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在电子设备中实施金属有机骨架的路线图:挑战和关键方向。

A roadmap to implementing metal-organic frameworks in electronic devices: challenges and critical directions.

机构信息

Sandia National Laboratories, Livermore, CA 94551-0969, USA.

出版信息

Chemistry. 2011 Oct 4;17(41):11372-88. doi: 10.1002/chem.201101595. Epub 2011 Sep 20.

Abstract

Metal-organic frameworks (MOFs) and related material classes are attracting considerable attention for applications such as gas storage, separations, and catalysis. In contrast, research focused on potential uses in electronic devices is in its infancy. Several sensing concepts in which the tailorable chemistry of MOFs is used to enhance sensitivity or provide chemical specificity have been demonstrated, but in only a few cases are MOFs an integral part of an actual device. The synthesis of a few electrically conducting MOFs and their known structural flexibility suggest that MOF-based electronic devices exploiting these properties could be constructed. It is clear, however, that new fabrication methods are required to take advantage of the unique properties of MOFs and extend their use to the realms of electronic circuitry. In this Concepts article, we describe the basic functional elements needed to fabricate electronic devices and summarize the current state of relevant MOF research, and then review recent work in which MOFs serve as active components in electronic devices. Finally, we propose a high-level roadmap for device-related MOF research, the objective of which is to stimulate thinking within the MOF community concerning the development these materials for applications including sensing, photonics, and microelectronics.

摘要

金属-有机骨架(MOFs)和相关材料类别因其在气体存储、分离和催化等方面的应用而引起了相当大的关注。相比之下,聚焦于电子器件潜在用途的研究还处于起步阶段。已经有一些传感概念证明了 MOF 的可定制化学性质可用于提高灵敏度或提供化学特异性,但在少数情况下,MOF 是实际器件的一个组成部分。一些导电 MOF 的合成及其已知的结构灵活性表明,可以构建利用这些特性的基于 MOF 的电子器件。然而,很明显,需要新的制造方法来利用 MOF 的独特性质,并将其用途扩展到电子电路领域。在这篇概念文章中,我们描述了制造电子设备所需的基本功能元件,并总结了当前相关 MOF 研究的状况,然后回顾了最近的工作,其中 MOF 作为电子设备中的有源元件。最后,我们提出了一个与器件相关的 MOF 研究的高级路线图,其目的是激发 MOF 社区在这些材料的开发方面的思考,包括传感、光子学和微电子学。

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