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Development of LiFePO4/FePO4 Electrode for Electro-Osmotic Pump using Li+ Migration
Jaewook Baek, Kyeonghyeon Kim, Woonsup Shin
J. Electrochem. Sci. Technol. 2018;9(2):85-92.   Published online June 30, 2018
DOI: https://doi.org/10.5229/JECST.2018.9.2.85

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Electric Field Influence on Li+ Ion Transport through Phase-Change LiFePO4/FePO4 Particles
ECS Meeting Abstracts. 2011;MA2011-01(28):1626-1626   Crossref logo
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Strain engineering of Li+ ion migration in olivine phosphate cathode materials LiMPO4 (M = Mn, Fe, Co) and (LiFePO4)n(LiMnPO4)m superlattices
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Novel NO2 Sensor Using PW12O403−/Chitosan-Graphene Nanocomposites/Cysteamine/Gold Electrode
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Li1.2Ti0.4Mn0.4O2 As 300 m Ah g-1-Class Electrode Material Using Redox Reaction of Oxide Ions
ECS Meeting Abstracts. 2016;MA2016-03(2):908-908   Crossref logo
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β3 -Adrenoceptor agonist stimulation of the Na+ ,K+ -pump in rat skeletal muscle is mediated by β2 - rather than β3 -adrenoceptors
British Journal of Pharmacology. 2006;149(6):635-646   Crossref logo
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Probing the Na + /Li + ‐ions Insertion Mechanism in an Aqueous Mixed‐Ion Rechargeable Batteries with NASICON‐NaTi 2 (PO 4 ) 3 Anode and Olivine‐LiFePO 4 Cathode
ChemElectroChem. 2022;10(2):   Crossref logo
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ChemInform Abstract: Li2Cu2O(SO4)2: A Possible Electrode for Sustainable Li-Based Batteries Showing a 4.7 V Redox Activity vs Li+/Li0.
ChemInform. 2015;46(27):no-no   Crossref logo
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ChemInform Abstract: Synthesis, Structure, and Characterization of New Li+-d0-Lone-Pair - Oxides: Noncentrosymmetric Polar Li6(Mo2O5)3(SeO3)6and Centrosymmetric Li2(MO3)(TeO3) (M: Mo6+or W6+).
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Extended Mo3IV-Polyoxometalates: 1D-[Mo6IVMo4VIGe2ZnO31py9 (H2O)]4– and 2D-[Mo3IVMo9VIZn6P7O56py8]+ (py = Pyridine)
Inorganic Chemistry. 2022;61(22):8558-8569   Crossref logo
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First-principles study on the mechanical and electronic properties of energetic molecular perovskites AM(ClO4)3 (A = C6H14N22+, C4H12N22+, C6H14N2O2+; M = Na+, K+)
RSC Advances. 2022;12(38):24647-24653   Crossref logo
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