- Ahmad, P., Hashem, A., Abd-Allah E.F., Alqarawi, A.A., John, R., Egamberdieva, D., and Gucel, S. 2015. Role of Trichoderma harzianum in mitigating NaCl stress in Indian mustard (Brassica juncea) through antioxidative defense system. Frontiers in Plant Science, 6:868.
- Akhtar, S.S., Andersen, M.N., and Liu, F. 2015. Biochar mitigates salinity stress in potato. Journal of Agronomy and Crop Science, 201: 368-378.
- Akhtar, S.S., Li, G., Andersen M.N., and Liu, F. 2014. Biochar enhances yield and quality of tomato under reduced irrigation. Agricultural Water Management, 138: 37-44.
- Ashraf, M. 2002. Salt tolerance of cotton: some new advances. Critical Reviews in Plant Sciences, 21:1-30.
- Ashraf, M., Athar, H.R., Harris, P.J.C., and Kwon, T.R. 2008. Some Prospective Strategies for Improving Crop Salt Tolerance. pp. 45–110. In:S. Donald, (ed.), Advances in Agronomy. Academic Press.
- Basso, A.S., Miguez, F.E., Laird, D.A., Horton, R., and Westgate, M. 2013. Assessing potential of biochar for increasing water-holding capacity of sandy soils. GCB Bioenergy, 5: 132–143.
- Cheng, Y., Cai, Z., Chang, S., Wang, J., and Zhang, J. 2012. Wheat straw and its biochar have contrasting effects on inorganic N retention and N2O production in a cultivated Black Chernozem. Biology and Fertility of Soils, 48: 941-946.
- Farrar, M.B., Wallace, H.M., Xu, C.Y., Joseph, S., Dunn, P.K., Nguyen, T.T.N. 2021. Biochar co-applied with organic amendments increased soil-plant potassium and root biomass but not crop yield. Journal of Soils and Sediments, 21: 784-798.
- Hanin, M., Ebel, C., Ngom, M., Laplaze, L., and Masmoudi, K. 2016. New insights on plant salt tolerance mechanisms and their potential use for breeding. Frontiers in Plant Science, 7:1-17.
- Hou, J., Zhang, J., Liu, X., Ma, Y., Wei, Z., Wan, H., and Liu, F. 2023. Effect of biochar addition and reduced irrigation regimes on growth, physiology and water use efficiency of cotton plants under salt stress. Industrial Crops and Products, 198:116702.
- Jien, S. H., and Wang, C.S. 2013. Effects of biochar on soil properties and erosion potential in a highly weathered soil. Catena, 110: 225–233.
- Lashari, M.S., Liu, Y., Li, L., Pan, W., Fu, J., Pan, G., Zheng, J., Zheng, J., Zhang, X., and Yu, X. 2013. Effects of amendment of biochar-manure compost in conjunction with pyroligneous solution on soil quality and wheat yield of a salt-stressed cropland from Central China Great Plain. Field Crops Research, 144: 113-118.
- Lehmann, J., Czimnik, C., Laird, B., and Sohi, S. 2009. Biochar for environmental management: science and technology. London: Earthscan, 976p.
- Lehmann, J., Gaunt, J., and Rondon, M. 2006. Biochar sequestration in terrestrial ecosystems – a review. Mitigation and Adaptation Strategies for Global Change, 11: 395-419.
- Liang, B., Lehmann, J., Solomon, D., Kinyangi, J., Grossman, J., O’Neill, B., Skjemstad, J.O., Thies, J., Luizão, F.J., Petersen, J., and Neves, E.G. 2006. Black carbon increases cation exchange capacity in soils. Soil Science Society of America Journal, 70:1719–1730.
- Lin, , Wang, Y., Sun, S., Mu, C., and Yan, X. 2017. Effects of arbuscular mycorrhizal fungi on the growth, photosynthesis and photosynthetic pigments of Leymus chinensis seedlings under salt-alkali stress and nitrogen deposition. Science of the Total Environment, 576:234–241.
- Martinsen, V., Mulder, J., Shitumbanuma, V., Sparrevik. M., Børresen, T., and Cornelissen, G. 2014. Farmer led maize biochar trials: Effect on crop yield and soil nutrients under conservation farming. Journal of Plant Nutrition and Soil Science, 177: 681-695.
- Mguis, K., Albouchi, A., Khadhri, A., Abassi, M., Yakoubi-Tej, M., Mahjoub, A., Ouerghi, Z., and Brahim, N.B. 2012. Adjustments in leaf water relations of wild wheat relative Aegilops geniculata Roth. and wheat (Triticum durum) plants grown in a salinity gradient. Australian Journal of Crop Science, 6:768-776.
- Munns, R., 2005. Genes and salt tolerance: bringing them together. New Phytologist, 167: 645–663.
- Munns, R., and Tester, M. 2008. Mechanism of salinity tolerance. The Annual Review of Plant Biology, 59: 651-681.
- Novak, J.M., and Watts, D.W. 2013. Augmenting soil water storage using uncharred switchgrass and pyrolyzed biochars. Soil Use and Management, 29: 98–104.
- Shahbaz, M., and Ashraf, M. 2013. Improving salinity tolerance in cereals. Critical Reviews in Plant Sciences, 32: 237–249.
- Sohi, S.P., Krull, E., Lopez-Capel, E., and Bol, R. 2010. A review of biochar and its use and function in soil. Advances in Agronomy, 105: 47–82.
- Wang, Q., Huo, Z., Zhang, L., Wang, J. and Zhao, Y. 2016. Impact of saline water irrigation on water use efficiency and soil salt accumulation for spring maize in arid regions of China. Agricultural Water Management, 163:125-138.
- Wang, X., Riaz, M., Babar, S., Eldesouki, Z., Liu, B., Xia, H., Li, Y., Wang, J., Xia, X., and Jiang, C. 2024. Alterations in the composition and metabolite profiles of the saline-alkali soil microbial community through biochar application. Journal of Environmental Management, 352:120033.
- Wu Y, Wang X, Zhang L, Zheng Y, Liu X and Zhang Y (2023). The critical role of biochar to mitigate the adverse impacts of drought and salinity stress in plants. Frontiers in Plant Science, 14:1163451.
- Yang, X., Liu, J., McGrouther, K., Huang, H., Lu, K., and Guo, X. 2016. Effect of biochar on the extractability of heavymetals (Cd, Cu, Pb, and zn) and enzyme activity in soil. Environmental Science and Pollution Research, 23: 974–984.
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