4.8 Review

MOF-based electronic and optoelectronic devices

Journal

CHEMICAL SOCIETY REVIEWS
Volume 43, Issue 16, Pages 5994-6010

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4cs00096j

Keywords

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Funding

  1. Laboratory Directed Research and Development Program at Sandia National Laboratories
  2. U.S. DOE Sun Shot Program
  3. U.S. DOE National Nuclear Security Administration [DE-AC04-94AL85000]
  4. Science of Precision Multifunctional Nanostructures for Electrical Energy Storage (NEES), an Energy Frontier Research Center - U.S. DOE, Office of Science, Office of Basic Energy Sciences [DESC0001160]

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Metal-organic frameworks (MOF5) are a class of hybrid materials with unique Optical and electronic properties arising from rational self-assembly of the organic linkers and metal ions/clusters, yielding myriads of possible structural motifs. The combination of order and chemical tunability, coupled with good environmental stability of MOFs, are prompting many research groups to explore the possibility of incorporating these materials as active components in devices such as solar cells, photodetectors, radiation detectors, and chemical sensors. Although this field is only in its incipiency, many new fundamental insights relevant to integrating MOFs with such devices have already been gained. In this review, we focus our attention on the basic requirements and structural elements needed to fabricate MOF-based devices and summarize the current state of MOF research in the area of electronic, opto-electronic and sensor devices. We summarize various approaches to designing active MOFs, creation of hybrid material systems combining MOFs with other materials, and assembly and integration of MOFs with device hardware. Critical directions of future research are identified, with emphasis on achieving the desired MOF functionality in a device and establishing the structure-property relationships to identify and rationalize the factors that impact device performance.

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