Aleem, M., Hanna, N., & Sabry, S. (2000). Relationship between wheat root characteristics and grain yield in sandy and clay soils.
Alghamdi, A. G., Majrashi, M. A., & Ibrahim, H. M. (2023). Improving the Physical Properties and Water Retention of Sandy Soils by the Synergistic Utilization of Natural Clay Deposits and Wheat Straw. Sustainability, 16(1), 46.
Ali, B., Hafeez, A., Afridi, M. S., Javed, M. A., Sumaira, Suleman, F., Nadeem, M., Ali, S., Alwahibi, M. S., & Elshikh, M. S. (2023). Bacterial-mediated salinity stress tolerance in maize (Zea mays L.): A fortunate way toward sustainable agriculture. ACS omega, 8(23), 20471-20487.
Alidoust, E., Afyuni, M., Hajabbasi, M. A., & Mosaddeghi, M. R. (2019). Application of multivariate statistical methods for evaluating soil quality indices in Lordegan semiarid region. Applied Soil Research, 7(3), 192-206.
Anderson, J. P. (1982). Soil respiration. Methods of soil analysis: part 2 chemical and microbiological properties, 9, 831-871.
Babla, M., Katwal, U., Yong, M.-T., Jahandari, S., Rahme, M., Chen, Z.-H., & Tao, Z. (2022). Value-added products as soil conditioners for sustainable agriculture. Resources, conservation and recycling, 178, 106079.
Bednik, M., Medyńska-Juraszek, A., Dudek, M., Kloc, S., Kręt, A., Łabaz, B., & Waroszewski, J. (2020). Wheat straw biochar and NPK fertilization efficiency in sandy soil reclamation. Agronomy, 10(4), 496.
Bell, R., & Seng, V. (2007). The management of agroecosystems associated with sandy soils. Management of tropical sandy soils for sustainable development: proceedings of the International Conference on the Management of Tropical Sandy Soils, Khon Kaen, Thailand,
Blake, G. (1986). Bulk density. Methods of Soil Analysis. Part, 1.
Bottomley, P. J., Angle, J. S., & Weaver, R. (2020). Methods of soil analysis, Part 2: Microbiological and biochemical properties (Vol. 12). John Wiley & Sons.
Cassel, D., & Nielsen, D. (1986). Field capacity and available water capacity. Methods of soil analysis: Part 1 Physical and mineralogical methods, 5, 901-926.
Djajadi, Abbott, L. K., & Hinz, C. (2012). Synergistic impacts of clay and organic matter on structural and biological properties of a sandy soil. Geoderma, 183-184, 19-24.
El-Nagar, D. A., & Sary, D. H. (2021). Synthesis and characterization of nano bentonite and its effect on some properties of sandy soils. Soil and tillage research, 208, 104872.
Herawati, A., Mujiyo, M., Dewi, W. S., Syamsiyah, J., & Romadhon, M. R. (2024). Improving microbial properties in Psamments with mycorrhizal fungi, amendments, and fertilizer. Eurasian Journal of Soil Science, 13(1), 59-69.
Hussain, Z., Cheng, T., Irshad, M., Khattak, R. A., Yao, C., Song, D., & Mohiuddin, M. (2022). Bentonite clay with different nitrogen sources can effectively reduce nitrate leaching from sandy soil. Plos one, 17(12), e0278824.
Iqbal, R., Valipour, M., Ali, B., Zulfiqar, U., Aziz, U., Zaheer, M. S., Sarfraz, A., Javed, M. A., Afridi, M. S., & Ercisli, S. (2024). Maximizing wheat yield through soil quality enhancement: A combined approach with Azospirillum brasilense and bentonite. Plant Stress, 11, 100321.
Kaiser, H. F. (1960). The application of electronic computers to factor analysis. Educational and psychological measurement, 20(1), 141-151.
Kemper, W., & Chepil, W. (1965). Size distribution of aggregates. Methods of soil analysis: Part 1 physical and mineralogical properties, including statistics of measurement and sampling, 9, 499-510.
Khan, N., Bano, A., & Babar, M. A. (2017). The root growth of wheat plants, the water conservation and fertility status of sandy soils influenced by plant growth promoting rhizobacteria. Symbiosis, 72, 195-205.
Leech, N. L., Barrett, K. C., & Morgan, G. A. (2014). IBM SPSS for intermediate statistics: Use and interpretation. Routledge.
Lorenzi, A. S., Bonatelli, M. L., Chia, M. A., Peressim, L., & Quecine, M. C. (2022). Opposite sides of Pantoea agglomerans and its associated commercial outlook. Microorganisms, 10(10), 2072.
Malakouti, M., Moshiri, F., & Ghaibi, M. (2005). Optimum levels of nutrients in soil and some agronomic and horticultural crops. Soil and Water Research Institue. Technical Bulletin(405).
Martín-Sanz, J. P., de Santiago-Martín, A., Valverde-Asenjo, I., Quintana-Nieto, J. R., González-Huecas, C., & López-Lafuente, A. L. (2022). Comparison of soil quality indexes calculated by network and principal component analysis for carbonated soils under different uses. Ecological indicators, 143, 109374.
Martínez, J. I., Gómez-Garrido, M., Gómez-López, M. D., Faz, Á., Martínez-Martínez, S., & Acosta, J. A. (2019). Pseudomonas fluorescens affects nutrient dynamics in plant-soil system for melon production. Chilean journal of agricultural research, 79(2), 223-233.
McKissock, I., Walker, E., Gilkes, R., & Carter, D. (2000). The influence of clay type on reduction of water repellency by applied clays: a review of some West Australian work. Journal of hydrology, 231, 323-332.
Mehmood, N., Saeed, M., Zafarullah, S., Hyder, S., Rizvi, Z. F., Gondal, A. S., Jamil, N., Iqbal, R., Ali, B., & Ercisli, S. (2023). Multifaceted impacts of plant-beneficial pseudomonas spp. in managing various plant diseases and crop yield improvement. ACS omega, 8(25), 22296-22315.
Mi, J., Gregorich, E. G., Xu, S., McLaughlin, N. B., & Liu, J. (2020). Effect of bentonite as a soil amendment on field water-holding capacity, and millet photosynthesis and grain quality. Scientific Reports, 10(1), 18282.
Muhammad, H., Fahad, S., Saud, S., Hassan, S., Nasim, W., Ali, B., Hammad, H. M., Bakhat, H. F., Mubeen, M., & Khan, A. Z. (2023). A paradigm shift towards beneficial microbes enhancing the efficiency of organic and inorganic nitrogen sources for a sustainable environment. Land, 12(3), 680.
Nabiollahi, K., Taghizadeh-Mehrjardi, R., Kerry, R., & Moradian, S. (2017). Assessment of soil quality indices for salt-affected agricultural land in Kurdistan Province, Iran. Ecological indicators, 83, 482-494.
Nelson, D. W., & Sommers, L. E. (1980). Total nitrogen analysis of soil and plant tissues. Journal of the Association of Official Analytical Chemists, 63(4), 770-778.
Ngo-Mbogba, M., Yemefack, M., & Nyeck, B. (2015). Assessing soil quality under different land cover types within shifting agriculture in South Cameroon. Soil and tillage research, 150, 124-131.
Ning, S., Jumai, H., Wang, Q., Zhou, B., Su, L., Shan, Y., & Zhang, J. (2019). Comparison of the effects of polyacrylamide and sodium carboxymethylcellulose application on soil water infiltration in sandy loam soils. Advances in Polymer Technology, 2019(1), 6869454.
Olsen, S. R. (1954). Estimation of available phosphorus in soils by extraction with sodium bicarbonate. US Department of Agriculture.
Omer, A. M., Tamer, T. M., Hassan, M. E., Khalifa, R. E., Abd El-Monaem, E. M., Eltaweil, A. S., & Mohy Eldin, M. S. (2023). Fabrication of grafted carboxymethyl cellulose superabsorbent hydrogel for water retention and sustained release of ethephon in sandy soil. Arabian Journal for Science and Engineering, 48(1), 561-572.
Qin, C.-C., Abdalkarim, S. Y. H., Zhou, Y., Yu, H.-Y., & He, X. (2022). Ultrahigh water-retention cellulose hydrogels as soil amendments for early seed germination under harsh conditions. Journal of Cleaner Production, 370, 133602.
Reza, S., Baruah, U., & Singh, S. (2015). Multivariate approaches for soil fertility characterization of lower Brahmaputra valley, Assam, India. Journal of the Indian Society of Soil Science, 63(4), 379-383.
Sah, S., Krishnani, S., & Singh, R. (2021). Pseudomonas mediated nutritional and growth promotional activities for sustainable food security. Current Research in Microbial Sciences, 2, 100084.
Semalulu, O., Elobu, P., Namazzi, S., Kyebogola, S., & Mubiru, D. (2017). Higher cereal and legume yields using Ca-bentonite on sandy soils in the dry eastern Uganda: increased productivity versus profitability. J. Agric. Res, 5(2), 140-147.
Shao, F., Zeng, S., Wang, Q., Tao, W., Wu, J., Su, L., Yan, H., Zhang, Y., & Lin, S. (2023). Synergistic effects of biochar and carboxymethyl cellulose sodium (CMC) applications on improving water retention and aggregate stability in desert soils. Journal of Environmental Management, 331, 117305.
Shuman, L. (1985). Fractionation method for soil microelements. Soil science, 140(1), 11-22.
Sumner, M. E., & Miller, W. P. (1996). Cation exchange capacity and exchange coefficients. Methods of soil analysis: Part 3 Chemical methods, 5, 1201-1229.
Suzuki, S., Noble, A. D., Ruaysoongnern, S., & Chinabut, N. (2007). Improvement in water-holding capacity and structural stability of a sandy soil in Northeast Thailand. Arid Land Research and Management, 21(1), 37-49.
Walkly, A., & Black, I. (1934). An examination of digestion methods for determining soil organic matter and a proposed modification of the chromic and titration. Soil science society of America journal, 37, 29-38.
Wang, Y., Gao, M., Chen, H., Chen, Y., Wang, L., & Wang, R. (2023). Fertigation and carboxymethyl cellulose applications enhance water-use efficiency, improving soil available nutrients and maize yield in salt-affected soil. Sustainability, 15(12), 9602.
Wu, J., Tao, W., Wang, H., & Wang, Q. (2015). Influence of sodium carboxyl methyl cellulose on soil aggregate structureand soil water movement. Transactions of the Chinese Society of Agricultural Engineering, 31(2), 117-123.
Yost, J. L., & Hartemink, A. E. (2019). Soil organic carbon in sandy soils: A review. Advances in agronomy, 158, 217-310.
Zhang, L., Mi, J., Zhao, B., Cui, X., Hu, K., McLaughlin, N. B., & Liu, J. (2024). Soil Amendment Combining Bentonite and Maize Straw Improves Soil Quality Cropped to Oat in a Semi-Arid Region. Agronomy, 14(5), 1012.