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Title: Charge Transport in Zirconium-Based Metal–Organic Frameworks

Journal Article · · Accounts of Chemical Research

Metal–organic frameworks (MOFs) are a class of crystalline porous materials characterized by inorganic nodes and multitopic organic linkers. Because of their molecular-scale porosity and periodic intraframework chemical functionality, MOFs are attractive scaffolds for supporting and/or organizing catalysts, photocatalysts, chemical-sensing elements, small enzymes, and numerous other functional-property-imparting, nanometer-scale objects. Notably, these objects can be installed after the synthesis of the MOF, eliminating the need for chemical and thermal compatibility of the objects with the synthesis milieu. Thus, postsynthetically functionalized MOFs can present three-dimensional arrays of high-density, yet well-separated, active sites. Depending on the application and corresponding morphological requirements, MOF materials can be prepared in thin-film form, pelletized form, isolated single-crystal form, polycrystalline powder form, mixed-matrix membrane form, or other forms. For certain applications, most obviously catalytic hydrolysis and electro- or photocatalytic water splitting, but also many others, an additional requirement is water stability. MOFs featuring hexa-zirconium(IV)-oxy nodes satisfy this requirement. For applications involving electrocatalysis, charge storage, photoelectrochemical energy conversion, and chemiresistive sensing, a further requirement is electrical conductivity, as embodied in electron or hole transport. As most MOFs, under most conditions, are electrically insulating, imparting controllable charge-transport behavior is both a chemically intriguing and chemically compelling challenge. Herein, we describe three strategies to render zirconium-based metal–organic frameworks (MOFs) tunably electrically conductive and, therefore, capable of transporting charge on the few nanometers (i.e., several molecular units) to few micrometers (i.e., typical dimensions for MOF microcrystallites) scale. The first strategy centers on redox-hopping between periodically arranged, chemically equivalent sites, essentially repetitive electron (or hole) self-exchange. Zirconium nodes are electrically insulating, but they can function as grafting sites for (a) redox-active inorganic clusters or (b) molecular redox couples. Alternatively, charge hopping based on linker redox properties can be exploited. Marcus’s theory of electron transfer has proven useful for understanding/predicting trends in redox-hopping based conductivity, most notably, in accounting for variations as great as 3000-fold depending on the direction of charge propagation through structurally anisotropic MOFs. In MOF environments, propagation of electronic charge via redox hopping is necessarily accompanied by movement of charge-compensating ions. Consequently, rates of redox hopping can depend on both the identity and concentration of ions permeating the MOF. In the context of electrocatalysis, an important goal is to transport electronic charge fast enough to match or exceed the inherent activity of MOF-based or MOF-immobilized catalysts. Bandlike electronic conductivity is the focus of an alternative strategy: one based on the introduction of molecular guests capable of forming donor–acceptor charge transfer complexes with the host framework. Theory again can be applied predictively to alter conductivity. A third strategy similarly emphasizes electronic conductivity, but it makes use of added bridges in the form of molecular oligomers or inorganic clusters that can then be linked to span the length of a MOF crystallite. For all strategies, retention of molecular-scale porosity is emphasized, as this property is key to many applications. Lastly, while our focus is on Zr-MOFs, the described approaches clearly are extendable to other MOF compositions, as has already been demonstrated, in part, in studies by others.

Research Organization:
Univ. of Minnesota, Minneapolis, MN (United States)
Sponsoring Organization:
USDOE Office of Science (SC), Basic Energy Sciences (BES). Chemical Sciences, Geosciences & Biosciences Division
Grant/Contract Number:
SC0008688; FG02-17ER16362; SC0001059
OSTI ID:
1712736
Journal Information:
Accounts of Chemical Research, Vol. 53, Issue 6; ISSN 0001-4842
Publisher:
American Chemical SocietyCopyright Statement
Country of Publication:
United States
Language:
English

References (47)

Hybrid porous solids past, present, future journal January 2008
The Chemistry and Applications of Metal-Organic Frameworks journal August 2013
Metal–Organic Framework Materials with Ultrahigh Surface Areas: Is the Sky the Limit? journal August 2012
Ultrahigh Porosity in Metal-Organic Frameworks journal July 2010
Mesoporous metal–organic framework materials journal January 2012
Metal–Organic Frameworks as Platforms for Functional Materials journal February 2016
Tuning the Topology and Functionality of Metal−Organic Frameworks by Ligand Design journal February 2011
Postsynthetic Tuning of Metal–Organic Frameworks for Targeted Applications journal February 2017
De novo synthesis of a metal–organic framework material featuring ultrahigh surface area and gas storage capacities journal September 2010
Hydrogen storage in metal–organic frameworks journal January 2009
Metal–Organic Frameworks for Separations journal September 2011
A metal-organic framework-based splitter for separating propylene from propane journal July 2016
Metal–Organic Framework Materials as Chemical Sensors journal September 2011
Metal–organic framework materials as catalysts journal January 2009
A series of isoreticular chiral metal–organic frameworks as a tunable platform for asymmetric catalysis journal July 2010
Metal organic frameworks for electrochemical applications journal January 2012
Lithium Thiophosphate Functionalized Zirconium MOFs for Li–S Batteries with Enhanced Rate Capabilities journal October 2019
MOF-based electronic and opto-electronic devices journal January 2014
Metal–Organic Frameworks as Active Materials in Electronic Sensor Devices journal May 2017
Chemical, thermal and mechanical stabilities of metal–organic frameworks journal February 2016
Copper Nanoparticles Installed in Metal–Organic Framework Thin Films are Electrocatalytically Competent for CO 2 Reduction journal September 2017
A porous proton-relaying metal-organic framework material that accelerates electrochemical hydrogen evolution journal September 2015
Electrochemical Water Oxidation by a Catalyst-Modified Metal-Organic Framework Thin Film journal December 2016
Nanostructuration of PEDOT in Porous Coordination Polymers for Tunable Porosity and Conductivity journal August 2016
A metal–organic framework and conducting polymer based electrochemical sensor for high performance cadmium ion detection journal January 2017
Thermal Stabilization of Metal–Organic Framework-Derived Single-Site Catalytic Clusters through Nanocasting journal February 2016
Vapor-Phase Metalation by Atomic Layer Deposition in a Metal–Organic Framework
  • Mondloch, Joseph E.; Bury, Wojciech; Fairen-Jimenez, David
  • Journal of the American Chemical Society, Vol. 135, Issue 28, p. 10294-10297 https://doi.org/10.1021/ja4050828
journal May 2013
Metal–Organic Framework Thin Films Composed of Free-Standing Acicular Nanorods Exhibiting Reversible Electrochromism journal December 2013
MOFs as proton conductors – challenges and opportunities journal January 2014
Ion Conductivity and Transport by Porous Coordination Polymers and Metal–Organic Frameworks journal June 2013
Coordination-Chemistry Control of Proton Conductivity in the Iconic Metal–Organic Framework Material HKUST-1 journal December 2011
Redox-Mediator-Assisted Electrocatalytic Hydrogen Evolution from Water by a Molybdenum Sulfide-Functionalized Metal–Organic Framework journal September 2018
Redox conduction in mixed-valent polymers journal July 1983
Electron transfers in chemistry and biology journal August 1985
Metal–Organic Framework Thin Films as Platforms for Atomic Layer Deposition of Cobalt Ions To Enable Electrocatalytic Water Oxidation journal December 2015
Bias-Switchable Permselectivity and Redox Catalytic Activity of a Ferrocene-Functionalized, Thin-Film Metal–Organic Framework Compound journal February 2015
Design Rules for Efficient Charge Transfer in Metal–Organic Framework Films: The Pore Size Effect journal January 2020
Independent Quantification of Electron and Ion Diffusion in Metallocene-Doped Metal–Organic Frameworks Thin Films journal July 2019
Chemical Reduction of Metal−Organic Framework Materials as a Method to Enhance Gas Uptake and Binding journal August 2007
Theoretical Investigation of Charge Transfer in Metal Organic Frameworks for Electrochemical Device Applications journal October 2015
Anisotropic Redox Conductivity within a Metal–Organic Framework Material journal October 2019
Tailor-Made Highly Luminescent and Ambipolar Transporting Organic Mixed Stacked Charge-Transfer Crystals: An Isometric Donor–Acceptor Approach journal March 2013
Tunable Electrical Conductivity in Metal-Organic Framework Thin-Film Devices journal December 2013
A porous, electrically conductive hexa-zirconium( iv ) metal–organic framework journal January 2018
Increased Electrical Conductivity in a Mesoporous Metal–Organic Framework Featuring Metallacarboranes Guests journal February 2018
Rendering High Surface Area, Mesoporous Metal–Organic Frameworks Electronically Conductive journal March 2017
Inorganic “Conductive Glass” Approach to Rendering Mesoporous Metal–Organic Frameworks Electronically Conductive and Chemically Responsive journal August 2018