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一种可降解的反硫化共聚物作为在优化条件下生产的尿素的涂层材料。

A Degradable Inverse Vulcanized Copolymer as a Coating Material for Urea Produced under Optimized Conditions.

作者信息

Ghumman Ali Shaan Manzoor, Shamsuddin Rashid, Nasef Mohamed Mahmoud, Krivoborodov Efrem G, Ahmad Sohaira, Zanin Alexey A, Mezhuev Yaroslav O, Abbasi Amin

机构信息

Chemical Engineering Department, Universiti Teknologi PETRONAS, Bandar Seri Iskandar 32610, Perak Darul Ridzuan, Malaysia.

HICoE, Centre for Biofuel and Biochemical Research (CBBR), Institute of Sustainable Building, Universiti Teknologi PETRONAS, Seri Iskandar 32610, Perak, Malaysia.

出版信息

Polymers (Basel). 2021 Nov 22;13(22):4040. doi: 10.3390/polym13224040.

Abstract

Global enhancement of crop yield is achieved using chemical fertilizers; however, agro-economy is affected due to poor nutrient uptake efficacy (NUE), which also causes environmental pollution. Encapsulating urea granules with hydrophobic material can be one solution. Additionally, the inverse vulcanized copolymer obtained from vegetable oils are a new class of green sulfur-enriched polymer with good biodegradation and better sulfur oxidation potential, but they possess unreacted sulfur, which leads to void generations. In this study, inverse vulcanization reaction conditions to minimize the amount of unreacted sulfur through response surface methodology (RSM) is optimized. The copolymer obtained was then characterized using Fourier transform infrared spectroscopy (FTIR), thermogravimetric analysis (TGA), and differential scanning calorimetry (DSC). FTIR confirmed the formation of the copolymer, TGA demonstrated that copolymer is thermally stable up to 200 °C temperature, and DSC revealed the sulfur conversion of 82.2% (predicted conversion of 82.37%), which shows the goodness of the model developed to predict the sulfur conversion. To further maximize the sulfur conversion, 5 wt% diisopropenyl benzene (DIB) as a crosslinker is added during synthesis to produce terpolymer. The urea granule is then coated using terpolymer, and the nutrient release longevity of the coated urea is tested in distilled water, which revealed that only 65% of its total nutrient is released after 40 days of incubation. The soil burial of the terpolymer demonstrated its biodegradability, as 26% weight loss happens in 52 days of incubation. Thus, inverse vulcanized terpolymer as a coating material for urea demonstrated far better nutrient release longevity compared with other biopolymers with improved biodegradation; moreover, these copolymers also have potential to improve sulfur oxidation.

摘要

使用化肥可实现全球作物产量的提高;然而,由于养分吸收效率(NUE)低下,农业经济受到影响,这也会造成环境污染。用疏水性材料包裹尿素颗粒可能是一种解决方案。此外,由植物油制得的反硫化共聚物是一类新型的富含绿色硫的聚合物,具有良好的生物降解性和更好的硫氧化潜力,但它们含有未反应的硫,这会导致产生空隙。在本研究中,通过响应面法(RSM)优化了反硫化反应条件,以尽量减少未反应硫的量。然后使用傅里叶变换红外光谱(FTIR)、热重分析(TGA)和差示扫描量热法(DSC)对所得共聚物进行表征。FTIR证实了共聚物的形成,TGA表明共聚物在高达200℃的温度下具有热稳定性,DSC显示硫转化率为82.2%(预测转化率为82.37%),这表明所建立的预测硫转化率的模型良好。为了进一步提高硫转化率,在合成过程中加入5 wt%的二异丙烯基苯(DIB)作为交联剂以制备三元共聚物。然后用三元共聚物包覆尿素颗粒,并在蒸馏水中测试包覆尿素的养分释放寿命,结果表明,孵育40天后,其总养分仅释放65%。三元共聚物的土壤掩埋试验证明了其生物降解性,在孵育52天后重量损失26%。因此,与其他具有改善生物降解性的生物聚合物相比,反硫化三元共聚物作为尿素的包覆材料显示出更好的养分释放寿命;此外,这些共聚物还有提高硫氧化的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c4d4/8621183/6626aff8afc3/polymers-13-04040-g001.jpg

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