Comprehensive Study of the Cu F2 Conversion Reaction Mechanism in a Lithium Ion Battery
Hua, X.; Robert, R.; Du, L.; Wiaderek, K.M.; Leskes, M.; Chapman, K.W.; Chupas, P.J.; Grey, C.P.
The Journal of Physical Chemistry C 118(28): 15169-15184
2014
ISSN/ISBN: 1932-7447 DOI: 10.1021/jp503902z
Accession: 082581187
Full-Text Article emailed within 0-6 h
Payments are secure & encrypted

References
Luo, L; Wu, J; Xu, J; Dravid, V P. 2014: Tackling Reversible Conversion Reaction Mechanism for Lithium Based Battery Microscopy and Microanalysis 20(S3): 1618-1619Su, H.; Xu, Y.-F.; Feng, S.-C.; Wu, Z.-G.; Sun, X.-P.; Shen, C.-H.; Wang, J.-Q.; Li, J.-T.; Huang, L.; Sun, S.-G. 2015: Hierarchical Mn₂O ₃Hollow Microspheres as Anode Material of Lithium Ion Battery and its Conversion Reaction Mechanism Investigated by XANES Acs Applied Materials and Interfaces 7(16): 8488-8494
Li, L.; Meng, F.; Jin, S. 2012: High-capacity lithium-ion battery conversion cathodes based on iron fluoride nanowires and insights into the conversion mechanism Nano Letters 12(11): 6030-6037
Fu, L.; Song, K.; Li, X.; van Aken, P.A.; Wang, C.; Maier, J.; Yu, Y. 2014: Direct evidence of a conversion mechanism in a Ni Sn O3 anode for lithium ion battery application RSC Adv. 4(68): 36301-36306
Yu, S.-H.; Lee, S.H.; Lee, D.J.; Sung, Y.-E.; Hyeon, T. 2016: Conversion Reaction-Based Oxide Nanomaterials for Lithium Ion Battery Anodes Small 12(16): 2146-2172
Saxena, A.; Kumar, D.; Tandon, N. 2022: Development of lubricious environmentally friendly greases using synergistic natural resources: A potential alternative to mineral oil-based greases Journal of Cleaner Production 380: 135047
Permien, S.; Indris, S.; Hansen, A-Lena.; Scheuermann, M.; Zahn, D.; Schürmann, U.; Neubüser, G.; Kienle, L.; Yegudin, E.; Bensch, W. 2016: Elucidation of the Conversion Reaction of CoMnFeO4 Nanoparticles in Lithium Ion Battery Anode via Operando Studies Acs Applied Materials and Interfaces 8(24): 15320-15332
Luo, L.; Wu, J.; Xu, J.; Dravid, V.P. 2014: Atomic resolution study of reversible conversion reaction in metal oxide electrodes for lithium-ion battery Acs Nano 8(11): 11560-11566
Lee, M.; Hwang, Y.; Yun, K.; Chung, Y. 2016: Cathode reaction mechanism on the h-BN/Ni (111) heterostructure for the lithium-oxygen battery Journal of Power Sources 307: 379-384
Qingmei, S.U.; Jun, Z.H.A.N.G.; Yishan, W.U.; Gaohui, D.U. 2014: Revealing the electrochemical conversion mechanism of porous Co3O4 nanopiates in lithium ion battery by in situ transmission electron microscopy Nano Energy 9: 264-272
Hansan, L.I.U.; Yong, Y.A.N.G.; Jiujun, Z.H.A.N.G. 2007: Reaction mechanism and kinetics of lithium ion battery cathode material LiNiΟ2 with CO2 Journal of Power Sources 173(1): 556-561
Sonoyama, N.; Niki, K.; Koide, A.; Eguchi, M.; Ogasawara, Y.; Tsukada, T.; Dedetemo, P.K. 2021: Structure and reaction mechanism of binary Ni-Al oxides as materials for lithium-ion battery anodes Dalton Transactions 50(40): 14176-14186
Ho Suk, R.Y.U.; Zaiping, G.U.O.; Hyo Jun, A.H.N.; Gyu Bong, C.H.O.; Huakun, L.I.U. 2009: Investigation of discharge reaction mechanism of lithium|liquid electrolyte|sulfur battery Journal of Power Sources 189(2): 1179-1183
Ni, E.; Uematsu, S.; Sonoyama, N. 2014: Anderson type polyoxomolybdate as cathode material of lithium battery and its reaction mechanism Journal of Power Sources 267: 673-681
Liang, Y.; Shen, C.; Liu, H.; Wang, C.; Li, D.; Zhao, X.; Fan, L.-Z. 2023: Tailoring Conversion-Reaction-Induced Alloy Interlayer for Dendrite-Free Sulfide-Based All-Solid-State Lithium-Metal Battery Advanced Science 10(19): E2300985
Park, G.D.; Yang, S.J.; Lee, J.-H.; Kang, Y.C. 2019: Investigation of Binary Metal (Ni, Co) Selenite as Li-Ion Battery Anode Materials and their Conversion Reaction Mechanism with Li Ions Small 15(51): E1905289