Pilling Robert, Patwardhan Siddharth V
Green Nanomaterials Research Group, Department of Chemical and Biological Engineering, The University of Sheffield, Mappin Street, Sheffield S1 3JD, United Kingdom.
ACS Sustain Chem Eng. 2022 Sep 19;10(37):12048-12064. doi: 10.1021/acssuschemeng.2c02204. Epub 2022 Sep 8.
Global specialty silica production is over 3 million tonnes per annum with diverse applications across sectors and an increasing demand for more complex material structures and surface chemistries. Commercial manufacturing of high-value silica nanomaterials is energy and resource intensive. In order to meet market needs and mitigate environmental impacts, new synthesis methods for these porous materials are required. The development of the bioinspired silica (BIS) product system, which is the focus of this review, provides a potential solution to this challenge. BIS is a versatile and greener route with the prospect of good scalability, attractive process economics and well controlled product materials. The potential of the system lies not only in its provision of specific lead materials but also, as itself, a rich design-space for the flexible and potentially predictive design of diverse sustainable silica nanomaterials. Realizing the potential of this design space, requires an integrative mind-set, which enables parallel and responsive progression of multiple and dependent research strands, according to need, opportunities, and emergent knowledge. Specifically, this requires development of detailed understanding of (i) the pathways and extent of material diversity and control, (ii) the influences and mechanisms of scale-up, and (iii) performance, economic and environmental characteristics and sensitivities. Crucially, these need to be developed for the system overall, which sits in contrast to a more traditional research approach, which focuses initially on the discovery of specific material leads at the laboratory scale, leaving scale-up, commercialization, and, potentially, pathway understanding to be considered as distinctly separate concerns. The intention of this review is to present important recent advances made in the field of BIS. Specifically, advances made along three research themes will be discussed: (a) particle formation pathways, (b) product design, and (c) scale-up and manufacture. These advances include first quantitative investigation of synthesis-product relationships, first structured investigation of mixing effects, preparation of a broad range of functionalized and encapsulated silica materials and continued industrial engagement and market research. We identify future challenges and provide an important foundation for the development of new research avenues. These include the need to develop comprehensive and predictive product design models, to understand markets in terms of product cost, performance and environmental considerations, and to develop capabilities enabling rapid prototyping and scale-up of desired nanomaterials.
全球特种二氧化硅年产量超过300万吨,其应用广泛,涵盖多个领域,并且对更复杂的材料结构和表面化学的需求不断增加。高价值二氧化硅纳米材料的商业制造能源和资源消耗巨大。为了满足市场需求并减轻环境影响,需要开发这些多孔材料的新合成方法。受生物启发的二氧化硅(BIS)产品体系的开发是本综述的重点,它为这一挑战提供了潜在的解决方案。BIS是一条通用且更环保的途径,具有良好的可扩展性、诱人的工艺经济性以及对产品材料的良好控制前景。该体系的潜力不仅在于提供特定的先导材料,还在于其本身为各种可持续二氧化硅纳米材料的灵活且可能具有预测性的设计提供了丰富的设计空间。要实现这一设计空间的潜力,需要一种综合思维方式,这种思维方式能够根据需求、机会和新出现的知识,使多个相互依赖的研究方向并行且灵活推进。具体而言,这需要深入了解:(i)材料多样性和控制的途径及程度;(ii)放大过程的影响和机制;(iii)性能、经济和环境特征以及敏感性。至关重要的是,这些需要针对整个体系来开发,这与更传统的研究方法形成对比,传统研究方法最初侧重于在实验室规模发现特定的材料先导,而将放大、商业化以及潜在的途径理解视为截然不同的问题。本综述的目的是介绍BIS领域最近取得的重要进展。具体而言,将讨论沿着三个研究主题取得的进展:(a)颗粒形成途径;(b)产品设计;(c)放大和制造。这些进展包括对合成 - 产品关系的首次定量研究、对混合效应的首次结构化研究、制备多种功能化和封装的二氧化硅材料以及持续的工业参与和市场研究。我们确定了未来的挑战,并为新研究途径的开发提供了重要基础。这些挑战包括需要开发全面且具有预测性的产品设计模型,从产品成本、性能和环境因素方面理解市场,以及开发能够快速原型制作和放大所需纳米材料的能力。