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基于生物聚合物的农用化学品缓释纳米载体:农业和园艺可持续未来的材料和社会科学视角综述。

Biopolymer-based nanocarriers for sustained release of agrochemicals: A review on materials and social science perspectives for a sustainable future of agri- and horticulture.

机构信息

Department of Chemical Engineering and Food Engineering, Federal University of Santa Catarina, PO Box 476, Florianópolis, SC 88040-900, Brazil.

Sustainable Polymer Chemistry Group, MESA+ Institute for Nanotechnology, Faculty of Science and Technology, Universiteit Twente, PO Box 217, 7500 AE Enschede, The Netherlands; Faculty of Behavioural Management and Social Sciences, University of Twente, PO Box 217, 7500 AE Enschede, The Netherlands.

出版信息

Adv Colloid Interface Sci. 2022 May;303:102645. doi: 10.1016/j.cis.2022.102645. Epub 2022 Mar 21.

Abstract

Devastating plant diseases and soil depletion rationalize an extensive use of agrochemicals to secure the food production worldwide. The sustained release of fertilizers and pesticides in agriculture is a promising solution to the eco-toxicological impacts and it might reduce the amount and increase the effectiveness of agrochemicals administration in the field. This review article focusses on carriers with diameters below 1 μm, such as capsules, spheres, tubes and micelles that promote the sustained release of actives. Biopolymer nanocarriers represent a potentially environmentally friendly alternative due to their renewable origin and biodegradability, which prevents the formation of microplastics. The social aspects, economic potential, and success of commercialization of biopolymer based nanocarriers are influenced by the controversial nature of nanotechnology and depend on the use case. Nanotechnology's enormous innovative power is only able to unfold its potential to limit the effects of climate change and to counteract current environmental developments if the perceived risks are understood and mitigated.

摘要

毁灭性的植物病害和土壤枯竭促使人们广泛使用农用化学品来确保全球粮食生产。在农业中持续释放肥料和农药是解决生态毒理学影响的一个有前途的方法,它可能减少农用化学品在田间的使用量并提高其效果。本文主要讨论了直径小于 1μm 的载体,如胶囊、球体、管和胶束,这些载体可以促进活性物质的持续释放。由于生物聚合物纳米载体具有可再生性和可生物降解性,因此代表了一种潜在的环保替代品,可以防止微塑料的形成。基于生物聚合物的纳米载体的社会方面、经济潜力和商业化的成功受到纳米技术的争议性质以及具体应用情况的影响。如果能够理解和减轻感知风险,纳米技术的巨大创新能力将能够发挥其潜力,以限制气候变化的影响并抵消当前的环境发展。

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