Conductive MOF electrodes for stable supercapacitors with high areal capacitance
Тип публикации: Journal Article
Дата публикации: 2016-10-10
scimago Q1
wos Q1
БС1
SJR: 14.204
CiteScore: 61.8
Impact factor: 38.5
ISSN: 14761122, 14764660
PubMed ID:
27723738
General Chemistry
Condensed Matter Physics
General Materials Science
Mechanical Engineering
Mechanics of Materials
Краткое описание
Using MOFs as active electrodes in electrochemical double layer capacitors has so far proved difficult. An electrically conductive MOF used as an electrode is now shown to exhibit electrochemical performance similar to most carbon-based materials. Owing to their high power density and superior cyclability relative to batteries, electrochemical double layer capacitors (EDLCs) have emerged as an important electrical energy storage technology that will play a critical role in the large-scale deployment of intermittent renewable energy sources, smart power grids, and electrical vehicles1,2,3. Because the capacitance and charge–discharge rates of EDLCs scale with surface area and electrical conductivity, respectively, porous carbons such as activated carbon, carbon nanotubes and crosslinked or holey graphenes are used exclusively as the active electrode materials in EDLCs4,5,6,7,8,9. One class of materials whose surface area far exceeds that of activated carbons, potentially allowing them to challenge the dominance of carbon electrodes in EDLCs, is metal–organic frameworks (MOFs)10. The high porosity of MOFs, however, is conventionally coupled to very poor electrical conductivity, which has thus far prevented the use of these materials as active electrodes in EDLCs. Here, we show that Ni3(2,3,6,7,10,11-hexaiminotriphenylene)2 (Ni3(HITP)2), a MOF with high electrical conductivity11, can serve as the sole electrode material in an EDLC. This is the first example of a supercapacitor made entirely from neat MOFs as active materials, without conductive additives or other binders. The MOF-based device shows an areal capacitance that exceeds those of most carbon-based materials and capacity retention greater than 90% over 10,000 cycles, in line with commercial devices. Given the established structural and compositional tunability of MOFs, these results herald the advent of a new generation of supercapacitors whose active electrode materials can be tuned rationally, at the molecular level.
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Sheberla D. et al. Conductive MOF electrodes for stable supercapacitors with high areal capacitance // Nature Materials. 2016. Vol. 16. No. 2. pp. 220-224.
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Sheberla D., Bachman J. C., Elias J. S., Sun C., Shao-Horn Y., Dincă M. Conductive MOF electrodes for stable supercapacitors with high areal capacitance // Nature Materials. 2016. Vol. 16. No. 2. pp. 220-224.
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TY - JOUR
DO - 10.1038/nmat4766
UR - https://www.nature.com/articles/nmat4766
TI - Conductive MOF electrodes for stable supercapacitors with high areal capacitance
T2 - Nature Materials
AU - Sheberla, Dennis
AU - Bachman, John C
AU - Elias, Joseph S
AU - Sun, Cheng-Jun
AU - Shao-Horn, Yang
AU - Dincă, Mircea
PY - 2016
DA - 2016/10/10
PB - Springer Nature
SP - 220-224
IS - 2
VL - 16
PMID - 27723738
SN - 1476-1122
SN - 1476-4660
ER -
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@article{2016_Sheberla,
author = {Dennis Sheberla and John C Bachman and Joseph S Elias and Cheng-Jun Sun and Yang Shao-Horn and Mircea Dincă},
title = {Conductive MOF electrodes for stable supercapacitors with high areal capacitance},
journal = {Nature Materials},
year = {2016},
volume = {16},
publisher = {Springer Nature},
month = {oct},
url = {https://www.nature.com/articles/nmat4766},
number = {2},
pages = {220--224},
doi = {10.1038/nmat4766}
}
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Sheberla, Dennis, et al. “Conductive MOF electrodes for stable supercapacitors with high areal capacitance.” Nature Materials, vol. 16, no. 2, Oct. 2016, pp. 220-224. https://www.nature.com/articles/nmat4766.
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