| [1] |
Hafeez B. 2013. Role of zinc in plant nutrition − a review. |
| [2] |
Alloway BJ. 2009. Soil factors associated with zinc deficiency in crops and humans. |
| [3] |
Khodakovskaya MV, de Silva K, Nedosekin DA, Dervishi E, Biris AS, et al. 2011. Complex genetic, photothermal, and photoacoustic analysis of nanoparticle-plant interactions. |
| [4] |
Harris D, Breese WA, Rao JVDKK. 2005. The improvement of crop yield in marginal environments using 'on-farm' seed priming: nodulation, nitrogen fixation, and disease resistance. |
| [5] |
Sihag S, Pal A, Sahewalla S, Saharan V. 2025. Synthesis and characterization of Zn-bionanocrystals: revealing pH-time release dynamics of encapsulated Zn+2 ions for sustainable applications using response surface methodology. |
| [6] |
Kumaraswamy RV, Kumari S, Choudhary RC, Pal A, Raliya R, et al. 2018. Engineered chitosan based nanomaterials: bioactivities, mechanisms and perspectives in plant protection and growth. |
| [7] |
Marthandan V, Geetha R, Kumutha K, Renganathan VG, Karthikeyan A, et al. 2020. Seed priming: a feasible strategy to enhance drought tolerance in crop plants. |
| [8] |
Clegg KM. 1956. The application of the anthrone reagent to the estimation of starch in cereals. |
| [9] |
Lowry O, Rosebrough N, Farr AL, Randall R. 1951. Protein measurement with the folin phenol reagent. |
| [10] |
Hiscox JD, Israelstam GF. 1979. A method for the extraction of chlorophyll from leaf tissue without maceration. |
| [11] |
Shuster L, Gifford RH. 1962. Changes in 3′-nucleotidase during the germination of wheat embryos. |
| [12] |
Ioannou A, Gohari G, Papaphilippou P, Panahirad S, Akbari A, et al. 2020. Advanced nanomaterials in agriculture under a changing climate: the way to the future? |
| [13] |
Abdul-Baki AA, Anderson JD. 1973. Vigor determination in soybean seed by multiple Criteria1. |
| [14] |
Ananda S, Shobha G, Shashidhara KS, Mahadimane V. 2019. Nano-cuprous oxide enhances seed germination and seedling growth in Lycopersicum esculentum plants. |
| [15] |
Yang X, Alidoust D, Wang C. 2020. Effects of iron oxide nanoparticles on the mineral composition and growth of soybean (Glycine max L.) plants. |
| [16] |
Salama HM. 2012. Effects of silver nanoparticles in some crop plants, common bean (Phaseolus vulgaris L.) and corn (Zea mays L.). International Research Journal of Biotechnology 3(10):190−197 |
| [17] |
Singh A, Sengar RS, Rajput VD, Minkina T, Singh RK. 2022. Zinc oxide nanoparticles improve salt tolerance in rice seedlings by improving physiological and biochemical indices. |
| [18] |
Smith AM, Zeeman SC. 2020. Starch: a flexible, adaptable carbon store coupled to plant growth. |
| [19] |
Rietra RPJJ, Heinen M, Dimkpa CO, Bindraban PS. 2017. Effects of nutrient antagonism and synergism on yield and fertilizer use efficiency. |
| [20] |
Sagadevan S, Imteyaz S, Murugan B, Anita Lett J, Sridewi N, et al. 2022. A comprehensive review on green synthesis of titanium dioxide nanoparticles and their diverse biomedical applications. |
| [21] |
Mahakham W, Sarmah AK, Maensiri S, Theerakulpisut P. 2017. Nanopriming technology for enhancing germination and starch metabolism of aged rice seeds using phytosynthesized silver nanoparticles. |
| [22] |
Guo H, Liu Y, Chen J, Zhu Y, Zhang Z. 2022. The effects of several metal nanoparticles on seed germination and seedling growth: a meta-analysis. |
| [23] |
Karvar M, Azari A, Rahimi A, Maddah-Hosseini S, Ahmadi-Lahijani MJ. 2021. Titanium dioxide nanoparticles (TiO2-NPs) enhance drought tolerance and grain yield of sweet corn (Zea mays L.) under deficit irrigation regimes. |
| [24] |
Zulfiqar F, Navarro M, Ashraf M, Akram NA, Munné-Bosch S. 2019. Nanofertilizer use for sustainable agriculture: advantages and limitations. |
| [25] |
Ijaz U, Ahmed T, Rizwan M, Noman M, Ali Shah A, et al. 2023. Rice straw based silicon nanoparticles improve morphological and nutrient profile of rice plants under salinity stress by triggering physiological and genetic repair mechanisms. |
| [26] |
Noori A, Donnelly T, Colbert J, Cai W, Newman LA, et al. 2020. Exposure of tomato (Lycopersicon esculentum) to silver nanoparticles and silver nitrate: physiological and molecular response. |
| [27] |
Awan S, Shahzadi K, Javad S, Tariq A, Ahmad A, et al. 2021. A preliminary study of influence of zinc oxide nanoparticles on growth parameters of Brassica oleracea var italic. |
| [28] |
Venzhik YV, Moshkov IE, Dykman LA. 2021. Gold nanoparticles in plant physiology: principal effects and prospects of application. |
| [29] |
Gibson RS. 2006. Zinc: the missing link in combating micronutrient malnutrition in developing countries. |
| [30] |
Fotopoulos V, Spanos A, Nikolaou IY, Gohari G. 2023. Chapter 8 Nanomaterials as new techniques in plant priming technology. In Engineered Nanoparticles in Agriculture, eds. Fotopoulos V, Gohari G. Berlin, Germany: De Gruyter. pp. 247−270 doi: 10.1515/9781501523229-008 |
| [31] |
Wankhade NJ, Shelar VR, Bhalerao BM, Karjule AP, Jadhav VB. 2024. A role of biosynthesized zinc oxide nanoparticles (ZnO NPs) for enhancing seed quality: a review. |
| [32] |
Nile SH, Thiruvengadam M, Wang Y, Samynathan R, Ali Shariati M, et al. 2022. Nano-priming as emerging seed priming technology for sustainable agriculture − recent developments and future perspectives. |
| [33] |
Jampílek J, Kráľová K. 2022. Impact of copper-based nanoparticles on economically important plants. In Copper Nanostructures: Next-Generation of Agrochemicals for Sustainable Agroecosystems, ed. Abd-Elsalam KA. Amsterdam: Elsevier. pp. 293−339 doi: 10.1016/b978-0-12-823833-2.00030-1 |
| [34] |
Prasad R, Bhattacharyya A, Nguyen QD. 2017. Nanotechnology in sustainable agriculture: recent developments, challenges, and perspectives. |
| [35] |
Husain Q. 2018. Nanocarriers immobilized proteases and their industrial applications: an overview. |
| [36] |
Gupta PK, Balyan HS, Sharma S, Kumar R. 2021. Biofortification and bioavailability of Zn, Fe and Se in wheat: present status and future prospects. |