尿素
自愈水凝胶
化学
控制释放
淀粉
肥料
水溶液
化学工程
丙烯酰胺
共聚物
氨基甲酸酯
傅里叶变换红外光谱
磷酸盐
高分子化学
核化学
聚合物
有机化学
工程类
作者
Guohua Dong,Zhonghua Mu,Dongni Liu,Luwen Shang,Wenzhi Zhang,Yueyue Gao,Ming Zhao,Xiaohong Zhang,Shijie Chen,Minghui Wei
标识
DOI:10.1016/j.ijbiomac.2021.08.234
摘要
In this work, a novel starch phosphate carbamate hydrogel (SPC-Hydrogel) and its corresponding urea hydrogel (SPCU-Hydrogel) slow-release fertilizer (SRF) were prepared by one-step free radical copolymerization of SPC and acrylamide (AM) without and with urea addition. A series of characterization measurements including FTIR, XRD, EDS, XPS are utilized to confirm the successful formation of the SPC-Hydrogel. The SEM shows SPC-Hydrogel has a porous three-dimensional network architecture. Furthermore, SPC-Hydrogel matrix exhibits superior water absorbency achieving 80.2 g/g than that (70.5 g/g) of the native starch hydrogel (NS-Hydrogel) and desirable water retention capacity in soil with a weight loss of only 48% for 13 days. Compared with pure urea and NS based urea hydrogel (NSU-Hydrogel), the SPCU-Hydrogel releases 50.3% for 15 h, achieving an almost complete release more than 25 h in aqueous phase. While only 46.6% of urea is released in 20 days which extends about 30 days in soil column assays. The maize seedlings growth assays also present an intuitive evaluation on the prominent soil water holding and plant growth promotion role of SPCU-Hydrogel. In conclusion, the present work has demonstrated a novel strategy via preparing biomass hydrogel SRF to enhance the utilization effectiveness of fertilizer and retain soil humidity.
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