Nitrogen and iron codoped porous carbon polyhedra for effectively confining polysulfides and efficiently catalyzing their conversion in lithium–sulfur batteries
Literature Information
Shahzad Ahmad Khan, Dengke Zhao, Zexing Wu, Shaowei Chen
Effectively confining lithium polysulfides (LiPSs) and efficiently catalyzing their conversion represent a judicious approach to the preparation of high-rate, long lifespan lithium–sulfur (Li–S) batteries. Herein, an Fe-containing zeolitic imidazolate framework Fe-ZIF-8 is used as a precursor to synthesize a Fe–N–C polyhedron composite that shows a high specific surface area of 1459.3 m2 g−1, a large pore volume of 1.037 cm3 g−1 and a high nitrogen content of 7.29 at%. Benefiting from the high surface area and polarity of the carbon matrix, the Fe–N–C polyhedron composite can effectively adsorb and confine LiPSs. The S@Fe–N–C based electrode with a high sulfur loading of 72 wt% shows a high initial specific capacity of 1296 mA h g−1 at 0.1C and can retain a capacity of 450 mA h g−1 after 500 charge–discharge cycles at 1C, corresponding to a low fading rate of 0.068% per cycle. In contrast, a low capacity of 345 mA h g−1 is observed for the S@N–C reference electrode even after only 200 cycles. Moreover, the Fe–Nx–Cy sites within the S@Fe–N–C electrode can also efficiently catalyze the redox conversion of LiPSs during the charge–discharge process, leading to a much higher reversible capacity of 1178 mA h g−1 at 0.1C, as compared with the 626 mA h g−1 for the S@N–C electrode. These results support the approach to the preparation of N-doped porous carbons with catalytically active M–Nx–Cy (M is transition metal) sites for high-rate, long-lifespan sulfur cathodes for Li–S batteries.
Related Literature
Electrocatalytic studies on imidazolium based ionic liquids: defining experimental conditions
Miguel A. Montiel, José Solla-Gullón, Vicente Montiel, Carlos M. Sánchez-Sánchez
DOI: 10.1039/C8CP02662A
Kinetic analysis methods applied to single motor protein trajectories
A. L. Nord, A. F. Pols, M. Depken, F. Pedaci
DOI: 10.1039/C8CP03056A
First-principles study of rocksalt early transition-metal carbides as potential catalysts for Li–O2 batteries
Yingying Yang, Yuelin Wang, Man Yao, Xudong Wang, Hao Huang
DOI: 10.1039/C8CP06745G
Pure spin current and phonon thermoelectric transport in a triangulene-based molecular junction
Jianwei Li, Yihang Nie, Fuming Xu, Yunjin Yu, Bin Wang
DOI: 10.1039/C8CP02322K
Dissociative adsorption of a multifunctional compound on a semiconductor surface: a theoretical study of the adsorption of hydroxylamine on Ge(100)
Hyunkyung Park, Do Hwan Kim
DOI: 10.1039/C8CP00246K
Influence of Cu adatoms on the molecular assembly of 4,4′-bipyridine on Cu(111)
M.-A. Dubois, O. Guillermet, S. Gauthier, G. Zhan, Y. Makoudi, F. Palmino, X. Bouju, A. Rochefort
DOI: 10.1039/C8CP01184B
Electrical property and Schottky behavior of a flexible Schiff-base compound: X-ray structure and stabilization of 1D water chain
Basudeb Dutta, Joydeep Datta, Suvendu Maity, Chittaranjan Sinha, Di Sun, Partha Pratim Ray, Mohammad Hedayetullah Mir
DOI: 10.1039/C8CP04569K
Size effects on rhodium nanoparticles related to hydrogen-storage capability
Chulho Song, Anli Yang, L. S. R. Kumara, Satoshi Hiroi, Yi-Tao Cui, Kohei Kusada, Hirokazu Kobayashi
DOI: 10.1039/C8CP01678J
Different scenarios of dynamic coupling in glassy colloidal mixtures
Tatjana Sentjabrskaja, José Ruiz-Franco, Stefan U. Egelhaaf
DOI: 10.1039/C8CP02559B
Bi2Se3 topological insulator at the 2D-limit: role of halide-doping on Dirac point
Salma Khatun, Hrishikesh Bhunia, Amlan J. Pal
DOI: 10.1039/C8CP02604A
You might also like
Is 2-(2-chloroacetamido)-3-phenylpropanoic acid (CAS: 7765-11-9) safe?
2-(2-Chloroacetamido)-3-phenylpropanoic acid (CAS: 7765-11-9) is generally consi...
Is 2-(Benzyloxy)-5-bromobenzoic acid (CAS: 62176-31-2) safe?
2-(Benzyloxy)-5-bromobenzoic acid can be handled safely if appropriate precautio...
What is (4-Methyl-1,2,5-oxadiazol-3-yl)methanamine hydrochloride (CAS: 1159825-48-5)?
(4-Methyl-1,2,5-oxadiazol-3-yl)methanamine hydrochloride is a chemical compound ...
What is 2-(5-Hexylthiophen-2-yl)-4,4,5,5-tetramethyl-1,3,2-dioxaborolane (CAS: 917985-54-7)?
2-(5-Hexylthiophen-2-yl)-4,4,5,5-tetramethyl-1,3,2-dioxaborolane (CAS: 917985-54...
Are there alternatives to 4-(8-Methyl-9H-1,3-dioxolo[4,5-h][2,3]benzodiazepin-5-yl)benzenamine (CAS: 102771-26-6) in synthesis?
While 4-(8-Methyl-9H-1,3-dioxolo[4,5-h][2,3]benzodiazepin-5-yl)benzenamine (CAS:...
What is the market or research trend for tert-butyl 3-hydroxy-4,5,7,8-tetrahydro-2H-pyrazolo[3,4-d]azepine-6-carboxylate (CAS: 851376-80-2)?
The market for tert-butyl 3-hydroxy-4,5,7,8-tetrahydro-2H-pyrazolo[3,4-d]azepine...
How should waste containing 3,5-Diamino-1H-pyrazole-4-carbonitrile (CAS: 6844-58-2) be handled?
Waste containing 3,5-Diamino-1H-pyrazole-4-carbonitrile (CAS: 6844-58-2) should ...
How is (6-Fluoro-3-pyridinyl)boronic acid (CAS: 351019-18-6) typically synthesized?
(6-Fluoro-3-pyridinyl)boronic acid can be synthesized through the reaction of 6-...
What industries use Dibenzyl carbonimidoylbiscarbamate (CAS: 10065-79-9)?
Dibenzyl carbonimidoylbiscarbamate (CAS: 10065-79-9) finds applications in vario...
What is the market or research trend for (beta,beta,2,3,4,5,6-~2~H_7_)Phenylalanine (CAS: 74228-83-4)?
The market for (beta,beta,2,3,4,5,6-~2~H_7_)Phenylalanine (CAS: 74228-83-4) is g...











![(4-Methyl-1H-benzo[d]imidazol-2-yl)methanamine structure (4-Methyl-1H-benzo[d]imidazol-2-yl)methanamine structure](https://static.chemtradehub.com/structs/933/933756-31-1-7b0b.webp)
![N-[2,6-Di(9-anthryl)-4-oxido-8,9,10,11,12,13,14,15-octahydrodinaphtho[2,1-d:1',2'-f][1,3,2]dioxaphosphepin-4-yl]-1,1,1-trifluoromethanesulfonamide structure N-[2,6-Di(9-anthryl)-4-oxido-8,9,10,11,12,13,14,15-octahydrodinaphtho[2,1-d:1',2'-f][1,3,2]dioxaphosphepin-4-yl]-1,1,1-trifluoromethanesulfonamide structure](https://static.chemtradehub.com/structs/122/1227374-64-2-cdb5.webp)


