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Designing nanomaterials to maximize performance and minimize undesirable implications guided by the Principles of Green Chemistry

机译:设计纳米材料以最大程度地发挥性能并最大程度地减少绿色化学原理指导下的不良影响

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摘要

The Twelve Principles of Green Chemistry were first published in 1998 and provide a framework that has been adopted not only by chemists, but also by design practitioners and decision-makers (e.g., materials scientists and regulators). The development of the Principles was initially motivated by the need to address decades of unintended environmental pollution and human health impacts from the production and use of hazardous chemicals. Yet, for over a decade now, the Principles have been applied to the synthesis and production of engineered nanomaterials (ENMs) and the products they enable. While the combined efforts of the global scientific community have led to promising advances in the field of nanotechnology, there remain significant research gaps and the opportunity to leverage the potential global economic, societal and environmental benefits of ENMs safely and sustainably. As such, this tutorial review benchmarks the successes to date and identifies critical research gaps to be considered as future opportunities for the community to address. A sustainable material design framework is proposed that emphasizes the importance of establishing structure-property-function (SPF) and structure-property-hazard (SPH) relationships to guide the rational design of ENMs. The goal is to achieve or exceed the functional performance of current materials and the technologies they enable, while minimizing inherent hazard to avoid risk to human health and the environment at all stages of the life cycle.
机译:绿色化学十二个原则于1998年首次发布,它提供了一个框架,不仅被化学家采用,而且还被设计从业人员和决策者(例如材料科学家和管理人员)采用。原则的制定最初是由需要解决数十年来由于生产和使用危险化学品而造成的意外环境污染和对人类健康的影响所推动的。然而,十多年来,这些原理已被应用于工程纳米材料及其产品的合成和生产。尽管全球科学界的共同努力在纳米技术领域取得了可喜的进步,但仍然存在重大的研究空白,并有机会安全,可持续地利用ENM的潜在全球经济,社会和环境效益。因此,本教程审查会基准化迄今的成功并确定关键的研究差距,这些差距将被视为社区未来的机会。提出了一个可持续的材料设计框架,该框架强调建立结构-属性-功能(SPF)和结构-属性-危险(SPH)关系以指导ENM合理设计的重要性。目标是达到或超过当前材料及其支持的技术的功能性能,同时最大程度地减少固有危害,从而避免生命周期各个阶段对人体健康和环境的危害。

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