87
Views
3
CrossRef citations to date
0
Altmetric
Original Articles

Microencapsulated soil conditioner with a water-soluble core: improving soil nutrition of crop root

, , , , &
Pages 22-35 | Received 29 Mar 2020, Accepted 07 Oct 2020, Published online: 16 Nov 2020

References

  • Altuntas, O.Y., Sumnu, G., and Sahin, S., 2017. Preparation and characterization of W/O/W type double emulsion containing PGPR–lecithin mixture as lipophilic surfactant. Journal of dispersion science and technology, 38 (4), 486–493.
  • Alvim, I.D. and Grosso, C.R.F., 2010. Microparticles obtained by complex coacervation: influence of the type of reticulation and the drying process on the release of the core material. Ciência e tecnologia de alimentos, 30 (4), 1076.
  • Backes, C., et al., 2017. Recovery of a dystrophic Red Latosol (Oxisol) and pasture as a function of gypsum in the Cerrado biome. Revista brasileira de zootecnia, 46 (4), 286–295.
  • Bai, X., et al., 2018. Recovery of ammonium in urine by biochar derived from faecal sludge and its application as soil conditioner. Waste and biomass valorization, 9 (9), 1619–1628.
  • Belscak-Cvitanovic, A., et al., 2015. Improving the controlled delivery formulations of caffeine in alginate hydrogel beads combined with pectin, carrageenan, chitosan and psyllium. Food chemistry, 167, 378–386.
  • Boguta, P., Sokołowska, Z., and Skic, K., 2017. Use of thermal analysis coupled with differential scanning calorimetry, quadrupole mass spectrometry and infrared spectroscopy (TG-DSC-QMS-FTIR) to monitor chemical properties and thermal stability of fulvic and humic acids. PLoS one, 12 (12), e0189653.
  • Chen, X., et al., 2018. Coencapsulation of (-)-epigallocatechin-3-gallate and quercetin in particle-stabilized W/O/W emulsion gels: controlled release and bioaccessibility. Journal of agricultural and food chemistry, 66 (14), 3691–3699.
  • Dawson, C.J. and Hilton, J., 2011. Fertiliser availability in a resource-limited world: production and recycling of nitrogen and phosphorus. Food policy, 36, S14–S22.
  • da Cruz, M.C.R., et al., 2019. Assessment of physicochemical characteristics, thermal stability and release profile of ascorbic acid microcapsules obtained by complex coacervation. Food hydrocolloids, 87, 71–82.
  • Dong, L., et al., 2009. Humic acids buffer the effects of urea on soil ammonia oxidizers and potential nitrification. Soil biology & biochemistry, 41 (8), 1612–1621.
  • Estevez, M., et al., 2019. Encapsulation of grape seed phenolic-rich extract within W/O/W emulsions stabilized with complexed biopolymers: evaluation of their stability and release. Food chemistry, 272, 478–487.
  • Fu, H. and Quan, X., 2006. Complexes of fulvic acid on the surface of hematite, goethite, and akaganeite: FTIR observation. Chemosphere, 63 (3), 403–410.
  • Gabbay, R.S., et al., 2018. Synchronizing the release rates of salicylate and indomethacin from degradable chitosan hydrogel and its optimization by definitive screening design. European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences, 125, 102–109.
  • Giovanela, M., et al., 2004. Elemental compositions, FT-IR spectra and thermal behaviour of sedimentary fulvic and humic acids from aquatic and terrestrial environments. Geochemical journal, 38 (3), 255–264.
  • He, Y. et al., 2016. Viability evaluation of alginate-encapsulated Pseudomonas putida Rs-198 under simulated salt-stress conditions and its effect on cotton growth. European journal of soil biology, 75, 135–141.
  • He, Y., et al., 2017. Effect of encapsulated pseudomonas putida Rs-198 strain on alleviating salt stress of cotton. Journal of plant nutrition, 40 (8), 1180–1189.
  • Hecht, H. and Srebnik, S., 2016. Structural characterization of sodium alginate and calcium alginate. Biomacromolecules, 17 (6), 2160–2167.
  • Ji, M., et al., 2019. Green synthesis, characterization and in vitro release of cinnamaldehyde/sodium alginate/chitosan nanoparticles. Food hydrocolloids, 90, 515–522.
  • Jiang, N., et al., 2015. A facile approach to remediate the microenvironment of saline–alkali soil. ACS sustainable chemistry & engineering, 3 (2), 374–380.
  • Liu, Y., et al., 2016. Bio-based barium alginate film: preparation, flame retardancy and thermal degradation behavior. Carbohydrate polymers, 139, 106–114.
  • Mazur, K., et al., 2014. Hydration of sodium alginate in aqueous solution. Macromolecules, 47 (2), 771–776.
  • Miranda, M.F.A., et al., 2018. Improvement of degraded physical attributes of a saline-sodic soil as influenced by phytoremediation and soil conditioners. Archives of agronomy and soil science, 64 (9), 1207–1221.
  • Mishra, S., et al., 2018. Applications of biopolymeric gels in agricultural sector. In: V. Thakur, M. Thakur, and S. Voicu, eds. Polymer gels. Singapore: Springer, 185–228.
  • Park, S.-J., Shin, Y.-S., and Lee, J.-R., 2001. Preparation and characterization of microcapsules containing lemon oil. Journal of colloid and interface science, 241 (2), 502–508.
  • Ravanfar, R., Comunian, T.A., and Abbaspourrad, A., 2018. Thermoresponsive, water-dispersible microcapsules with a lipid-polysaccharide shell to protect heat-sensitive colorants. Food hydrocolloids, 81, 419–428.
  • Saha, B.K., et al., 2017. Hybrid brown coal-urea fertiliser reduces nitrogen loss compared to urea alone. The science of the total environment, 601–602, 1496–1504.
  • Saha, B.K., et al., 2019. A slow release brown coal-urea fertiliser reduced gaseous N loss from soil and increased silver beet yield and N uptake. The science of the total environment, 649, 793–800.
  • Santos, M.G., et al., 2015. Microencapsulation of xylitol by double emulsion followed by complex coacervation. Food chemistry, 171, 32–39.
  • Saravanan, M. and Rao, K.P., 2010. Pectin–gelatin and alginate–gelatin complex coacervation for controlled drug delivery: Influence of anionic polysaccharides and drugs being encapsulated on physicochemical properties of microcapsules. Carbohydrate polymers, 80 (3), 808–816.
  • Tan, N.P.B., et al., 2016. Silica-based self-healing microcapsules for self-repair in concrete. Journal of applied polymer science, 133 (12), 43090.
  • Thombare, N., et al., 2018. Design and development of guar gum based novel, superabsorbent and moisture retaining hydrogels for agricultural applications. Carbohydrate polymers, 185, 169–178.
  • Toledo-Madrid, K., Gallardo-Velázquez, T., and Osorio-Revilla, G., 2018. Microencapsulation of purple cactus pear fruit (Opuntia ficus indica) extract by the combined method W/O/W double emulsion-spray drying and conventional spray drying: a comparative study. Processes, 6 (10), 189.
  • Wang, B., et al., 2018. Novel biochar-impregnated calcium alginate beads with improved water holding and nutrient retention properties. Journal of environmental management, 209, 105–111.
  • Wu, D., et al., 2015. Preparation and characterization of side-chain liquid crystal polymer/paraffin composites as form-stable phase change materials. Journal of materials chemistry A, 3 (18), 9645–9657.
  • Xiang, Y., et al., 2014. Controlling pesticide loss through nanonetworks. ACS sustainable chemistry & engineering, 2 (4), 918–924.
  • Yang, L., et al., 2016. Hydrogen bonds of sodium alginate/Antarctic krill protein composite material. Carbohydrate polymers, 142, 275–281.
  • Yang, Y., et al., 2017. Performance of matrix-based slow-release urea in reducing nitrogen loss and improving maize yields and profits. Field crops research, 212, 73–81.
  • Yang, Z., et al., 2014. Development and evaluation of novel flavour microcapsules containing vanilla oil using complex coacervation approach. Food chemistry, 145, 272–277.
  • Yong, T-w., et al., 2018. Optimized nitrogen application methods to improve nitrogen use efficiency and nodule nitrogen fixation in a maize-soybean relay intercropping system. Journal of integrative agriculture, 17 (3), 664–676.
  • Zhang, C.-J., et al., 2016. Bio-based calcium alginate nonwoven fabrics: flame retardant and thermal degradation properties. Journal of analytical and applied pyrolysis, 122, 13–23.
  • Zhang, X., et al., 2015. Managing nitrogen for sustainable development. Nature, 528 (7580), 51–59.
  • Zheng, J., et al., 2019. Effects of sodium carboxymethyl cellulose on rheological properties and gelation behaviors of sodium alginate induced by calcium ions. LWT, 103, 131–138.
  • Zhou, L., et al., 2017. Controlling the hydrolysis and loss of nitrogen fertilizer (urea) by using a nanocomposite favors plant growth. Chemsuschem, 10 (9), 2068–2079.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.