Metal doped nitrogenous hydroxyapatite nanohybrids slowly release nitrogen to crops and mitigate ammonia volatilization: An impact assessment

IF 4.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES NanoImpact Pub Date : 2022-10-01 DOI:10.1016/j.impact.2022.100424
Bhaskar Sharma , Manoj Shrivastava , Luis O.B. Afonso , Udit Soni , David M. Cahill
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引用次数: 3

Abstract

To supply adequate food, the ongoing and unrestrained administration of nitrogen fertilizer to agricultural fields is polluting the climate and living organisms. On the other hand, the agriculture sector urgently needs a technological upgrade to effectively confront hunger and poverty. Here, we report a rapid synthesis of zinc and magnesium-doped hydroxyapatite-urea nanohybrids for slow release and delivery of nitrogen to wheat and rice crops. Nanohybrids slowly release nitrogen for up to six weeks compared to the burst release of nitrogen from urea, and their use substantially reduces, by at least 3.8 times, ammonia emissions into the environment compared with that of urea fertilizer. A half‑nitrogen dose applied as multi-nutrient complexed nanohybrids maintained crop growth, yield, and nutritional compositions in wheat and subsequent rice crops. Nanohybrids enhanced the wheat crop yield and nitrogen uptake by 22.13% and 58.30%, respectively. The synthesized nitrogen nanohybrids remained in the soil for two continuous crop cycles, reduced ammonia volatilization, and achieved nitrogen delivery to the crops. Additionally, soil dehydrogenase activity (534.55% above control) and urease activities (81.82% above control) suggest that nanohybrids exhibited no adverse impact on soil microorganisms. Our comprehensive study demonstrates the advantages of ‘doping’ as a method for tailoring hydroxyapatite nanoparticles properties for extended agricultural and environmental applications. The use of nanohybrids substantially reduced greenhouse gas emissions and enabled the reduction, by half, of nitrogen inputs into the agricultural fields. This study, therefore, reports a novel nano-enabled platform of engineered hydroxyapatite-urea nanohybrids as a nitrogen fertilizer for efficient nitrogen delivery that results in improved crop growth while minimizing environmental pollution.

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金属掺杂含氮羟基磷灰石纳米杂交种缓慢释放氮到作物中并减轻氨挥发:影响评估
为了提供足够的食物,农田里持续而无节制地施用氮肥正在污染气候和生物。另一方面,农业部门迫切需要技术升级,以有效应对饥饿和贫困。在这里,我们报道了一种快速合成的锌和镁掺杂羟基磷灰石-尿素纳米杂交种,用于小麦和水稻作物的缓慢释放和输送氮。与从尿素中突然释放氮相比,纳米杂交种可以缓慢释放氮长达六周,并且与尿素肥料相比,它们的使用大大减少了向环境排放的氨,至少减少了3.8倍。半氮剂量作为多营养复合纳米杂交种用于小麦和随后的水稻作物,维持作物生长、产量和营养成分。纳米杂交种使小麦产量和氮素吸收分别提高22.13%和58.30%。合成的氮纳米杂交种在土壤中连续存在两个作物周期,减少了氨挥发,实现了对作物的氮输送。此外,土壤脱氢酶活性(高于对照534.55%)和脲酶活性(高于对照81.82%)表明,纳米杂交种对土壤微生物没有不利影响。我们的综合研究证明了“掺杂”作为一种裁剪羟基磷灰石纳米颗粒特性的方法的优势,这种方法可以扩展到农业和环境应用中。纳米杂交种的使用大大减少了温室气体排放,并使农田的氮肥投入减少了一半。因此,本研究报告了一种新型的纳米化羟基磷灰石-尿素纳米杂交种作为氮肥的工程平台,可以有效地输送氮,从而改善作物生长,同时最大限度地减少环境污染。
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来源期刊
NanoImpact
NanoImpact Social Sciences-Safety Research
CiteScore
11.00
自引率
6.10%
发文量
69
审稿时长
23 days
期刊介绍: NanoImpact is a multidisciplinary journal that focuses on nanosafety research and areas related to the impacts of manufactured nanomaterials on human and environmental systems and the behavior of nanomaterials in these systems.
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