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Advancing Sustainable Nanotechnology: Towards the Development of a Design Framework for the Future Production of Functional and Inherently Safer Carbon Nanotubes (CNTs) and CNT-Enabled Products.

机译:推进可持续性纳米技术:朝着未来生产功能性和本质安全性碳纳米管(CNT)和启用CNT的产品的设计框架发展。

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摘要

Carbon nanotubes (CNTs) are an emerging class of nanomaterials that possess several attractive characteristics, including unique optical and electronic properties, significant thermal conductance, and exceptional tensile strength, which collectively contribute to their commanding market demand. Applications of CNTs can be found in nearly every industrial sector including energy, electronics, and biotechnology. As a single class of engineered nanomaterials (ENMs), CNTs comprise nearly one third of the current ENM market demand and are projected to reach ∼13,000 metric ton production volume by 2016.;The same novel properties that inspire the next generation of promising CNT-enabled applications are also a potential source of environmental and human health concern. In vitro and in vivo toxicity studies demonstrate the potential inherent CNT hazard ranging from loss of bacterial cell viability to the formation of granulomas in mammalian lung tissue. The severity of unintended consequences that could be realized upon exposure to CNTs has the potential to impart devastating impacts on the advancement of the field. This paradox that is the simultaneous realization of promising CNT applications and potential CNT implications serves as the motivation for this dissertation research.;One of the overall goals of this dissertation is to determine the efficacy of controlling CNT physicochemical properties via the addition of surface functional groups while at the same time resolving property-hazard relationships to inform future design of inherently safer CNTs and CNT-enabled products. A holistic and systematic approach to understanding the causal relationship between fundamental physiochemical properties and cytotoxicity is applied here to single- (SWNTs) and multi-walled (MWNTs) CNTs. In addition to molecular level design considerations, this research includes an evaluation of environmental and human health impacts at the product level. Results from a life cycle assessment (LCA) of a nano-enabled product currently under development elucidate the relative contribution of CNTs to the total cradle-to-use impacts of the product. In addition, the LCA study establishes a quantitative approach to evaluate the potential downstream human health benefits realized upon product implementation, which enables a tradeoff comparison with the upstream impacts.;The methods and approaches established herein are applicable across classes of nanomaterials and nano-enabled products. These research efforts are intended to provide a framework to move towards realizing a holistic understanding of nanomaterial and nano-enabled product risk across all life cycle stages and to inform future development of appropriate risk management strategies. As a result, nanotechnology has the potential to sustain its competitive edge within the consumer market and ultimately realize its intended positive impact on society and the environment without associated unintended consequences.
机译:碳纳米管(CNTs)是一类新兴的纳米材料,具有多种吸引人的特性,包括独特的光学和电子特性,显着的导热性和出色的拉伸强度,共同满足了它们对市场的苛刻要求。碳纳米管的应用可以在几乎每个工业领域找到,包括能源,电子和生物技术。作为一类工程纳米材料(ENM),CNT占当前ENM市场需求的近三分之一,预计到2016年将达到约13,000吨的生产量。相同的新颖特性激发了下一代有前景的CNT-启用的应用程序也是引起环境和人类健康问题的潜在原因。体外和体内毒性研究表明,潜在的固有CNT危害范围从细菌细胞活力丧失到哺乳动物肺组织中肉芽肿的形成。暴露于CNT可能会带来意想不到的后果,其严重性可能会给该领域的发展带来破坏性影响。这一矛盾是同时实现了有前途的CNT应用和潜在的CNT含义,这是本论文研究的动机。;本论文的总体目标之一是确定通过添加表面官能团来控制CNT物理化学性质的功效。同时解决财产与危险之间的关系,为将来设计本质上更安全的CNT和启用CNT的产品提供依据。全面,系统的方法可用于理解基本理化性质与细胞毒性之间的因果关系,在此将其应用于单壁(SWNT)和多壁(MWNT)CNT。除考虑分子水平设计外,这项研究还包括对产品水平对环境和人类健康的影响进行评估。当前正在开发的纳米功能产品的生命周期评估(LCA)结果阐明了CNT对产品从使用到使用的总影响的相对贡献。此外,LCA研究建立了一种定量方法,以评估产品实施后对潜在的下游人类健康利益的影响,从而可以与上游影响进行权衡比较;本文建立的方法和方法适用于各类纳米材料和纳米材料产品。这些研究工作旨在提供一个框架,以实现对所有生命周期各个阶段对纳米材料和纳米产品风险的整体理解,并为适当的风险管理策略的未来发展提供信息。因此,纳米技术有潜力维持其在消费市场中的竞争优势,并最终实现其对社会和环境的预期积极影响,而不会带来意外后果。

著录项

  • 作者

    Gilbertson, Leanne Marie.;

  • 作者单位

    Yale University.;

  • 授予单位 Yale University.;
  • 学科 Engineering Environmental.;Environmental Health.;Health Sciences Toxicology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 180 p.
  • 总页数 180
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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