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通过从批量反应器切换到液滴反应器来实现胶体纳米晶体的连续和可扩展生产。

Toward continuous and scalable production of colloidal nanocrystals by switching from batch to droplet reactors.

机构信息

The Wallace H. Coulter Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, Georgia 30332, USA.

出版信息

Chem Soc Rev. 2015 Aug 21;44(16):5806-20. doi: 10.1039/c5cs00049a.

Abstract

Colloidal nanocrystals are finding widespread use in a wide variety of applications ranging from catalysis to photonics, electronics, energy harvesting/conversion/storage, environment protection, information storage, and biomedicine. Despite the large number of successful demonstrations, there still exists a significant gap between academic studies and industrial applications owing to the lack of an ability to produce colloidal nanocrystals in large quantities without losing control over their properties. Droplet reactors have shown great potential for the continuous and scalable production of colloidal nanocrystals with uniform and well-controlled sizes, shapes, structures, and compositions. In this tutorial review, we begin with rationales for the use of droplet reactors as a new platform to scale up the production of colloidal nanocrystals, followed by discussions of the general concepts and technical challenges in applying droplet reactors to the synthesis of nanocrystals, including droplet formation, introduction and mixing of reagents, management of gaseous species, and interfacial adsorption. At the end, we use a set of examples to highlight the unique capabilities of droplet reactors for the high-volume production of colloidal nanocrystals in the setting of both homogeneous nucleation and seed-mediated growth.

摘要

胶体纳米晶体在从催化到光子学、电子学、能量收集/转换/存储、环境保护、信息存储和生物医学等各种应用中得到了广泛的应用。尽管已经有大量成功的演示,但由于缺乏在不失去对其性质控制的情况下大量生产胶体纳米晶体的能力,学术研究和工业应用之间仍然存在着很大的差距。液滴反应器在连续和可扩展的胶体纳米晶体生产方面显示出了巨大的潜力,可以生产具有均匀和良好控制的尺寸、形状、结构和组成的胶体纳米晶体。在本教程综述中,我们首先讨论了使用液滴反应器作为扩大胶体纳米晶体生产的新平台的合理性,然后讨论了将液滴反应器应用于纳米晶体合成的一般概念和技术挑战,包括液滴的形成、试剂的引入和混合、气态物质的管理以及界面吸附。最后,我们用一组实例强调了液滴反应器在均相成核和种子介导生长两种情况下大规模生产胶体纳米晶体的独特能力。

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