Materials Science, Energy and Nanoengineering Department (MSN), Mohammed VI Polytechnic University (UM6P), Lot 660 - Hay Moulay Rachid, Benguerir 43150, Morocco.
Materials Science, Energy and Nanoengineering Department (MSN), Mohammed VI Polytechnic University (UM6P), Lot 660 - Hay Moulay Rachid, Benguerir 43150, Morocco.
Int J Biol Macromol. 2022 Nov 30;221:398-415. doi: 10.1016/j.ijbiomac.2022.08.194. Epub 2022 Sep 5.
To obviate adverse effects from the non-biodegradability of certain polymer-based slow-release fertilizers (SRFs) and to offset higher operational costs, the use of biopolymers as coating material has recently caught interest in the research circles. The present work aims to design a sustainable coating material based on biodegradable polymers. To this end, Alfa plant was initially exploited as a viable sustainable source for the extraction of lignin (LGe), which was in turn integrated into the development of a three-dimensional cross-linked network, including methylcellulose (MC) as a matrix and citric acid (CA) as a cross-linking agent. Then, the designed coating material was applied onto Di-ammonium Phosphate (DAP) and Triple Superphosphate (TSP) water-soluble fertilizers in a rotating pan machine. Chemical, physical, and biodegradation studies have confirmed that the coating material is environmentally-friendly. Nutrients release experiments in water as well as in soil environments have proved the effectiveness of the MC and MC/LGe coating layers in delaying the nutrients discharge. Besides, the nutrients release from coated DAP and TSP lasted longer than 30 days. Furthermore, the coating film enhanced the fertilizers mechanical resistance and boosted the soil water retention capacity. The agronomic evaluation has also confirmed their remarkable potential in enhancing wheat leaf area, chlorophyll content and biomass, in addition to the roots architecture and the final fruiting efficiency. These results showed that this hybrid composite could be used as an efficient coating material to produce slow-release fertilizers with multifunctional performances.
为了避免某些基于聚合物的缓释肥料(SRF)的不可生物降解性带来的不利影响,并抵消较高的运营成本,最近研究界对生物聚合物作为涂层材料的使用产生了兴趣。本工作旨在设计一种基于可生物降解聚合物的可持续涂层材料。为此,首先从 Alfa 植物中提取木质素(LGe),将其用作一种可行的可持续来源,然后将其整合到包括甲基纤维素(MC)作为基质和柠檬酸(CA)作为交联剂的三维交联网络的开发中。然后,将设计好的涂层材料应用于在旋转盘机上对磷酸二铵(DAP)和过磷酸钙(TSP)水溶性肥料进行包衣。化学、物理和生物降解研究证实了该涂层材料是环保的。在水和土壤环境中的养分释放实验证明了 MC 和 MC/LGe 涂层在延缓养分释放方面的有效性。此外,包衣 DAP 和 TSP 的养分释放持续时间超过 30 天。此外,涂层还增强了肥料的机械强度,并提高了土壤保水能力。农艺评估也证实了它们在提高小麦叶片面积、叶绿素含量和生物量以及根系结构和最终结实效率方面的显著潜力。这些结果表明,这种混合复合材料可用作生产具有多功能性能的缓释肥料的有效涂层材料。