Authors
Michael L Aubrey, Brian M Wiers, Sean C Andrews, Tsuneaki Sakurai, Sebastian E Reyes-Lillo, Samia M Hamed, Chung-Jui Yu, Lucy E Darago, Jarad A Mason, Jin-Ook Baeg, Fernande Grandjean, Gary J Long, Shu Seki, Jeffrey B Neaton, Peidong Yang, Jeffrey R Long
Publication date
2018/7
Journal
Nature materials
Volume
17
Issue
7
Pages
625-632
Publisher
Nature Publishing Group UK
Description
Conductive metal–organic frameworks are an emerging class of three-dimensional architectures with degrees of modularity, synthetic flexibility and structural predictability that are unprecedented in other porous materials. However, engendering long-range charge delocalization and establishing synthetic strategies that are broadly applicable to the diverse range of structures encountered for this class of materials remain challenging. Here, we report the synthesis of KxFe2(BDP)3 (0 ≤ x ≤ 2; BDP2− = 1,4-benzenedipyrazolate), which exhibits full charge delocalization within the parent framework and charge mobilities comparable to technologically relevant polymers and ceramics. Through a battery of spectroscopic methods, computational techniques and single-microcrystal field-effect transistor measurements, we demonstrate that fractional reduction of Fe2(BDP)3 results in a metal–organic framework that …
Total citations
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