Room Temperature Metallic Conductivity in a Metal-Organic Framework Induced by Oxidation

被引:107
|
作者
Clough, Andrew J. [1 ]
Orchanian, Nicholas M. [1 ]
Skelton, Jonathan M. [2 ]
Neer, Abbey J. [1 ]
Howard, Sebastian A. [3 ]
Downes, Courtney A. [1 ]
Piper, Louis F. J. [3 ,4 ]
Walsh, Aron [5 ,6 ]
Melot, Brent C. [1 ]
Marinescu, Smaranda C. [1 ]
机构
[1] Univ Southern Calif, Dept Chem, Los Angeles, CA 90089 USA
[2] Univ Manchester, Sch Chem, Manchester M13 9PL, Lancs, England
[3] Binghamton Univ, Dept Phys Appl Phys & Astron, Binghamton, NY 13902 USA
[4] Binghamton Univ, Mat Sci & Engn, Binghamton, NY 13902 USA
[5] Imperial Coll London, Dept Mat, London SW7 2AZ, England
[6] Yonsei Univ, Dept Mat Sci & Engn, Seoul 03722, South Korea
基金
英国工程与自然科学研究理事会;
关键词
TUNABLE ELECTRICAL-CONDUCTIVITY; ELECTRONIC CONDUCTIVITY; HYDROGEN EVOLUTION; NANOSHEET; SPECTROSCOPY; CHALLENGES; CHEMISTRY; DEVICES; ROADMAP; ANALOG;
D O I
10.1021/jacs.9b06898
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Metal-organic frameworks (MOFs) containing redox active linkers have led to hybrid compounds exhibiting high electrical conductivity, which enables their use in applications in electronics and electrocatalysis. While many computational studies predict two-dimensional (2D) MOFs to be metallic, the majority of experiments show decreasing conductivity on cooling, indicative of a gap in the electronic band structure. To date, only a handful of MOFs have been reported that exhibit increased electrical conductivity upon cooling indicative of a metallic character, which highlights the need for a better understanding of the origin of the conductivity. A 2D MOF containing iron bis(dithiolene) motifs was recently reported to exhibit semiconducting behavior with record carrier mobility. Herein, we report that high crystallinity and the elimination of guest species results in an iron 2,3,6,7,10,11-tripheylene-hexathiolate (THT) MOF, FeTHT, exhibiting a complex transition from semiconducting to metallic upon cooling, similar to what was shown for the analogous CoTHT. Remarkably, exposing the FeTHT to air significantly influences the semiconducting-to-metallic transition temperature (100 to 300 K) and ultimately results in a material showing metallic-like character at, and above, room temperature. This study indicates these materials can tolerate a substantial degree of doping that ultimately results in charge delocalization and metallic-like conductivity, an important step toward enabling their use in chemiresistive sensing and optoelectronics.
引用
收藏
页码:16323 / 16330
页数:8
相关论文
共 50 条
  • [41] Hexanuclear Zn(II)-Induced Dense π-Stacking in a Metal-Organic Framework Featuring Long-Lasting Room Temperature Phosphorescence
    Yang, Xiao-Gang
    Zhai, Zhi-Min
    Lu, Xiao-Min
    Qin, Jian-Hua
    Li, Fei-Fei
    Ma, Lu-Fang
    INORGANIC CHEMISTRY, 2020, 59 (15) : 10395 - 10399
  • [42] High proton conductivity in a charge carrier-induced Ni(ii) metal-organic framework
    Chakraborty, Debabrata
    Ghorai, Arijit
    Bhanja, Piyali
    Banerjee, Susanta
    Bhaumik, Asim
    NEW JOURNAL OF CHEMISTRY, 2022, 46 (04) : 1867 - 1876
  • [43] Charge-Transfer-Induced Electrical Conductivity in a Tetrathiafulvalene-Based Metal-Organic Framework
    Ukaj, Dardan
    Bunzen, Hana
    Berger, Jan
    Kieslich, Gregor
    Fischer, Roland A.
    CHEMISTRY OF MATERIALS, 2021, 33 (07) : 2532 - 2542
  • [44] Xenon Recovery at Room Temperature using Metal-Organic Frameworks
    Elsaidi, Sameh K.
    Ongari, Daniele
    Xu, Wenqian
    Mohamed, Mona H.
    Haranczyk, Maciej
    Thallapally, Praveen K.
    CHEMISTRY-A EUROPEAN JOURNAL, 2017, 23 (45) : 10758 - 10762
  • [45] Polyoxometalate adsorbed in a metal-organic framework for electrocatalytic dopamine oxidation
    Ho, Wei Huan
    Chen, Tsung-Yi
    Otake, Ken-ichi
    Chen, Yu-Chuan
    Wang, Yi-Sen
    Li, Jun-Hong
    Chen, Han-Yi
    Kung, Chung-Wei
    CHEMICAL COMMUNICATIONS, 2020, 56 (79) : 11763 - 11766
  • [46] Investigation of Anionic Metal-Organic Frameworks with Extra-Framework Cations for Room Temperature Hydrogen Storage
    Pham, Thang D.
    Sengupta, Debabrata
    Farha, Omar K.
    Snurr, Randall Q.
    CHEMISTRY OF MATERIALS, 2024, 36 (08) : 3794 - 3802
  • [47] Aluminium doping composite metal-organic framework by alane nanoconfinement: Impact on the room temperature hydrogen uptake
    Prabhakaran, Prasanth Karikkethu
    Catoire, Laurent
    Deschamps, Johnny
    MICROPOROUS AND MESOPOROUS MATERIALS, 2017, 243 : 214 - 220
  • [48] Cu(II)-Metal-Organic Framework with Open Coordination Metal Sites for Low Temperature Thermochemical Water Oxidation
    Ma, Jian-Ping
    Wang, Shen-Qing
    Zhao, Chao-Wei
    Yu, Yang
    Dong, Yu-Bin
    CHEMISTRY OF MATERIALS, 2015, 27 (11) : 3805 - 3808
  • [49] Facile xenon capture and release at room temperature using a metal-organic framework: a comparison with activated charcoal
    Thallapally, Praveen K.
    Grate, Jay W.
    Motkuri, Radha Kishan
    CHEMICAL COMMUNICATIONS, 2012, 48 (03) : 347 - 349
  • [50] Room temperature synthesis of a luminescent crystalline Cu-BTC coordination polymer and metal-organic framework
    Siddiqui, Shiraz Ahmed
    Prado-Roller, Alexander
    Shiozawa, Hidetsugu
    MATERIALS ADVANCES, 2022, 3 (01): : 224 - 231