Eurasian Journal of Soil Science

Volume 15, Issue 3, Jun 2026, Pages 387-397
DOI: 10.18393/ejss.1944628
Stable URL: http://ejss.fess.org/10.18393/ejss.1944628
Copyright © 2026 The authors and Federation of Eurasian Soil Science Societies



Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan

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Zhapparbergenov,R., Bulanbayeva,P., Tautenov,I., Bekzhanov,S., Tokhetova,L., Yesmakhan,N., Nurymova,R., Karabayev,K., Kenzhaliyeva,B., 2026. Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan. Eurasian J Soil Sci 15(3):387-397. DOI : 10.18393/ejss.1944628
Zhapparbergenov,R.Bulanbayeva,P.,Tautenov,I.Bekzhanov,S.Tokhetova,L.Yesmakhan,N.Nurymova,R.Karabayev,K.,& Kenzhaliyeva,B. Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan Eurasian Journal of Soil Science, 15(3):387-397. DOI : 10.18393/ejss.1944628
Zhapparbergenov,R.Bulanbayeva,P.,Tautenov,I.Bekzhanov,S.Tokhetova,L.Yesmakhan,N.Nurymova,R.Karabayev,K., and ,Kenzhaliyeva,B."Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan" Eurasian Journal of Soil Science, 15.3 (2026):387-397. DOI : 10.18393/ejss.1944628
Zhapparbergenov,R.Bulanbayeva,P.,Tautenov,I.Bekzhanov,S.Tokhetova,L.Yesmakhan,N.Nurymova,R.Karabayev,K., and ,Kenzhaliyeva,B. "Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan" Eurasian Journal of Soil Science,15(Jun 2026):387-397 DOI : 10.18393/ejss.1944628
R,Zhapparbergenov.P,Bulanbayeva.I,Tautenov.S,Bekzhanov.L,Tokhetova.N,Yesmakhan.R,Nurymova.K,Karabayev.B,Kenzhaliyeva "Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan" Eurasian J. Soil Sci, vol.15, no.3, pp.387-397 (Jun 2026), DOI : 10.18393/ejss.1944628
Zhapparbergenov,Rakhmetulla ;Bulanbayeva,Perizat ;Tautenov,Ibadulla ;Bekzhanov,Serik ;Tokhetova,Laura ;Yesmakhan,Nursulu ;Nurymova,Raushan ;Karabayev,Kuanysh ;Kenzhaliyeva,Bakhytkul Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan. Eurasian Journal of Soil Science, (2026),15.3:387-397. DOI : 10.18393/ejss.1944628

How to cite

Zhapparbergenov, R., Bulanbayeva, P., Tautenov, I., Bekzhanov, S., Tokhetova, L., Yesmakhan, N., Nurymova, R., Karabayev, K., Kenzhaliyeva, B., 2026. Response of rice to phosphogypsum application rates in salt-affected paddy soil of the Kyzylorda Region, Kazakhstan. Eurasian J. Soil Sci. 15(3): 387-397. DOI : 10.18393/ejss.1944628

Author information

Rakhmetulla Zhapparbergenov , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Perizat Bulanbayeva , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Ibadulla Tautenov , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Serik Bekzhanov , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Laura Tokhetova , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Nursulu Yesmakhan , M. Auezov South Kazakhstan Research University, Shymkent, Kazakhstan
Raushan Nurymova , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan
Kuanysh Karabayev , Kazakh Research Institute of Agriculture and Plant Growing, Almaty region, Kazakhstan
Bakhytkul Kenzhaliyeva , Korkyt Ata Kyzylorda University, Kyzylorda, Kazakhstan

Publication information

Article first published online : 05 May 2026
Manuscript Accepted : 15 Apr 2026
Manuscript Received: 12 Oct 2025
DOI: 10.18393/ejss.1944628
Stable URL: http://ejss.fesss.org/10.18393/ejss.1944628

Abstract

Salt-affected soils are a major constraint to rice production in the arid irrigated environments of Central Asia, including the Kyzylorda region of Kazakhstan. This study assessed the agronomic response of rice to different phosphogypsum (PG) application rates under local paddy-field conditions. A field experiment was conducted during the 2025 growing season under a uniform nitrogen background of N120, with four treatments: 0, 2.5, 5.0, and 7.5 t PG ha⁻¹. Plant density, plant survival until harvest, grain yield, and major yield components were evaluated. The experimental soil was heavy-textured and alkaline, while the irrigation environment was salt-affected. Phosphogypsum application improved all measured agronomic traits relative to the untreated control. Plant density increased from 240 ± 8.5 plants m⁻² in the control to 255 ± 7.2, 268 ± 6.9, and 271 ± 7.8 plants m⁻² at 2.5, 5.0, and 7.5 t PG ha⁻¹, respectively. Plant survival rose from 89.4% in the control to 91.8%, 94.2%, and 96.3% with increasing PG rate. Grain yield increased from 4.28 ± 0.21 t ha⁻¹ in the control to 4.55 ± 0.18, 4.79 ± 0.15, and 4.84 ± 0.17 t ha⁻¹ at 2.5, 5.0, and 7.5 t PG ha⁻¹, respectively. Productive stems, plant height, grains per main panicle, grain weight per panicle, and 1000-grain weight also increased progressively with phosphogypsum application. The highest numerical values for grain yield and all yield components were obtained at 7.5 t ha⁻¹, although the gain over 5.0 t ha⁻¹ was relatively small. These results indicate that phosphogypsum is an effective amendment for improving rice productivity in salt-affected irrigated soils of the Kyzylorda region. Within the tested range, 7.5 t ha⁻¹ provided the strongest agronomic response, while the limited yield increment beyond 5.0 t ha⁻¹ suggests diminishing return at the highest application rate.

Keywords

Phosphogypsum, rice, salinity, grain yield, Kazakhstan.

Corresponding author

References

Aldambergenova, G.T., Tazhenova, S.K., Shomantaev, A.A., Balmakhanov, A.A., Shayanbekova, B.R., 2024. Research of water-saving and herbicide-free irrigation technology for rice crop under water deficit conditions in Kyzylorda region. Bulletin of the Korkyt Ata Kyzylorda University 69(2): 253-262.

Ali, O.A.M., Zayed, B.A., Abou El-Enin, M.M.M., El Sheikha, A.F., Kheir, A.M.S., El-Tahlawy, Y.A., Nada, W.M., Shaaban, A., 2024. Fusing genotype and soil organic/inorganic amendment to improve saline-sodic properties and rice productivity. Journal of Soil Science and Plant Nutrition 24: 2413–2436.

Bilal, E., Bellefqih, H., Bourgier, V., Mazouz, H., Dumitraş, D., Bard, F., Laborde, M., Caspar, J., Guilhot, B., Iatan, E.L., Bounakhla, M., Iancu, M.A., Marincea, Ş., Essakhraoui, M., Li, B., Diwa, R.R., Ramirez, J.D., Chernysh, Y., Chubur, V., Roubík, H., Schmidt, H., Beniazza, R., Cánovas, C.R., Nieto, J.M., Haneklaus, N., 2023. Phosphogypsum circular economy considerations: A critical review from more than 65 storage sites worldwide. Journal of Cleaner Production 414: 137561.

Bituh, T., Petrinec, B., Skoko, B., Babić, D., Rašeta, D., 2021. Phosphogypsum and its potential use in Croatia: Challenges and opportunities. Archives of Industrial Hygiene and Toxicology 72: 93–100.

Crusciol, C.A.C., Artigiani, A.C.C.A., Arf, O., Filho, A.C.A.C., Soratto, R.P., Nascente, A.S., Alvarez, R.C.F., 2016. Soil fertility, plant nutrition, and grain yield of upland rice affected by surface application of lime, silicate, and phosphogypsum in a tropical no-till system. Catena 137: 87–99.

Duan, G., Liu, M., Liang, Z., Wang, M., Yang, H., Xu, Y., Yu, T., Jin, Y., Hu, J., Liu, J., 2023. Amendments of severe saline-sodic paddy land: Optimal combination of phosphogypsum, farmyard fertilizer, and wood peat. Agronomy 13(5): 1364.

FAO, 2015. Status of the World’s Soil Resources (SWSR) – Main Report. Food and Agriculture Organization of the United Nations, Rome, Italy. 608p. Available at [Access date: 13.10.2025]: https://openknowledge.fao.org/server/api/core/bitstreams/6ec24d75-19bd-4f1f-b1c5-5becf50d0871/content

Ghafoor, A., Murtaza, G., Ahmad, B., Boers, T.M., 2008. Evaluation of amelioration treatments and economic aspects of using saline-sodic water for rice and wheat production on salt-affected soils under arid land conditions. Irrigation and Drainage 57(4): 424–434.

Goiba, P.K., Prakash, N.B., Dhumgond, P., Shruthi, Yogesh, G.S., 2022. Application of slag-based gypsum in rice crop and its effect on growth, yield and nutrient availability in acidic, neutral and alkaline soils. Communications in Soil Science and Plant Analysis 54: 1510–1524.

GOST 18164-72. Drinking water. Method for determination of total solids content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-15697-gost-18164-72.aspx

GOST 26449.1-85. Stationary distillation desalting units. methods of saline water chemical analysis. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-20069-gost-264491-85.aspx

GOST 4151-72. Drinking water. Method for determination of total hardness. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-53230-gost-4151-72.aspx

GOST 4245-72. Drinking water. Method for determination of chloride content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-16083-gost-4245-72.aspx

GOST 4389-72. Drinking water. Methods for determination of sulfate content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-62245-gost-4389-72.aspx

Grattan, S.R, Zeng, L., Shannon, M.C., Roberts, S.R., 2002. Rice is more sensitive to salinity than previously thought. California Agriculture 56(6): 189–195.

Hafez, E., Hassan, W., Gaafar, I., Seleiman, M., 2015. Effect of gypsum application and irrigation intervals on clay saline-sodic soil characterization, rice water use efficiency, growth, and yield. Journal of Agricultural Science 7(12): 208–219.

Hasana, H., Beyene, S., Kifilu, A., Kidanu, S., 2022. Effect of phosphogypsum amendment on chemical properties of sodic soils at different incubation periods. Applied and Environmental Soil Science Article ID 9097994.

Hentati, O., Abrantes, N., Caetano, A.L., Bouguerra, S., Gonçalves, F., Römbke, J., Pereira, R., 2015. Phosphogypsum as a soil fertilizer: Ecotoxicity of amended soil and elutriates to bacteria, invertebrates, algae and plants. Journal of Hazardous Materials 294: 80–89.

Hossain, M.B., Sarker, R.R., 2016. Organic and inorganic amendments on rice (Oryza sativa L.) and soil in salt affected areas of Bangladesh. Journal of Environmental Science and Natural Resources 8: 109–113.

Huang, L., Liu, Y., Ferreira, J., Wang, M., Na, J., Huang, J., Liang, Z., 2022. Long-term combined effects of tillage and rice cultivation with phosphogypsum or farmyard manure on the concentration of salts, minerals, and heavy metals of saline-sodic paddy fields in Northeast China. Soil and Tillage Research 217: 105222.

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Abstract

Salt-affected soils are a major constraint to rice production in the arid irrigated environments of Central Asia, including the Kyzylorda region of Kazakhstan. This study assessed the agronomic response of rice to different phosphogypsum (PG) application rates under local paddy-field conditions. A field experiment was conducted during the 2025 growing season under a uniform nitrogen background of N120, with four treatments: 0, 2.5, 5.0, and 7.5 t PG ha⁻¹. Plant density, plant survival until harvest, grain yield, and major yield components were evaluated. The experimental soil was heavy-textured and alkaline, while the irrigation environment was salt-affected. Phosphogypsum application improved all measured agronomic traits relative to the untreated control. Plant density increased from 240 ± 8.5 plants m⁻² in the control to 255 ± 7.2, 268 ± 6.9, and 271 ± 7.8 plants m⁻² at 2.5, 5.0, and 7.5 t PG ha⁻¹, respectively. Plant survival rose from 89.4% in the control to 91.8%, 94.2%, and 96.3% with increasing PG rate. Grain yield increased from 4.28 ± 0.21 t ha⁻¹ in the control to 4.55 ± 0.18, 4.79 ± 0.15, and 4.84 ± 0.17 t ha⁻¹ at 2.5, 5.0, and 7.5 t PG ha⁻¹, respectively. Productive stems, plant height, grains per main panicle, grain weight per panicle, and 1000-grain weight also increased progressively with phosphogypsum application. The highest numerical values for grain yield and all yield components were obtained at 7.5 t ha⁻¹, although the gain over 5.0 t ha⁻¹ was relatively small. These results indicate that phosphogypsum is an effective amendment for improving rice productivity in salt-affected irrigated soils of the Kyzylorda region. Within the tested range, 7.5 t ha⁻¹ provided the strongest agronomic response, while the limited yield increment beyond 5.0 t ha⁻¹ suggests diminishing return at the highest application rate.

Keywords: Phosphogypsum, rice, salinity, grain yield, Kazakhstan.

References

Aldambergenova, G.T., Tazhenova, S.K., Shomantaev, A.A., Balmakhanov, A.A., Shayanbekova, B.R., 2024. Research of water-saving and herbicide-free irrigation technology for rice crop under water deficit conditions in Kyzylorda region. Bulletin of the Korkyt Ata Kyzylorda University 69(2): 253-262.

Ali, O.A.M., Zayed, B.A., Abou El-Enin, M.M.M., El Sheikha, A.F., Kheir, A.M.S., El-Tahlawy, Y.A., Nada, W.M., Shaaban, A., 2024. Fusing genotype and soil organic/inorganic amendment to improve saline-sodic properties and rice productivity. Journal of Soil Science and Plant Nutrition 24: 2413–2436.

Bilal, E., Bellefqih, H., Bourgier, V., Mazouz, H., Dumitraş, D., Bard, F., Laborde, M., Caspar, J., Guilhot, B., Iatan, E.L., Bounakhla, M., Iancu, M.A., Marincea, Ş., Essakhraoui, M., Li, B., Diwa, R.R., Ramirez, J.D., Chernysh, Y., Chubur, V., Roubík, H., Schmidt, H., Beniazza, R., Cánovas, C.R., Nieto, J.M., Haneklaus, N., 2023. Phosphogypsum circular economy considerations: A critical review from more than 65 storage sites worldwide. Journal of Cleaner Production 414: 137561.

Bituh, T., Petrinec, B., Skoko, B., Babić, D., Rašeta, D., 2021. Phosphogypsum and its potential use in Croatia: Challenges and opportunities. Archives of Industrial Hygiene and Toxicology 72: 93–100.

Crusciol, C.A.C., Artigiani, A.C.C.A., Arf, O., Filho, A.C.A.C., Soratto, R.P., Nascente, A.S., Alvarez, R.C.F., 2016. Soil fertility, plant nutrition, and grain yield of upland rice affected by surface application of lime, silicate, and phosphogypsum in a tropical no-till system. Catena 137: 87–99.

Duan, G., Liu, M., Liang, Z., Wang, M., Yang, H., Xu, Y., Yu, T., Jin, Y., Hu, J., Liu, J., 2023. Amendments of severe saline-sodic paddy land: Optimal combination of phosphogypsum, farmyard fertilizer, and wood peat. Agronomy 13(5): 1364.

FAO, 2015. Status of the World’s Soil Resources (SWSR) – Main Report. Food and Agriculture Organization of the United Nations, Rome, Italy. 608p. Available at [Access date: 13.10.2025]: https://openknowledge.fao.org/server/api/core/bitstreams/6ec24d75-19bd-4f1f-b1c5-5becf50d0871/content

Ghafoor, A., Murtaza, G., Ahmad, B., Boers, T.M., 2008. Evaluation of amelioration treatments and economic aspects of using saline-sodic water for rice and wheat production on salt-affected soils under arid land conditions. Irrigation and Drainage 57(4): 424–434.

Goiba, P.K., Prakash, N.B., Dhumgond, P., Shruthi, Yogesh, G.S., 2022. Application of slag-based gypsum in rice crop and its effect on growth, yield and nutrient availability in acidic, neutral and alkaline soils. Communications in Soil Science and Plant Analysis 54: 1510–1524.

GOST 18164-72. Drinking water. Method for determination of total solids content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-15697-gost-18164-72.aspx

GOST 26449.1-85. Stationary distillation desalting units. methods of saline water chemical analysis. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-20069-gost-264491-85.aspx

GOST 4151-72. Drinking water. Method for determination of total hardness. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-53230-gost-4151-72.aspx

GOST 4245-72. Drinking water. Method for determination of chloride content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-16083-gost-4245-72.aspx

GOST 4389-72. Drinking water. Methods for determination of sulfate content. Available at [Access date: 13.10.2025]: https://www.russiangost.com/p-62245-gost-4389-72.aspx

Grattan, S.R, Zeng, L., Shannon, M.C., Roberts, S.R., 2002. Rice is more sensitive to salinity than previously thought. California Agriculture 56(6): 189–195.

Hafez, E., Hassan, W., Gaafar, I., Seleiman, M., 2015. Effect of gypsum application and irrigation intervals on clay saline-sodic soil characterization, rice water use efficiency, growth, and yield. Journal of Agricultural Science 7(12): 208–219.

Hasana, H., Beyene, S., Kifilu, A., Kidanu, S., 2022. Effect of phosphogypsum amendment on chemical properties of sodic soils at different incubation periods. Applied and Environmental Soil Science Article ID 9097994.

Hentati, O., Abrantes, N., Caetano, A.L., Bouguerra, S., Gonçalves, F., Römbke, J., Pereira, R., 2015. Phosphogypsum as a soil fertilizer: Ecotoxicity of amended soil and elutriates to bacteria, invertebrates, algae and plants. Journal of Hazardous Materials 294: 80–89.

Hossain, M.B., Sarker, R.R., 2016. Organic and inorganic amendments on rice (Oryza sativa L.) and soil in salt affected areas of Bangladesh. Journal of Environmental Science and Natural Resources 8: 109–113.

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