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Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials

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dc.contributor.author Ross, N
dc.contributor.author Iwuoha, EI
dc.contributor.author Ikpo, CO
dc.contributor.author Baker, P
dc.contributor.author Njomo, N
dc.contributor.author Mailu, SN
dc.contributor.author Masikini, M
dc.contributor.author Matinise, N
dc.contributor.author Tsegaye, A
dc.contributor.author Mayedwa, N
dc.contributor.author Waryo, T
dc.contributor.author Ozoemena, KI
dc.contributor.author Williams, A
dc.date.accessioned 2015-08-17T13:16:25Z
dc.date.available 2015-08-17T13:16:25Z
dc.date.issued 2014-05
dc.identifier.citation Ross, N, Iwuoha, E.I, Ikpo, C.O, Baker, P, Njomo, N, Mailu, S.N, Masikini, M, Matinise, N, Tsegaye, A, Mayedwa, N, Waryo, T, Ozoemena, K.I and Williams, A. 2014. Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials. Electrochimica Acta, vol. 128, pp 178-183 en_US
dc.identifier.issn 0013-4686
dc.identifier.uri http://ac.els-cdn.com/S0013468613026017/1-s2.0-S0013468613026017-main.pdf?_tid=36ca37e8-44b3-11e5-8667-00000aab0f6b&acdnat=1439797401_9d691c81b94805ed4fc39659b9d4ff98
dc.identifier.uri http://hdl.handle.net/10204/8011
dc.description Copyright: 2015 Elsevier. Due to copyright restrictions, the attached PDF only contains the abstract of the full text item. For access to the full text item, please contact the publisher's website. The definitive version of the work is published in Electrochimica Acta, vol. 128, pp 178-183 en_US
dc.description.abstract In this study the synergistic and catalytic properties of a novel nano-composite cathode material of nominal composition Li(M)(subx)Mn(sub2-x)O(sub4) (M = Pt-Au; x # 0.2) has been explored. Li(PtAu)xMn(sub2-x)O4 nanomaterial for use in lithium-ion batteries (LIB) was synthesized by incorporation of the Pt-Au (1:1) nanoparticles onto the spinel phase LiMn(sub2)O(sub4). Ultra-low scan rate (0.01 mV (sups-1)) cyclic voltammetry of the cathode material in 1 M LiPF(sub6) (in 1:1 EC:DMC), showed four sets of redox peaks, which reflect the typical redox process of the active material in the spinel structure due to lithium intercalation and deintercalation. The Li/Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) cell had less polarization as it effectively accommodates the structural transformation during Li(sup+) ion charge and discharge. The Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) cathode showed an increase in discharge currents densities with an exchange current density, i(sub0), value of 2.8 × 10(sup-4_ A cm(sup-2), which suggests increase in the rate of electron transfer compared to LiMn(sub2)O(sub4) (1.8 × 10(sup-4) A cm(sup-2)). Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) exhibited excellent capacity retention upon extended cycling and can release 90 mAh (supg-1) at 10C with a capacity retention of 99% after 50 cycles. Faster charge transportation at high current rates proved to prevent the pronounced pile-up of Li(sup+) ions and undesired Mn(sup3+) ions on the surfaces. The electrochemical impedance spectroscopy (EIS) results showed a decrease in charge transfer resistance for LiMn(sub2)O(sub4) after surface coverage with conductive PtAu NP's. For the lithium diffusion coefficient in Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) thin film, its magnitude order is 10(sup-11) cm2·s(sup-1). en_US
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.relation.ispartofseries Workflow;14479
dc.subject Lithium-ion batteries en_US
dc.subject Cathode material en_US
dc.subject Nanomaterials en_US
dc.subject Doping en_US
dc.subject Charge transport en_US
dc.title Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials en_US
dc.type Article en_US
dc.identifier.apacitation Ross, N., Iwuoha, E., Ikpo, C., Baker, P., Njomo, N., Mailu, S., ... Williams, A. (2014). Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials. http://hdl.handle.net/10204/8011 en_ZA
dc.identifier.chicagocitation Ross, N, EI Iwuoha, CO Ikpo, P Baker, N Njomo, SN Mailu, M Masikini, et al "Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials." (2014) http://hdl.handle.net/10204/8011 en_ZA
dc.identifier.vancouvercitation Ross N, Iwuoha E, Ikpo C, Baker P, Njomo N, Mailu S, et al. Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials. 2014; http://hdl.handle.net/10204/8011. en_ZA
dc.identifier.ris TY - Article AU - Ross, N AU - Iwuoha, EI AU - Ikpo, CO AU - Baker, P AU - Njomo, N AU - Mailu, SN AU - Masikini, M AU - Matinise, N AU - Tsegaye, A AU - Mayedwa, N AU - Waryo, T AU - Ozoemena, KI AU - Williams, A AB - In this study the synergistic and catalytic properties of a novel nano-composite cathode material of nominal composition Li(M)(subx)Mn(sub2-x)O(sub4) (M = Pt-Au; x # 0.2) has been explored. Li(PtAu)xMn(sub2-x)O4 nanomaterial for use in lithium-ion batteries (LIB) was synthesized by incorporation of the Pt-Au (1:1) nanoparticles onto the spinel phase LiMn(sub2)O(sub4). Ultra-low scan rate (0.01 mV (sups-1)) cyclic voltammetry of the cathode material in 1 M LiPF(sub6) (in 1:1 EC:DMC), showed four sets of redox peaks, which reflect the typical redox process of the active material in the spinel structure due to lithium intercalation and deintercalation. The Li/Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) cell had less polarization as it effectively accommodates the structural transformation during Li(sup+) ion charge and discharge. The Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) cathode showed an increase in discharge currents densities with an exchange current density, i(sub0), value of 2.8 × 10(sup-4_ A cm(sup-2), which suggests increase in the rate of electron transfer compared to LiMn(sub2)O(sub4) (1.8 × 10(sup-4) A cm(sup-2)). Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) exhibited excellent capacity retention upon extended cycling and can release 90 mAh (supg-1) at 10C with a capacity retention of 99% after 50 cycles. Faster charge transportation at high current rates proved to prevent the pronounced pile-up of Li(sup+) ions and undesired Mn(sup3+) ions on the surfaces. The electrochemical impedance spectroscopy (EIS) results showed a decrease in charge transfer resistance for LiMn(sub2)O(sub4) after surface coverage with conductive PtAu NP's. For the lithium diffusion coefficient in Li(PtAu)(sub0.02)Mn(sub1.98)O(sub4) thin film, its magnitude order is 10(sup-11) cm2·s(sup-1). DA - 2014-05 DB - ResearchSpace DP - CSIR KW - Lithium-ion batteries KW - Cathode material KW - Nanomaterials KW - Doping KW - Charge transport LK - https://researchspace.csir.co.za PY - 2014 SM - 0013-4686 T1 - Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials TI - Amplification of the discharge current density of lithium-ion batteries with spinel phase Li(PtAu)0.02Mn1.98O4 nano-materials UR - http://hdl.handle.net/10204/8011 ER - en_ZA


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