Low-cost iron-based electrocatalysts for high-performance Li–O2 batteries
Tài liệu tham khảo
Abraham, 2015, Prospects and limits of energy storage in batteries, J. Phys. Chem. Lett., 6, 830, 10.1021/jz5026273
Grande, 2015, The lithium/air battery: still an emerging system or a practical reality?, Adv. Mater., 27, 784, 10.1002/adma.201403064
Whittingham, 2014, Ultimate limits to intercalation reactions for lithium batteries, Chem. Rev., 114, 11414, 10.1021/cr5003003
Dunn, 2011, Electrical energy storage for the grid: a battery of choices, Science, 334, 928, 10.1126/science.1212741
Tarascon, 2010, Issues and challenges facing rechargeable lithium batteries, Mater. Sustain. Energy, 171, 10.1142/9789814317665_0024
Larcher, 2015, Towards greener and more sustainable batteries for electrical energy storage, Nat. Chem., 7, 1, 10.1038/nchem.2085
Luntz, 2014, Nonaqueous Li–air batteries: a status report, Chem. Rev., 114, 11721, 10.1021/cr500054y
Lu, 2013, Lithium–oxygen batteries: bridging mechanistic understanding and battery performance, Energy Environ. Sci., 6, 750, 10.1039/c3ee23966g
Balaish, 2014, A critical review on lithium–air battery electrolytes, Phys. Chem. Chem. Phys., 16, 2801, 10.1039/c3cp54165g
Choi, 2012, Challenges facing lithium batteries and electrical double‐layer capacitors, Angew. Chem. Int. Ed., 51, 9994, 10.1002/anie.201201429
Bruce, 2012, Li–O2 and Li–S batteries with high energy storage, Nat. Mater., 11, 19, 10.1038/nmat3191
Li, 2013, Challenges of non-aqueous Li–O2 batteries: electrolytes, catalysts, and anodes, Energy Environ. Sci., 6, 1125, 10.1039/c3ee00053b
Thomas, 2015, A perfluorinated moiety-grafted carbon nanotube electrode for the non-aqueous lithium–oxygen battery, Chem. Commun., 51, 3977, 10.1039/C4CC08815H
Chen, 2013, Multi-walled carbon nanotube papers as binder-free cathodes for large capacity and reversible non-aqueous Li–O2 batteries, J. Mater. Chem., 1, 13076, 10.1039/c3ta11792h
2014
Girishkumar, 2010, Lithium− air battery: promise and challenges, J. Phys. Chem. Lett., 1, 2193, 10.1021/jz1005384
Park, 2010, Electrochemical performances of lithium-air cell with carbon materials, Bull. Kor. Chem. Soc., 31, 3221, 10.5012/bkcs.2010.31.11.3221
Hardwick, 2012, The pursuit of rechargeable non-aqueous lithium–oxygen battery cathodes, Curr. Op. Solid State Mater. Sci., 16, 178, 10.1016/j.cossms.2012.04.001
Jung, 2012, An improved high-performance lithium-air battery, Nat. Chem., 4, 579, 10.1038/nchem.1376
McCloskey, 2012, Twin problems of interfacial carbonate formation in nonaqueous Li–O2 batteries, J. Phys. Chem. Lett., 3, 997, 10.1021/jz300243r
Schwenke, 2013, Stability of superoxide radicals in glyme solvents for non-aqueous Li–O2 battery electrolytes, Phys. Chem. Chem. Phys., 15, 11830, 10.1039/c3cp51531a
Okamoto, 2013, Ab initio calculations for decomposition mechanism of CH3O(CH2CH2O)NCH3 (N = 1–4) by the attack of O2– anion, J. Phys. Chem. C, 117, 15940, 10.1021/jp404849u
Lim, 2013, Toward a Lithium–“Air” battery: the effect of CO2 on the chemistry of a lithium–oxygen cell, J. Am. Chem. Soc., 135, 9733, 10.1021/ja4016765
Laino, 2013, Chemical reactivity of aprotic electrolytes on a solid Li2O2 surface: screening solvents for Li–air batteries, New J. Phys., 15, 10.1088/1367-2630/15/9/095009
Chen, 2012, Li–O2 battery with a dimethylformamide electrolyte, J. Am. Chem. Soc., 134, 7952, 10.1021/ja302178w
McCloskey, 2011, Solvents' critical role in nonaqueous lithium–oxygen battery electrochemistry, J. Phys. Chem. Lett., 2, 1161, 10.1021/jz200352v
Freunberger, 2011, The lithium–oxygen battery with ether‐based electrolytes, Angew. Chem. Int. Ed., 50, 8609, 10.1002/anie.201102357
Yilmaz, 2013, Promoting Formation of noncrystalline Li2O2 in the Li–O2 battery with RuO2 nanoparticles, Nano Lett., 13, 4679, 10.1021/nl4020952
Ryu, 2013, Bifunctional composite catalysts using Co3O4 nanofibers immobilized on nonoxidized graphene nanoflakes for high-capacity and long-cycle Li–O2 batteries, Nano Lett., 13, 4190, 10.1021/nl401868q
McCloskey, 2011, On the efficacy of electrocatalysis in nonaqueous Li–O2 batteries, J. Am. Chem. Soc., 133, 18038, 10.1021/ja207229n
Lu, 2011, Catalytic activity trends of oxygen reduction reaction for nonaqueous Li-air batteries, J. Am. Chem. Soc., 133, 19048, 10.1021/ja208608s
Oh, 2012, Oxide catalysts for rechargeable high‐capacity Li–O2 batteries, Adv. Energy Mater., 2, 903, 10.1002/aenm.201200018
Adams, 2013, Current density dependence of peroxide formation in the Li–O2 battery and its effect on charge, Energy Environ. Sci., 6, 1772, 10.1039/c3ee40697k
Yang, 2013, Evidence for lithium superoxide-like species in the discharge product of a Li–O2 battery, Phys. Chem. Chem. Phys., 15, 3764, 10.1039/c3cp00069a
Black, 2012, Screening for superoxide reactivity in Li-O2 batteries: effect on Li2O2/LiOH crystallization, J. Am. Chem. Soc., 134, 2902, 10.1021/ja2111543
Radina, 2013, Charge transport in lithium peroxide: relevance for rechargeable metal–air batteries, Energy Environ. Sci., 6, 2370, 10.1039/c3ee41632a
Viswanathan, 2011, Electrical conductivity in Li2O2 and its role in determining capacity limitations in non-aqueous Li-O2 batteries, J. Chem. Phys., 135, 10.1063/1.3663385
Radin, 2012, Lithium peroxide surfaces are metallic, while lithium oxide surfaces are not, J. Am. Chem. Soc., 134, 1093, 10.1021/ja208944x
Lu, 2010, The influence of catalysts on discharge and charge voltages of rechargeable Li–oxygen batteries, Electrochem. Solid State Lett., 13, A69, 10.1149/1.3363047
Ding, 2014, Influence of carbon pore size on the discharge capacity of Li–O2 batteries, J. Mater. Chem., 2, 12433, 10.1039/C4TA01745E
Hummelshøj, 2010, Communications: elementary oxygen electrode reactions in the aprotic Li-air battery, J. Chem. Phys., 132, 10.1063/1.3298994
Trahey, 2013, Synthesis, characterization, and structural modeling of high‐capacity, dual functioning MnO2 electrode/electrocatalysts for Li‐O2 cells, Adv. Energy Mater., 3, 75, 10.1002/aenm.201200037
Shui, 2012, Fe/N/C composite in Li–O2 battery: studies of catalytic structure and activity toward oxygen evolution reaction, J. Am. Chem. Soc., 134, 16654, 10.1021/ja3042993
Lee, 2012, The role of vacancies and defects in Na0.44MnO2 nanowire catalysts for lithium–oxygen batteries, Energy Environ. Sci., 5, 9558, 10.1039/c2ee21543h
Lu, 2011, The discharge rate capability of rechargeable Li–O2 batteries, Energy Environ. Sci., 4, 2999, 10.1039/c1ee01500a
Shao, 2012, Electrocatalysts for nonaqueous lithium–air batteries: status, challenges, and perspective, ACS Catal., 2, 844, 10.1021/cs300036v
Zhang, 2015, Synthesis of hierarchical porous δ-MnO2 nanoboxes as an efficient catalyst for rechargeable Li–O2 batteries, Nanoscale, 7, 14881, 10.1039/C5NR02983J
Zhao, 2013, Hierarchical porous Co3O4 films as cathode catalysts of rechargeable Li-O2 batteries, J. Mater. Chem., 1, 12862, 10.1039/c3ta13209a
Wang, 2015, Palladium nanoparticle functionalized graphene nanosheets for Li–O2 batteries: enhanced performance by tailoring the morphology of the discharge product, RSC Adv., 5, 73451, 10.1039/C5RA11312A
Wu, 2016, Platinum‐coated hollow graphene nanocages as cathode used in lithium‐oxygen batteries, Adv. Funct. Mater., 26, 7626, 10.1002/adfm.201602246
Zhang, 2014, A composite of Co nanoparticles highly dispersed on N-rich carbon substrates: an efficient electrocatalyst for Li–O2 battery cathodes, Chem. Commun., 50, 776, 10.1039/C3CC47149G
Zhang, 2018, Binder-free NiFe2O4/C nanofibers as air cathodes for Li-O2 batteries, J. Power Sources, 377, 136, 10.1016/j.jpowsour.2017.12.002
Zhang, 2016, NiFe2O4–CNT composite: an efficient electrocatalyst for oxygen evolution reactions in Li–O2 batteries guided by computations, J. Mater. Chem. A., 4, 9390, 10.1039/C6TA02779B
Chen, 2014, Hierarchical mesoporous γ- Fe2O3/carbon nanocomposites derived from metal organic frameworks as a cathode electrocatalyst for rechargeable Li-O2 batteries, Electrochim. Acta, 134, 293, 10.1016/j.electacta.2014.04.110
Shaheen, 2007, Thermal behaviour of pure and binary Fe(NO3)3·9H2O and (NH4)6Mo7O24·4H2O systems, Mater. Sci. Eng., A, 445–446, 7113
Wu, 2016, Cost-effective carbon supported Fe2O3 nanoparticles as an efficient catalyst for non-aqueous lithium-oxygen batteries, Electrochim. Acta, 211, 545, 10.1016/j.electacta.2016.05.147
Suresh, 2014, Fabrication of Ni–Fe2O3 magnetic nanorods and application to the detection of uric acid, RSC Adv., 4, 17146, 10.1039/c4ra00725e
Tangwatanakul, 2019, Synchrotron X-ray absorption spectra of iron oxides synthesized by Co-precipitation at varying temperatures, Orient. J. Chem., 35, 36, 10.13005/ojc/35Specialissue105
Agote-Arán, 2019, Operando HERFD-XANES/XES studies reveal differences in the activity of Fe-species in MFI and CHA structures for the standard selective catalytic reduction of NO with NH3, Appl. Catal., A, 570, 283, 10.1016/j.apcata.2018.11.026
Liu, 2017, Activated carbon fiber paper based electrodes with high electrocatalytic activity for vanadium flow batteries with improved power density, ACS Appl. Mater. Interfaces, 9, 4626, 10.1021/acsami.6b14478
Han, 2007, Growth and properties of single-crystalline γ-Fe2O3 nanowires, J. Phys. Chem. C, 111, 5034, 10.1021/jp067837m
Yue, 2010, Highly hydroxylated carbon fibres as electrode materials of all-vanadium redox flow battery, Carbon, 48, 3079, 10.1016/j.carbon.2010.04.044
Mawhinney, 2000, Surface defect site density on single walled carbon nanotubes by titration, Chem. Phys. Lett., 324, 213, 10.1016/S0009-2614(00)00526-1
Li, 2018, Fe2O3 nanoparticle seed catalysts enhance cyclability on deep (Dis)charge in aprotic Li-O2 batteries, Adv. Energy Mater., 8
Kang, 2021, Direct growth of CuO particles on carbon papers for high-performance rechargeable Li–O2 batteries, J. Nanosci. Nanotechnol., 21, 1, 10.1166/jnn.2021.19227