Enhancing Rice Resilience with Liquid Silica: Evidence from Systematic Literature on Yield, Stem Strength, and Sustainability

Authors

  • Rika Despita Despita Sustainable Agricultural Extension Study Program, Malang Agricultural Development Polytechnic, Indonesia
  • Yosafat Arya Saputra Sustainable Agricultural Extension Study Program, Malang Agricultural Development Polytechnic, Indonesia
  • Adistin Imroatul A'yunin Sustainable Agricultural Extension Study Program, Malang Agricultural Development Polytechnic, Indonesia
  • Yohanes Gregorius Goar Sustainable Agricultural Extension Study Program, Malang Agricultural Development Polytechnic, Indonesia
  • Sinta Dewi Muliawati Sustainable Agricultural Extension Study Program, Malang Agricultural Development Polytechnic, Indonesia

DOI:

https://doi.org/10.34145/ivas.v1i1.3984

Keywords:

Crop Yield, Fallen Paddy, Paddy Soil Fertility, Silicon Uptake, Plant Stress Tolerance

Abstract

Global rice production faces persistent constraints, including fallen paddy, silicon (Si) deficiency, and  declining soil fertility. While prior research has emphasised short-term outcomes, the long-term implications  of liquid silica remain underexplored. This study systematically reviews the effects of liquid silica application  on rice yield, stem strength, and soil sustainability, following the PRISMA 2020 protocol. Literature searches  in Scopus and Web of Science (2015–2025) were screened using inclusion–exclusion criteria, MMAT  quality appraisal, and thematic analysis via NVivo 14, resulting in 32 eligible studies. Findings indicate that  liquid silica improves yield by 4.8–58%, reinforces stem structure through lignin and cellulose deposition,  and reduces the lodging index by up to 22%. Long-term benefits include improved soil pH, cation exchange  capacity, microbial activity, heavy metal immobilization, and carbon sequestration; however, risks  associated with slag-derived fertilizers persist. Overall, liquid silica plays both productive and protective  roles. Further cross-varietal and economic studies are recommended to strengthen adoption in sustainable  rice systems.  

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References

Abdi, F., Niknezhad, Y., Fallah, H., Dastan, S., & Barari Tari, D. (2020). Field trial evidence of silicon and phosphorus application to improve rice growth and nutrients uptake in Northern Iran. Journal of Plant Nutrition, 44(9), 1268–1286. https://doi.org/10.1080/01904167.2020.1845384

Al-Khuzai, A. H. G., & Al-Juthery, H. W. A. (2020). Effect of diammonium phosphate sources and foliar spraying of nano-fertilisers on physiological and qualitative characters of rice (Oryza sativa L.). Plant Cell Biotechnology and Molecular Biology, 21(67–68), 54–69.

Ali, R., Ali, A., Ali, S., Shahzad, H., Latif, N., Khan, M. A., Waheed, M., Khan, A., & Ali, M. (2020). Effect of Silicon and Mg Fertiliser Application to Acidic Soil on Paddy Yield. Pakistan Journal of Agricultural Research, 33(1), 1–5.

Amoakwah, E., Wang, J., Chen, S., Zhou, Y., Li, C., Wu, J., & Xu, H. (2024). Long-term fertilisation and liming increase soil fertility in paddy soils. Frontiers in Soil Science, 4, 1426894. https://doi.org/10.3389/fsoil.2024.1426894

Anggria, L., Siregar, A. F., Sipahutar, I. A., Rostaman, T., Suntari, R., Fitriani, U., & Husnain. (2021). Improving rice plants using Si materials on P and Si uptake, growth and production in Ultisols. IOP Conference Series: Earth and Environmental Science, 648(1). https://doi.org/10.1088/1755-1315/648/1/012149

Aryawati, S. A. N., Sunanjaya, I. W., Yasa, I. M. R., Kamandalu, A. A. N. B., Sari, A. R. K., & Hoerudin. (2021). Growth and productivity responses to the utilisation of superior rice varieties and bio-silica application in rainfed land. IOP Conference Series: Earth and Environmental Science, 653(1). https://doi.org/10.1088/1755-1315/653/1/012138

Candra, S. D., & Musriati, T. (2021). Nano Silica application for inducing rice resistance and the possibility for Ytterbium Rare Earth Elements green mining. IOP Conference Series: Earth and Environmental Science, 905(1). https://doi.org/10.1088/1755-1315/905/1/012132

Das, S., Hwang, H. Y., Song, H. J., Cho, S. R., Van Nostrand, J. D., & Kim, P. J. (2021). Soil microbial response to silicate fertilisation reduces bioavailable arsenic in contaminated paddies. Soil Biology and Biochemistry, 159(November 2020), 108307. https://doi.org/10.1016/j.soilbio.2021.108307

Dehaghi, M. A., Gholami, M., & Arzani, A. (2018). Agromorphological response of rice to foliar potassium silicate. Biharean Biologist, 12(1), 37-44. https://biozoojournals.ro/bihbiol/cont/v12n1/bb_e151418_Dehaghi.pdf

Dong, L, Wang, X., Chen, J., Chen, Y., Zhang, Y., Xu, M., & Zhang, W. (2024). Silicon fertiliser addition can improve rice yield and lodging traits under reduced nitrogen and increased density conditions. Agronomy, 14(3), 464. https://doi.org/10.3390/agronomy14030464

Dong, Liqiang, Yang, T., Ma, L., Li, R., Feng, Y., & Li, Y. (2024). Silicon Fertiliser Addition Can Improve Rice Yield and Lodging Traits under Reduced Nitrogen and Increased Density Conditions. Agronomy, 14(3). https://doi.org/10.3390/agronomy14030464

El-Habet, H. B. I. (2021). Role of silica in mitigation of Cd, Pb and Cr toxicities in rice under irrigation with drainage water in the Egypt Nile delta*. Irrigation and Drainage, 70(1), 52–69. https://doi.org/10.1002/ird.2525

Gao, A., Chen, C., Zhang, H., Yang, B., Yu, Y., Zhang, W., & Zhao, F. J. (2023). Multi-site field trials demonstrate the effectiveness of silicon fertiliser on suppressing dimethylarsenate accumulation and mitigating straighthead disease in rice. Environmental Pollution, 316(September 2022). https://doi.org/10.1016/j.envpol.2022.120515

Ghobrial, G., Abdallah, E., & El-Feky, S. (2022). Effect of foliar application of potassium silicate at different growth stages on lodging resistance and grain yield of rice. Journal of Plant Production, 13(2), 133–141. https://jpp.journals.ekb.eg/article_252537.html

Gong, D., Zhang, X., Yao, J. P., Dai, G., Yu, G., Zhu, Q., Gao, Q., & Zheng, W. (2021). Synergistic effects of bast fibre seedling film and nano-silicon fertiliser to increase the lodging resistance and yield of rice. Scientific Reports, 11(1), 1–8. https://doi.org/10.1038/s41598-021-92342-5

Guntzer, F., Keller, C., & Meunier, J.-D. (2012). Benefits of plant silicon for crops: a review. Agronomy for Sustainable Development, 32(1), 201–213. https://doi.org/10.1007/s13593-011-0039-8 Hong, Q. N., Pluye, P., Fàbregues, S., Bartlett, G., Boardman, F., Cargo, M., Dagenais, P., Gagnon, M. P., Griffiths, F., Nicolau, B., O’Cathain, A., Rousseau, M. C., Vedel, I., & Gagnon, J. (2018). Mixed methods appraisal tool (MMAT), version 2018. User guide. McGill University. http://mixedmethodsappraisaltoolpublic.pbworks.com

Hu, H., Gao, L., Zhang, H., Zhou, X., Zheng, J., Hu, J., Hu, H., & Ma, Y. (2022). Effectiveness of Passivator Amendments and Optimised Fertilisation for Ensuring the Food Safety of Rice and Wheat from Cadmium-Contaminated Farmland. Sustainability (Switzerland), 14(22). https://doi.org/10.3390/su142215026

Jiang, Y., Yi, X.-T., Liu, M.-Y., Liu, B., Zhou, H., Zeng, P., Liao, B.-H., & Gu, J.-F. (2022). Dynamic responses of soil enzymes at key growth stages in rice after the in situ remediation of paddy soil contaminated with cadmium and arsenic. Science of The Total Environment, 830, 154633. https://doi.org/https://doi.org/10.1016/j.scitotenv.2022.154633

Jiang, Y., Zhou, H., Gu, J. F., Zeng, P., Liao, B. H., Xie, Y. H., & Ji, X. H. (2022). Combined amendment improves soil health and brown rice quality in paddy soils moderately and highly co-contaminated with Cd and As. Environmental Pollution, 295(November 2021), 118590. https://doi.org/10.1016/j.envpol.2021.118590

Jiang, B., Li, J., Zhang, H., Zhang, J., & Zhang, W. (2025). Silicon nutrition improves lodging resistance of rice under dry cultivation. Plants, 14(7), 875. https://doi.org/10.3390/plants14070875 Koyama, S., Katagiri, T., Minamikawa, K., Kato, M., & Hayashi, H. (2016). Effects of rice husk charcoal application on rice yield, methane emission, and soil carbon sequestration in andosol paddy soil. Japan Agricultural Research Quarterly, 50(4), 319–327. https://doi.org/10.6090/jarq.50.319 Koyama, S., & Hayashi, H. (2017). Rice yield and soil carbon dynamics over three years of applying rice husk charcoal to an Andosol paddy field. Plant Production Science, 20(2), 176–182. https://doi.org/10.1080/1343943X.2017.1290506

Liu, Q., Ma, H., Sun, Z., Lin, X., & Zhou, X. (2019). Translocation efficiencies and allocation of nitrogen, phosphorous and potassium in rice as affected by silicon fertiliser under high daytime temperatures. Journal of Agronomy and Crop Science, 205(2), 188–201. https://doi.org/10.1111/jac.12313

Ning, D., Liang, Y., Song, A., Duan, A., & Liu, Z. (2016). In situ stabilisation of heavy metals in multiple-metal contaminated paddy soil using different steel slag-based silicon fertilisers. Environmental Science and Pollution Research, 23(23), 23638–23647. https://doi.org/10.1007/s11356-016-7588-y

Page, M. J., McKenzie, J. E., Bossuyt, P. M., Boutron, I., Hoffmann, T. C., Mulrow, C. D., Shamseer, L., Tetzlaff, J. M., Akl, E. A., Brennan, S. E., Chou, R., Glanville, J., Grimshaw, J. M., Hróbjartsson, A., Lalu, M. M., Li, T., Loder, E. W., Mayo-Wilson, E., McDonald, S., … Moher, D. (2021). The PRISMA 2020 statement: An updated guideline for reporting systematic reviews. BMJ, 372. https://doi.org/10.1136/bmj.n71

Pan, D., Liu, C., Yu, H., & Li, F. (2019). A paddy field study of arsenic and cadmium pollution control by using iron-modified biochar and silica sol together. Environmental Science and Pollution Research, 26(24), 24979–24987. https://doi.org/10.1007/s11356-019-05381-x

Schaller, J., Wang, J., & Chen, H. (2022). Silicon as a potential limiting factor for phosphorus availability in paddy soils. Scientific Reports, 12, 20805. https://doi.org/10.1038/s41598-022-20805-4 Snyder, H. (2019). Literature review as a research methodology: An overview and guidelines. Journal of Business Research, 104, 333–339. https://doi.org/10.1016/j.jbusres.2019.07.039 Tao, S., Liang, S., Wu, X., Hou, H., Yu, W., Xiao, K., Liu, B., Yuan, S., Hu, J., & Yang, J. (2022). Enhanced silicon bioavailability of biochar derived from sludge conditioned with Fenton's reagent and lime. Science of the Total Environment, 806, 150941. https://doi.org/10.1016/j.scitotenv.2021.150941

Wang, G., Du, W., Xu, M., Ai, F., Yin, Y., & Guo, H. (2021). Integrated Assessment of Cd-contaminated Paddy Soil with Application of Combined Ameliorants: A Three-Year Field Study. Bulletin of Environmental Contamination and Toxicology, 107(6), 1236–1242. https://doi.org/10.1007/s00128- 021-03289-2

Wen, J., Zhou, Y., Meng, H., & Yue, Q. (2025). Photovoltaic cell-derived silicon fertiliser and its combined effect with silicate-dissolving bacteria Bacillus aryahattai on rice growth during the tillering stage. Waste Management, 191(October 2024), 160–171. https://doi.org/10.1016/j.wasman.2024.11.013

Xiao, Z., Peng, M., Mei, Y., Tan, L., & Liang, Y. (2021). Effect of organosilicone and mineral silicon fertilisers on chemical forms of cadmium and lead in soil and their accumulation in rice. Environmental Pollution, 283, 117107. https://doi.org/10.1016/j.envpol.2021.117107

Yang, T., Sun, G., Sun, M., Du, H., Luo, Z., Feng, Q., Zheng, Y., Zhou, J., & Long, Z. (2025). Effects of Lime, Magnesia and Silicon on Soil Acid-Neutralising Capacity and Rice Yield in Acidic Paddy Fields. Agriculture (Switzerland), 15(10), 1–13. https://doi.org/10.3390/agriculture15101042

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Published

2026-04-30

How to Cite

Despita, R. D., Saputra, Y. A., A’yunin, A. I., Goar, Y. G., & Muliawati, S. D. (2026). Enhancing Rice Resilience with Liquid Silica: Evidence from Systematic Literature on Yield, Stem Strength, and Sustainability . International Vocational Agriculture Symposium, 1(1), 121–135. https://doi.org/10.34145/ivas.v1i1.3984

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