2014
DOI: 10.1039/c3ce41961d
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Reactable ionic liquid assisted preparation of porous Co3O4 nanostructures with enhanced supercapacitive performance

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Cited by 31 publications
(27 citation statements)
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References 49 publications
(150 reference statements)
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“…The superior specific capacitance of g-C 3 N 4 / a-Fe 2 O 3 hollow microspheres is ascribed to the peculiar structure, high BET surface area and low electronic resistance. In addition to the aforesaid electrode materials, PILmodified graphene, [97] graphene sheets, [98] Poly(ionic liquid)modified graphene oxide, [99] surface-modified graphene oxide, [100] free-standing carbon nanohybrid, [101] RuO 2 anchored on graphene and CNTs, [102] porous Co 3 O 4 , [103] and other innovative materials have been successfully synthesized in ILs.…”
Section: Methodsmentioning
confidence: 99%
“…The superior specific capacitance of g-C 3 N 4 / a-Fe 2 O 3 hollow microspheres is ascribed to the peculiar structure, high BET surface area and low electronic resistance. In addition to the aforesaid electrode materials, PILmodified graphene, [97] graphene sheets, [98] Poly(ionic liquid)modified graphene oxide, [99] surface-modified graphene oxide, [100] free-standing carbon nanohybrid, [101] RuO 2 anchored on graphene and CNTs, [102] porous Co 3 O 4 , [103] and other innovative materials have been successfully synthesized in ILs.…”
Section: Methodsmentioning
confidence: 99%
“…Die überlegene spezifische Kapazität von hohlen g‐C 3 N 4 /α‐Fe 2 O 3 ‐Mikrokugeln wird der speziellen Struktur, der hohen BET‐Oberfläche und dem geringen elektrischen Widerstand zugeschrieben. Zusätzlich zu den oben genannten Elektrodenmaterialien wurden PIL‐modifiziertes Graphen,98 Graphenblätter,99 PIL‐modifiziertes Graphenoxid,100 oberflächenmodifiziertes Graphenoxid,101 ein freistehendes Kohlenstoffnanohybrid,102 auf Graphen und CNTs verankertes RuO 2 ,103 poröses Co 3 O 4 104 und andere innovative Materialien in ILs hergestellt.…”
Section: Ils Zur Synthese Von Energiespeichersystemenunclassified
“…Poizot et al firstly proposed transition metal oxides as the new-type anode materials for LIBs [2]. They exhibit much higher theoretical capacities (2 to 3 times) than that of commercial graphite and smaller volume change during the charge-discharge process than that of alloy anodes [9][10][11][12][13][14][15][16][17][18][19][20][21]. Among them, hematite (Fe 2 O 3 ) has been extensively investigated as a very appealing host anode material because of its high capacity (1007 mA h g À1 ), natural abundance, nontoxicity, and low cost [22][23][24][25][26].…”
Section: Introductionmentioning
confidence: 99%