Derleme
BibTex RIS Kaynak Göster

Tarımda Su Kıtlığına Yenilikçi Çözüm :’Hidrojeller’

Yıl 2023, Cilt: 1 Sayı: 1, 1 - 5, 30.06.2023

Öz

Günümüzde iklim değişikliğinin çok yönlü etkileri, artan gıda talebi ve nüfus artışı su tüketimini ciddi ölçüde arttırmakta, su kaynaklarının kontrolsüz şekilde azalması ise günümüz dünyasının önemli sorunlarından biri olan su kıtlığına sebep olmaktadır. Yüksek miktarda su tutabilme/salabilme, tekrar kullanılabilme, zararsız ve ekonomik olma gibi özellikleri nedeniyle hidrojellerin kullanılması su kıtlığını önlemek için son derece yenilikçi bir çözümdür. Hidrojellerin tarımsal uygulamalarda doğru ve bilinçli kullanımı; (i) tarımda su ve toprak verimliliğinin arttırılmasını (ii) doğal çevrenin güvenliğinin sağlanmasını ve arazi erozyonunun önlemesini (iii) kurak bölgelerde bitki gelişiminin ıslah edilmesini ve (iv) tarım kimyasallarının kontrollü ve etkili kullanılabilmesini sağlamaktadır. Bu derleme makalede, hidrojellerin tarımsal uygulamalarda sağladığı avantajlardan, hidrojellerin su tutma mekanizmasından ve bu konuda önceden yapılmış çalışmalardan kısaca bahsedilecektir.

Kaynakça

  • Abobatta, W., 2018. Impact of hydrogel polymer in agricultural sector. Adv. Agric. Environ. Sci. 1 (2), 59–64.
  • Ahmed, E. M. 2015. Hydrogel: Preparation, characterization, and applications: A review. Journal of Advanced Research, 6(2), 105–121.
  • Bahram, M., Mohseni, N., & Moghtader, M. 2016. An Introduction to Hydrogels and Some Recent Applications. Emerging Concepts in Analysis and Applications of Hydrogels.
  • Bauli, C. R., Lima, G. F., de Souza, A. G., Ferreira, R. R., & Rosa, D. S. 2021. Eco-friendly carboxymethyl cellulose hydrogels filled with nanocellulose or nanoclays for agriculture applications as soil conditioning and nutrient carrier and their impact on cucumber growing. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 623, 126771.
  • Beyene, A. G., Demirer, G. S., & Landry, M. P. 2016. Nanoparticle-Templated Molecular Recognition Platforms for Detection of Biological Analytes. Current Protocols in Chemical Biology, 8(3), 197– 223.
  • Chang, L., Xu, L., Liu, Y., & Qiu, D. 2021. Superabsorbent polymers used for agricultural water retention. Polymer Testing, 94, 107021.
  • Dinar, A., Tieu, A., & Huynh, H. 2019. Water scarcity impacts on global food production. Global Food Security, 23, 212–226.
  • El-Asmar, J., Jaafar, H., Bashour, I., Farran, M. T., & Saoud, I. P. 2017. Hydrogel Banding Improves Plant Growth, Survival, and Water Use Efficiency in Two Calcareous Soils. Clean- Soil, Air, Water, 45(7).
  • El-Hady, O.A., Tayel, M.Y., Lotfy, A.A., 1981. Super Gel as a soil conditioner: its effect on plant growth, enzymes activity, water use efficiency and nutrient uptake. Acta Hortic. 119 (22), 257– 266.
  • González Gómez, H., Ramírez Godina, F., Ortega Ortiz, H., Benavides Mendoza, A., Robledo Torres, V., & Cabrera De la Fuente, M. 2017. Use of Chitosan-PVA Hydrogels with Copper Nanoparticles to Improve the Growth of Grafted Watermelon. Molecules (Basel, Switzerland), 22(7).
  • Kashyap, P. L., Xiang, X., & Heiden, P. 2015. Chitosan nanoparticle based delivery systems for sustainable agriculture. International Journal of Biological Macromolecules, 77, 36–51.
  • Koupai, J. A., Eslamian, S. S., & Kazemi, J. A. 2008. Enhancing the available water content in unsaturated soil zone using hydrogel, to improve plant growth indices. Ecohydrology & Hydrobiology, 8(1), 67–75.
  • Kumari, U., Swamy, K., Gupta, A., Karri, R. R., & Meikap, B. C. 2021. Global water challenge and future perspective. Green Technologies for the Defluoridation of Water, 197–212.
  • Luo, Z. bin, Li, K., Jiang, X., & Polle, A. 2009. Ectomycorrhizal fungus (Paxillus involutus) and hydrogels affect performance of Populus euphratica exposed to drought stress. Annals of Forest Science 2009 66:1, 66(1), 106–106.
  • Montesano, F. F., Parente, A., Santamaria, P., Sannino, A., & Serio, F. 2015. Biodegradable Superabsorbent Hydrogel IncreasesWater Retention Properties of Growing Media and Plant Growth. Agriculture and Agricultural Science Procedia, 4, 451–458.
  • Neethu, T. M., Dubey, P. K., & Kaswala, A. R. 2018. Prospects and Applications of Hydrogel Technology in Agriculture. International Journal of Current Microbiology and Applied Sciences, 7(05), 3155–3162.
  • Peppas, N. A., & Hoffman, A. S. 2020. Hydrogels. Biomaterials Science, 153–166.
  • Singh, N., Agarwal, S., Jain, A., & Khan, S. 2021. 3-Dimensional cross linked hydrophilic polymeric network “hydrogels”: An agriculture boom. Agricultural Water Management, 253, 106939.
  • Song, B., Liang, H., Sun, R., Peng, P., Jiang, Y., & She, D. 2020. Hydrogel synthesis based on lignin/sodium alginate and application in agriculture. International Journal of Biological Macromolecules, 144, 219–230.
  • Wang, W., Narain, R., & Zeng, H. 2020. Hydrogels. Polymer Science and Nanotechnology: Fundamentals and Applications, 203–244.
  • Yazdani, F., Allahdadi, I., & Akbari, G. A. 2007. Impact of superabsorbent polymer on yield and growth analysis of soybean (Glycine max L.) under drought stress condition. Pakistan Journal of Biological Sciences, 10(23), 4190–4196.
  • Zhan, Y., Fu, W., Xing, Y., Ma, X., & Chen, C. 2021. Advances in versatile anti-swelling polymer hydrogels. Materials Science and Engineering: C, 127, 112208.
  • Zulfiqar, F., Zubair, M., & Ullah, R. 2021. Climate-induced water scarcity and the effectiveness of community-based water resource management. Natural Resource Governance in Asia, 343– 351

Innovative Solution to Water Scarcity in Agriculture: 'Hydrogels'

Yıl 2023, Cilt: 1 Sayı: 1, 1 - 5, 30.06.2023

Öz

Nowadays, the multifaceted effects of climate change, increasing food demand, and population growth significantly increase water consumption, and the uncontrolled decrease in water resources causes water scarcity, which is one of the important problems of today's world. The use of hydrogels is a highly innovative solution to prevent water shortages, due to their high water retention/release, reusability, and being harmless and economic. The accurate and conscious use of hydrogels in agricultural applications. (i) increases water and soil productivity in agriculture (ii) ensures the safety of the natural environment and prevents land erosion (iii) improves plant growth in arid regions and (iv) enables the use of agricultural chemicals controlled and effectively. In this review article, the advantages of hydrogels in agricultural applications, the water retention mechanism of hydrogels, and previous studies on this subject will be mentioned briefly.

Kaynakça

  • Abobatta, W., 2018. Impact of hydrogel polymer in agricultural sector. Adv. Agric. Environ. Sci. 1 (2), 59–64.
  • Ahmed, E. M. 2015. Hydrogel: Preparation, characterization, and applications: A review. Journal of Advanced Research, 6(2), 105–121.
  • Bahram, M., Mohseni, N., & Moghtader, M. 2016. An Introduction to Hydrogels and Some Recent Applications. Emerging Concepts in Analysis and Applications of Hydrogels.
  • Bauli, C. R., Lima, G. F., de Souza, A. G., Ferreira, R. R., & Rosa, D. S. 2021. Eco-friendly carboxymethyl cellulose hydrogels filled with nanocellulose or nanoclays for agriculture applications as soil conditioning and nutrient carrier and their impact on cucumber growing. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 623, 126771.
  • Beyene, A. G., Demirer, G. S., & Landry, M. P. 2016. Nanoparticle-Templated Molecular Recognition Platforms for Detection of Biological Analytes. Current Protocols in Chemical Biology, 8(3), 197– 223.
  • Chang, L., Xu, L., Liu, Y., & Qiu, D. 2021. Superabsorbent polymers used for agricultural water retention. Polymer Testing, 94, 107021.
  • Dinar, A., Tieu, A., & Huynh, H. 2019. Water scarcity impacts on global food production. Global Food Security, 23, 212–226.
  • El-Asmar, J., Jaafar, H., Bashour, I., Farran, M. T., & Saoud, I. P. 2017. Hydrogel Banding Improves Plant Growth, Survival, and Water Use Efficiency in Two Calcareous Soils. Clean- Soil, Air, Water, 45(7).
  • El-Hady, O.A., Tayel, M.Y., Lotfy, A.A., 1981. Super Gel as a soil conditioner: its effect on plant growth, enzymes activity, water use efficiency and nutrient uptake. Acta Hortic. 119 (22), 257– 266.
  • González Gómez, H., Ramírez Godina, F., Ortega Ortiz, H., Benavides Mendoza, A., Robledo Torres, V., & Cabrera De la Fuente, M. 2017. Use of Chitosan-PVA Hydrogels with Copper Nanoparticles to Improve the Growth of Grafted Watermelon. Molecules (Basel, Switzerland), 22(7).
  • Kashyap, P. L., Xiang, X., & Heiden, P. 2015. Chitosan nanoparticle based delivery systems for sustainable agriculture. International Journal of Biological Macromolecules, 77, 36–51.
  • Koupai, J. A., Eslamian, S. S., & Kazemi, J. A. 2008. Enhancing the available water content in unsaturated soil zone using hydrogel, to improve plant growth indices. Ecohydrology & Hydrobiology, 8(1), 67–75.
  • Kumari, U., Swamy, K., Gupta, A., Karri, R. R., & Meikap, B. C. 2021. Global water challenge and future perspective. Green Technologies for the Defluoridation of Water, 197–212.
  • Luo, Z. bin, Li, K., Jiang, X., & Polle, A. 2009. Ectomycorrhizal fungus (Paxillus involutus) and hydrogels affect performance of Populus euphratica exposed to drought stress. Annals of Forest Science 2009 66:1, 66(1), 106–106.
  • Montesano, F. F., Parente, A., Santamaria, P., Sannino, A., & Serio, F. 2015. Biodegradable Superabsorbent Hydrogel IncreasesWater Retention Properties of Growing Media and Plant Growth. Agriculture and Agricultural Science Procedia, 4, 451–458.
  • Neethu, T. M., Dubey, P. K., & Kaswala, A. R. 2018. Prospects and Applications of Hydrogel Technology in Agriculture. International Journal of Current Microbiology and Applied Sciences, 7(05), 3155–3162.
  • Peppas, N. A., & Hoffman, A. S. 2020. Hydrogels. Biomaterials Science, 153–166.
  • Singh, N., Agarwal, S., Jain, A., & Khan, S. 2021. 3-Dimensional cross linked hydrophilic polymeric network “hydrogels”: An agriculture boom. Agricultural Water Management, 253, 106939.
  • Song, B., Liang, H., Sun, R., Peng, P., Jiang, Y., & She, D. 2020. Hydrogel synthesis based on lignin/sodium alginate and application in agriculture. International Journal of Biological Macromolecules, 144, 219–230.
  • Wang, W., Narain, R., & Zeng, H. 2020. Hydrogels. Polymer Science and Nanotechnology: Fundamentals and Applications, 203–244.
  • Yazdani, F., Allahdadi, I., & Akbari, G. A. 2007. Impact of superabsorbent polymer on yield and growth analysis of soybean (Glycine max L.) under drought stress condition. Pakistan Journal of Biological Sciences, 10(23), 4190–4196.
  • Zhan, Y., Fu, W., Xing, Y., Ma, X., & Chen, C. 2021. Advances in versatile anti-swelling polymer hydrogels. Materials Science and Engineering: C, 127, 112208.
  • Zulfiqar, F., Zubair, M., & Ullah, R. 2021. Climate-induced water scarcity and the effectiveness of community-based water resource management. Natural Resource Governance in Asia, 343– 351
Toplam 23 adet kaynakça vardır.

Ayrıntılar

Birincil Dil Türkçe
Konular Ziraat Mühendisliği
Bölüm Derlemeler
Yazarlar

Sevgi Kemeç 0000-0002-3938-7316

Erken Görünüm Tarihi 30 Haziran 2023
Yayımlanma Tarihi 30 Haziran 2023
Yayımlandığı Sayı Yıl 2023 Cilt: 1 Sayı: 1

Kaynak Göster

APA Kemeç, S. (2023). Tarımda Su Kıtlığına Yenilikçi Çözüm :’Hidrojeller’. Iğdır Üniversitesi Tarım Bilimleri Dergisi, 1(1), 1-5.