nano- particles, Sustainable agriculture, Nutrient, Soil fertility

References

Abdel-Aziz, H. M. M., Hasaneen, M. N. A. and Aya, M. O. (2018). Foliar application of nano chitosan NPK fertilizer improves the yield of wheat plants grown on two different soils. Egypt. J. Exp. Biol. 14, 63–72. doi: 10.5455/egyjebb.20180106032701

Google Scholar

Adisa, I. O., Pullagurala, V. L. R., Peralta-Videa, J. R., Dimkpa, C. O., Elmer, W. H., Gardea-Torresdey, J. L., et al. (2019). Recent advances in nano-enabled fertilizers and pesticides: a critical review of mechanisms of action. Environ. Sci.: Nano. 6, 2002–2030. doi: 10.1039/C9EN00265K

Google Scholar

Aqeel, U., Aftab, T., Khan, M. M. A., Naeem, M. and Khan, M. N. (2022).A comprehensive review of impacts of diverse nanoparticles on growth, development and physiological adjustments in plants under changing environment.Chemosphere.291, 132672.doi: 10.1016/j.chemosphere.2021.132672

Google Scholar

Brady, N. C. and Weil, R. R. (1999).The Nature and Properties of Soils. 12th Ed. London: Prentice Hall Publishers. p. 1–9, 453–536, 727, 739–740.

Google Scholar

Dapkekar, A., Deshpande, P., Oak, M. D., Paknikar, K. M. and Rajwade, J. M. (2018). Zinc use efficiency is enhanced in wheat through nano fertilization. Sci. Rep. 8, 6832.doi: 10.1038/s41598-018-25247-5

Google Scholar

De Rosa, M.R., Monreal, C., Schnitzer, M., Walsh, R. and Sultan, Y.(2010).Nanotechnology in fertilizers. Nat. Nano-technol. J., 5, 91-96.

Google Scholar

El-Saadony, M. T., ALmoshadak, A. S., Shafi, M. E., Albaqami, N. M., Saad, A. M., El-Tahan, A. et al. (2021). Vital roles of sustainable nano-fertilizers in improving plant quality and quantity-an updated review. Saudi J. Biol. Sci., 28, 7349–7359.doi: 10.1016/j.sjbs.2021.08.032

Google Scholar

Fellet, G., Pilotto, L., Marchiol, L. and Braidot, E. (2021). Tools for nano-enabled agriculture: fertilizers based on calcium phosphate, silicon, and chitosan nanostructures. Agronomy,11, 1239.doi: 10.3390/agronomy11061239

Google Scholar

Huiyuan, G., Jason, C. W., Zhenyu, W. and Baoshan, X. (2018).Nano-enabled fertilizers to control the release and use efficiency of nutrients. Curr.Opin. Environ. Sci. Health, 6, 77–83. doi: 10.1016/j.coesh.2018.07.009

Google Scholar

Hussain, I., Singh, N. B., Singh, A., Singh, H. and Singh, S. C. (2016).Green synthesis of nanoparticles and its potential application. Biotechnology Letters, 38(4), 545-560.

Google Scholar

Janmohammadi, M., Amanzadeh, T., Sabaghnia, N. and Dashti, S. (2016). Impact of foliar application of nano micronutrient fertilizers and titanium dioxide nanoparticles on the growth and yield components of barley under supplemental irrigation. Acta Agric. Slov. 107, 265–276. doi: 10.14720/aas.2016.107.2.01

Google Scholar

Kah, M. and Hofmann, T. (2014). Nano-pesticides research: Current trends and future priorities. Environment International, 63, 224-235.

Google Scholar

Kalwani, M., Chakdar, H., Srivastava, A., Pabbi, S. and Shukla, P. (2022). Effects of nanofertilizers on soil and plant-associated microbial communities: Emerging trends and perspectives. Chemosphere. 287, 132107.doi: 10.1016/j.chemosphere.2021. 132107

Google Scholar

Mahapatra, D. M., Satapathy, K. C. and Panda, B. (2022).Biofertilizers and nanofertilizers for sustainable agriculture: phycoprospects and challenges. Sci. Total Environ. 803, 149990.doi:10. 1016/j.scitotenv.2021.149990

Google Scholar

Mahapatra, D. M., Satapathy, K. C. and Panda, B. (2022).Biofertilizers and nanofertilizers for sustainable agriculture: phycoprospects and challenges. Sci. Total Environ. 803, 149990.doi: 10.1016/j.scitotenv.2021.149990

Google Scholar

Mandal, D. and Lalrinchhani (2021). Nanofertilizer and its application in horticulture. J. Appl. Hortic. 23, 70–77. doi: 10.37855/jah. 2021. v23i01.14

Google Scholar

Mittal, D., Kaur, G., Singh, P., Yadav, K. and Ali, S. A. (2020). Nanoparticle-based sustainable agriculture and food science: recent advances and future outlook. Front. Nanotechnol.2, 579954.doi: 10.3389/fnano.2020.579954

Google Scholar

Rajput, V. D., Minkina, T., Kumari, A., Harish, Singh, V. K., Verma, K. K. et al. (2021a). Coping with the challenges of abiotic stress in plants: new dimensions in the field application of nanoparticles. Plants 10, 1221.doi: 10.3390/plants10061221

Google Scholar

Raliya, R., Nair, R., Chavalmane, S., Wang, W. N. and Biswas, P. (2015).Mechanistic evaluation of translocation and physiological impact of titanium dioxide and zinc oxide nanoparticles on the tomato (Solanum lycopersicum L.) plant. Metallomics 7, 1584–1594. doi: 10.1039/C5MT00168D

Google Scholar

Raliya, R., Saharan, V., Dimkpa, C. and Biswas, P. (2018). Nanofertilizer for precision and sustainable agriculture: current state and future perspectives. J. Agric. Food Chem., 66, 6487–6503 doi: 10.1021/acs.jafc.7b02178

Google Scholar

Seleiman, M. F., Almutairi, K. F., Alotaibi, M., Shami, A., Alhammad, B. A. and Battaglia, M. L. (2021). Nano-fertilization as an emerging fertilization technique: why can modern agriculture benefit from its use?.Plants.10, 2. doi: 10.3390/plants10010002

Google Scholar

Sham, S. P. (2017).Effect of foliar application of nano zinc particles on growth, yield and qualities of sunflower (Helianthus annus L.) M. Sc. (Agri.) Thesis. Dharwad, Karnataka, India: Univ. of Agric. Sci.

Google Scholar

Sharifi, R., Mohammadi, K. and Rokhzadi, A. (2016). Effect of seed priming and foliar application with micronutrients on quality of forage corn (Zea mays). Environ. Exp. Biol., 14, 151–156. doi: 10.22364/eeb.14.21

Google Scholar

Tarafdar, J. C., Raliya, R., Mahawar, H. and Rathore, I. (2014).Development of zinc nanofertilizer to enhance crop production in pearl millet (Pennisetumamericanum). Agric. Res. 3, 257–262. doi: 10.1007/s40003-014-0113-y

Google Scholar

Tarafdar, J.C. andAdhikari, T.(2015).Chapter- 27.Nanotechnology in soil science. In: Soil science an introduction, pp. 1-34

Google Scholar

Tarafder, C., Daizy, M., Alam, M. M., Ali, M. R., Islam, M. J., Islam, R. et al. (2020).Formulation of a hybrid nanofertilizer for slow and sustainable release of micronutrients. ACS Omega 5, 23960–23966. doi: 10.1021/acsomega.0c03233

Google Scholar

Vafa, Z. N., Sirousmehr, A. R., Ghanbari, A., Khammari, I. and Falahi, N. (2015).Effects of nano zinc and humic acid on quantitative and qualitative characteristics of savory (Saturejahortensis L.). Int. J. Biosci., 6, 124–136. doi: 10.12692/ijb/6.3.124-136

Google Scholar

Verma, K. K., Song, X.-P., Joshi, A., Tian, D.-D., Rajput, V. D., Singh, M. et al. (2022). Recent trends in nano-fertilizers for sustainable agriculture under climate change for global good security. Nanomaterials, 12, 173.doi: 10.3390/nano12010173

Google Scholar

Wang, J., Liu, L., Gao, X., Hao, J. and Wang, M. (2021). Elucidating the effect of biofertilizers on bacterial diversity in maize rhizosphere soil.PLoSONE. 16, e0249834. doi: 10.1371/journal.pone.0249834

Google Scholar

Wu, H. and Li, Z. (2022). Recent advances in nano-enabled agriculture for improving plant performance, The Crop J. 10, 1–12. doi: 10.1016/j.cj.2021.06.002

Google Scholar

Zulfiqar, F., Navarro, M., Ashraf, M., Akram, N. A. and Munne-Bosch, S. (2019). Nanofertilizer use for sustainable agriculture: advantages and limitations. Plant Sci., 289, 110270. doi: 10.1016/j. plantsci.2019.110270

Google Scholar