Skip to main navigation menu Skip to main content Skip to site footer

Review Articles

Vol. 13 No. sp5 (2026): Recent Advances in Agriculture

Nano-silica and silicon-based biostimulants for climate-resilient rice production: Mechanisms, applications and future prospects

DOI
https://doi.org/10.14719/pst.15725
Submitted
27 May 2026
Published
24-08-2026

Abstract

Rice (Oryza sativa L.) is a staple food for over 3.5 billion people worldwide; however, its production is increasingly threatened by climate change-induced drought, soil salinity and heat stress. Silicon (Si) is a beneficial and quasi-essential element and has been researched extensively for mitigating the effects of abiotic stresses in rice. Recent advances have focused on developing highly bioavailable Si delivery systems, including nano-silica nanoparticles (SiNPs) and Si-based biostimulants. This review synthesises current knowledge on Si dynamics in soil–plant systems, the physicochemical properties of nano-silica and major application strategies reported for rice cultivation. Mechanistic areas covered include enhancement of abiotic stress tolerance (drought, salt and heat stress), activation of the antioxidant defence, maintenance of photosynthesis, nitrogen-use efficiency (NUE), hormonal signalling mechanisms and rice blast (Magnaporthe oryzae) and sheath blight (Rhizoctonia solani) resistance. Environmental safety issues, regulatory considerations and future perspectives in precision and sustainable agriculture are also discussed. The on-farm adoption barriers and key research needs are highlighted throughout. Unlike earlier reviews focused primarily on conventional Si fertilisation, this review emphasises recent advances in nano-silica technologies, Si-based biostimulants and their relevance to climate-resilient rice production.

References

  1. 1. Pontigo S, Ribera A, Gianfreda L, Mora ML, Nikolic M, Cartes P. Silicon in vascular plants: uptake, transport and its influence on growth and stress tolerance. Planta. 2015;242(1):23–37. https://doi.org/10.1007/s00425-015-2333-1
  2. 2. Munns R, Tester M. Mechanisms of salinity tolerance. Annu Rev Plant Biol. 2008;59:651–81. https://doi.org/10.1146/annurev.arplant.59.032607.092911
  3. 3. Prasad PVV, Boote KJ, Allen LH. Adverse high temperature effects on pollen viability, seed-set, seed yield and harvest index of grain-sorghum are more severe at elevated carbon dioxide due to higher tissue temperatures. Agric For Meteorol. 2006;139(3–4):237–51. https://doi.org/10.1016/j.agrformet.2006.07.003
  4. 4. Resentini F, Orozco-Arroyo G, Cucinotta M, Mendes MA. The impact of heat stress in plant reproduction. Front Plant Sci. 2023;14:1271644. https://doi.org/10.3389/fpls.2023.1271644
  5. 5. Yan G, Huang Q, Zhao S, Xu Y, He Y, Nikolic M, et al. Silicon nanoparticles in sustainable agriculture: synthesis, absorption and plant stress alleviation. Front Plant Sci. 2024;15:1393458. https://doi.org/10.3389/fpls.2024.1393458
  6. 6. Song Y, Sher M, Hu Y, Wang L, Hua Z, Zhou X, et al. Nano-scale silicon intervention for improving abiotic stress resilience in rice: mechanistic insights and practical applications. PeerJ. 2026;14:e20599. https://doi.org/10.7717/peerj.20599
  7. 7. Mitani-Ueno N, Ma JF. Silicon transport and its homeostasis in rice. Quant Plant Biol. 2024;5:e19. https://doi.org/10.1017/qpb.2024.19
  8. 8. Huang Y, Zhao L, Ye M, Hu Y, Zhang Q, Konishi H. A pericycle-localized silicon transporter for efficient xylem loading in rice. New Phytol. 2022;234(1):197–208. https://doi.org/10.1111/nph.17959
  9. 9. Xiong J, Yang X, Sun M, Zhang J, Ding L, Sun Z, et al. Mitigation effect of exogenous nano-silicon on salt stress damage of rice seedlings. Int J Mol Sci. 2025;26(1):85. https://doi.org/10.3390/ijms26010085
  10. 10. Ghouri F, Sarwar S, Sun L, Riaz M, Haider FU, Ashraf H, et al. Silicon and iron nanoparticles protect rice against lead (Pb) stress by improving oxidative tolerance and minimizing Pb uptake. Sci Rep. 2024;14:6016. https://doi.org/10.1038/s41598-024-55810-2
  11. 11. Chen R, Zhang C, Zhao Y, Huang Y, Liu Z. Foliar application with nano-silicon reduced cadmium accumulation in grains by inhibiting cadmium translocation in rice plants. Environ Sci Pollut Res. 2018;25(3):2361–8. https://doi.org/10.1007/s11356-017-0681-z
  12. 12. Cai Y, Guo L, Shi Z, Lin H, Sun Y, Zhou X. The Cd sequestration effects of rice roots affected by different Si management in Cd-contaminated paddy soil. Sci Total Environ. 2022;849:157718. https://doi.org/10.1016/j.scitotenv.2022.157718
  13. 13. Chakroborty S, Pal K, Nath N, Singh V, Barik A, Soren S, et al. Sustainable synthesis of multifunctional nanomaterials from rice wastes: a comprehensive review. Environ Sci Pollut Res. 2023;30:101523–44. https://doi.org/10.1007/s11356-023-29235-9
  14. 14. Yuan S, Hou Y, Liu S, Ma Y. A comparative study on rice husk, as agricultural waste, in the production of silica nanoparticles via different methods. Materials. 2024;17(6):1271. https://doi.org/10.3390/ma17061271
  15. 15. Kumar PS, Yassin MM, Marimuthu S, Kalarani MK, Thiyageshwari S, Meenakshi G. Eco-friendly synthesis and characterization of amorphous nanosilica from rice husk. Agric Sci Digest. 2024;43(6):790–5. https://doi.org/10.18805/ag.D-5792
  16. 16. Imoisili PE, Jen T-C. Synthesis of biogenic mesoporous silica nanoparticles from rice husks waste materials via sol-gel method. Biomass Conv Bioref. 2025;15:29191–206.
  17. 17. Dorairaj D, Govender N, Zakaria S, Wickneswari R. Green synthesis and characterization of UKMRC-8 rice husk-derived mesoporous silica nanoparticle for agricultural application. Sci Rep. 2022;12:20097. https://doi.org/10.1038/s41598-022-24484-z
  18. 18. Velasco E, Aranda X, Houben F, Ribes J, Araus JL, García-Caparros P. Interactive effects of silicon formulations, concentrations and foliar application timing on rice physiology and yield. Front Plant Sci. 2026;16:1723079. https://doi.org/10.3389/fpls.2025.1723079
  19. 19. El-Okkiah SAF, El-Afry MM, Shehab Eldeen SA, El-Tahan AM, Ibrahim OM, Negm MM, et al. Foliar spray of silica improved water stress tolerance in rice (Oryza sativa L.) cultivars. Front Plant Sci. 2022;13:935090. https://doi.org/10.3389/fpls.2022.935090
  20. 20. Mukarram M, Ahmad B, Choudhary S, Konôpková AS, Kurjak D, Khan MMA, et al. Silicon nanoparticles vs trace elements toxicity: modus operandi and its omics bases. Front Plant Sci. 2024;15:1377964. https://doi.org/10.3389/fpls.2024.1377964
  21. 21. Chaganti C, Phule AS, Chandran LP, Sonth B, Kavuru VPB, Govindannagari R, et al. Silicate solubilizing and plant growth promoting bacteria interact with biogenic silica to impart heat stress tolerance in rice by modulating physiology and gene expression. Front Microbiol. 2023;14:1168415. https://doi.org/10.3389/fmicb.2023.1168415
  22. 22. Etesami H, Jeong BR, Glick BR. Contribution of arbuscular mycorrhizal fungi, phosphate-solubilizing bacteria and silicon to P availability in the rhizosphere of crops. Front Plant Sci. 2021;12:699618. https://doi.org/10.3389/fpls.2021.699618
  23. 23. Jin W, Li L, He W, Wei Z. Application of silica nanoparticles improved the growth, yield and grain quality of two salt-tolerant rice varieties under saline irrigation. Plants. 2024;13(17):2452. https://doi.org/10.3390/plants13172452
  24. 24. Elshayb OM, Nada AM, Ibrahim HM, Amin HE, Atta AM. Application of silica nanoparticles for improving growth, yield and enzymatic antioxidant for the hybrid rice EHR1 growing under water regime conditions. Materials. 2021;14(5):1150. https://doi.org/10.3390/ma14051150
  25. 25. Wahi D, Bisht K, Gautam S, Salvi P, Lohani P. Green synthesized nano-silica: foliar and soil application provides drought recovery in rice. Environ Sci Nano. 2024;11(9):3624–38. https://doi.org/10.1039/D4EN00275J
  26. 26. Seleiman MF, Al-Selwey WA, Ibrahim AA, Shady M, Alsadon AA. Foliar applications of ZnO and SiO₂ nanoparticles mitigate water deficit and enhance potato yield and quality. Agronomy. 2023;13(2):466. https://doi.org/10.3390/agronomy13020466
  27. 27. Sharf-Eldin AA, Alwutayd KM, Abou El-Yazied A, El-Beltagi HS, Alharbi BM, Eisa MAM, et al. Response of maize seedlings to silicon dioxide nanoparticles (SiO₂NPs) under drought stress. Plants. 2023;12(14):2592. https://doi.org/10.3390/plants12142592
  28. 28. Kang Z, Lu J, Zheng S, Hu X, Wang L, Jiang L, et al. Silica-activated redox signaling confers rice with enhanced drought resilience and grain yield. ACS Nano. 2025;19(3):3752–63. https://doi.org/10.1021/acsnano.4c14608
  29. 29. Ijaz U, Ahmed T, Rizwan M, Noman M, Shah AA, Azeem F, et al. Rice straw based silicon nanoparticles improve morphological and nutrient profile of rice plants under salinity stress by triggering physiological and genetic repair mechanisms. Plant Physiol Biochem. 2023;201:107788. https://doi.org/10.1016/j.plaphy.2023.107788
  30. 30. Abdel-Haliem MEF, Hegazy HS, Hassan NS, Naguib DM. Foliar silicon ions and silica nanoparticles from rice straw alleviate salt stress in rice. Plant Physiol Biochem. 2017;118:394–405. https://doi.org/10.1016/j.plaphy.2017.06.003
  31. 31. Khan I, Awan SA, Rizwan M, Huizhi W, Ulhassan Z, Xie W. Silicon nanoparticles improved the osmolyte production, antioxidant defense system and phytohormone regulation in Elymus sibiricus (L.) under drought and salt stress. Environ Sci Pollut Res. 2024;31(6):8985–99. https://doi.org/10.1007/s11356-023-31730-y
  32. 32. Sarkar MM, Rudra P, Paul P, Dua TK, Roy S. Enhanced adaptation to salinity stress in lentil seedlings through trehalose-functionalized silica nanoparticles: exploring silica-sugar absorption and oxidative balance. Plant Physiol Biochem. 2024;206:108309. https://doi.org/10.1016/j.plaphy.2023.108309
  33. 33. Riaz M, Kamran M, Fahad S, Wang X. Nano-silicon mediated alleviation of Cd toxicity by cell wall adsorption and antioxidant defense system in rice seedlings. Plant Soil. 2022;486:315–34. https://doi.org/10.1007/s11104-022-05588-x
  34. 34. Zhao W, Wang T, Dong H, Zhao W, Song K, Zhu N. Multifunctional roles and ecological implications of nano-enabled technologies in Oryza sativa production systems: a comprehensive review. Plants. 2025;14(4):528. https://doi.org/10.3390/plants14040528
  35. 35. Du J, Liu B, Zhao T, Xu X, Lin H, Ji Y, et al. Silica nanoparticles protect rice against biotic and abiotic stresses. J Nanobiotechnol. 2022;20(1):197. https://doi.org/10.1186/s12951-022-01420-x
  36. 36. Naidu S, Pandey J, Mishra LC, Chakraborty A, Singh A, Dwivedy AK, et al. Silicon nanoparticles: synthesis, uptake and their role in mitigation of biotic stress. Ecotoxicol Environ Saf. 2023;255:114783. https://doi.org/10.1016/j.ecoenv.2023.114783
  37. 37. Ahmad F, Jabeen K, Iqbal S, Umar A, Ameen F, Gancarz M, et al. Influence of silicon nanoparticles on Avena sativa L. to alleviate the biotic stress of Rhizoctonia solani. Sci Rep. 2023;13(1):15191. https://doi.org/10.1038/s41598-023-41699-w
  38. 38. Jalil S, Nazir MM, AL-Huqail AA, Ali B, Al-Qthanin RN, Asad MAU, et al. Silicon nanoparticles alleviate cadmium toxicity in rice (Oryza sativa L.) by modulating the nutritional profile and triggering stress-responsive genetic mechanisms. Ecotoxicol Environ Saf. 2023;268:115699. https://doi.org/10.1016/j.ecoenv.2023.115699
  39. 39. He S, Lian X, Zhang B, Liu X, Yu J, Gao Y, et al. Nano silicon dioxide reduces cadmium uptake, regulates nutritional homeostasis and antioxidative enzyme system in barley seedlings (Hordeum vulgare L.) under cadmium stress. Environ Sci Pollut Res. 2023;30:67552–64. https://doi.org/10.1007/s11356-023-27130-x
  40. 40. Hosain MT, Shahid M, Sarkar MIU, Zhang H, Rahman MM, Naidu R, et al. Alleviation of cadmium accumulation in rice through the application of nano silicon derived from solar panels e-wastes. Sci Total Environ. 2025;993:179994. https://doi.org/10.1016/j.scitotenv.2025.179994
  41. 41. Cui J, Jin Q, Li F, Chen L. Silicon reduces the uptake of cadmium in hydroponically grown rice seedlings: why nanoscale silica is more effective than silicate. Environ Sci Nano. 2022;9(5):1961–73. https://doi.org/10.1039/D1EN00973G
  42. 42. Lai M, Zhou X, Zhao Q, Li H, Ling T, Zheng J. Modulation of metal transporters, oxidative stress and cell abnormalities by synergistic application of silicon and titanium oxide nanoparticles: a strategy for cadmium tolerance in rice. Chemosphere. 2023;345:140439. https://doi.org/10.1016/j.chemosphere.2023.140439
  43. 43. Ghouri F, Shahid MJ, Liu J, Sun L, Riaz M, Imran M, et al. The protective role of tetraploidy and nanoparticles in arsenic-stressed rice: evidence from RNA sequencing, ultrastructural and physiological studies. J Hazard Mater. 2023;458:132019. https://doi.org/10.1016/j.jhazmat.2023.132019
  44. 44. Liang X, Liao Q, Guo P, Yang Z, Kang S, Du T, et al. Silicon nanoparticles enhance maize yield and water productivity via regulating photosynthesis and canopy structure under mild regulated deficit irrigation. Front Plant Sci. 2026;16:1691443. https://doi.org/10.3389/fpls.2025.1691443
  45. 45. Ashraf H, Ghouri F, Liang J, Xia W, Zheng Z, Shahid MQ, et al. Silicon dioxide nanoparticles-based amelioration of cadmium toxicity by regulating antioxidant activity and photosynthetic parameters in a line developed from wild rice. Plants. 2024;13(12):1715. https://doi.org/10.3390/plants13121715

Downloads

Download data is not yet available.