Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Minakshi, Manickam

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (34/34 displayed)

  • 2021Alginate biopolymer effect on the electrodeposition of manganese dioxide on electrodes for supercapacitors45citations
  • 2021Suitable electrode materials for hybrid capacitorscitations
  • 2021High temperature (up to 1200 °C) thermal-mechanical stability of Si and Ni doped CrN framework coatings8citations
  • 2020Physico-chemical properties of CrMoN coatings - combined experimental and computational studies16citations
  • 2020Traditional salt-in-water electrolyte vs. water-in-salt electrolyte with binary metal oxide for symmetric supercapacitors: Capacitive vs. faradaic48citations
  • 2020Tuning the morphology and redox behaviour by varying the concentration of Fe in a CoNiFe ternary oxide heterostructure for hybrid devices13citations
  • 2020Role of additives in electrochemical deposition of ternary metal oxide microspheres for supercapacitor applications67citations
  • 2020A hybrid electrochemical energy storage device using sustainable electrode materials40citations
  • 2020Highly energetic and stable gadolinium/bismuth molybdate with a fast reactive species, redox mechanism of aqueous electrolyte28citations
  • 2019Facile synthesis of a nanoporous sea sponge architecture in a binary metal oxide16citations
  • 2018A combined theoretical and experimental approach of a new ternary metal oxide in molybdate composite for hybrid energy storage capacitors32citations
  • 2018Effect of oxidizer in the synthesis of NiO anchored nanostructure nickel molybdate for sodium-ion battery31citations
  • 2017Effect of Transition Metal Cations on Stability Enhancement for Molybdate-Based Hybrid Supercapacitor94citations
  • 2016Electrochemical synthesis of polyaniline cross-linked NiMoO4nanofibre dendrites for energy storage devices65citations
  • 2016Tuning the redox properties of the nanostructured CoMoO4 electrode: Effects of surfactant content and synthesis temperature70citations
  • 2016Synthesis, structural and electrochemical properties of sodium nickel phosphate for energy storage devices87citations
  • 2015Nanocomposite sodium transition metal phosphate prepared via combustion route for hybrid capacitorcitations
  • 2015Synthesis and characterization of manganese molybdate for symmetric capacitor applicationscitations
  • 2015Dual effect of anionic surfactants in the electrodeposited MnO2 trafficking redox ions for energy storage25citations
  • 2015Synthesis, and crystal and electronic structure of sodium metal phosphate for use as a hybrid capacitor in non-aqueous electrolyte51citations
  • 2015PEO nanocomposite polymer electrolyte for solid state symmetric capacitors30citations
  • 2014Structural and electrochemical properties of nanocomposite polymer electrolyte for electrochemical devices55citations
  • 2012High energy density rechargeable battery: Study of polyvinylpyrrolidone encapsulated MnO2 composite as cathode materialcitations
  • 2012Polyvinylpyrrolidone assisted sol–gel route LiCo1/3Mn1/3Ni1/3PO4 composite cathode for aqueous rechargeable battery54citations
  • 2012Role of structural defects in olivine cathodes54citations
  • 2011Characterization of alkaline-earth oxide additions to the MnO2 cathode in an aqueous secondary battery41citations
  • 2011Synthesis and characterization of Li(Co0.5Ni0.5)PO4 cathode for Li-Ion aqueous battery applications54citations
  • 2010The effect of B4C addition to MnO2 in a cathode material for battery applications9citations
  • 2008Examining manganese dioxide electrode in KOH electrolyte using TEM technique36citations
  • 2007A study of lithium insertion into MnO2 containing TiS2 additive a battery material in aqueous LiOH solution37citations
  • 2007TEM investigation of MnO2 cathode containing TiS2 and its influence in aqueous lithium secondary battery17citations
  • 2006Electrochemical behavior of anatase TiO2 in aqueous lithium hydroxide electrolyte46citations
  • 2006TEM characterization of MnO2 cathode in an aqueous lithium secondary batterycitations
  • 2006Electrochemistry of cathode materials in aqueous lithium hydroxide electrolytecitations

Places of action

Chart of shared publication
Wickramaarachchi, K.
1 / 1 shared
Schneider, P. A.
1 / 1 shared
Ahuja, R.
5 / 16 shared
Radevski, N.
1 / 1 shared
Lee, S.
1 / 37 shared
Amri, A.
1 / 16 shared
Lim, H. N.
2 / 4 shared
Liew, W. Y. H.
1 / 2 shared
Rowles, M. R.
1 / 1 shared
Jiang, Z-T
5 / 29 shared
Mohammadpour, E.
1 / 4 shared
Mondinos, N.
1 / 12 shared
Miran, H. A.
1 / 3 shared
Veder, J-P
1 / 2 shared
Dlugogorski, B. Z.
1 / 8 shared
Zhou, Z-F
1 / 4 shared
Jaf, Z. N.
1 / 1 shared
Huang, N. M.
1 / 5 shared
Appadoo, D.
2 / 2 shared
Acharya, A. N.
2 / 2 shared
Tripathy, B. C.
2 / 2 shared
Alenazey, F.
2 / 2 shared
Panda, P. K.
2 / 4 shared
Biswal, A.
4 / 4 shared
Swain, N.
1 / 1 shared
Mohapatra, S.
1 / 10 shared
Garnweitner, Georg
1 / 13 shared
Mitchell, David R. G.
1 / 6 shared
Jean-Fulcrand, Annelise
1 / 4 shared
Pramanik, Nimai Chand
1 / 1 shared
Singh, D.
1 / 6 shared
Sharma, P.
1 / 10 shared
Panda, P.
1 / 1 shared
Tripathy, B.
1 / 1 shared
Ahuja, Rajeev
1 / 32 shared
Watcharatharapong, Teeraphat
1 / 1 shared
Chakraborty, Sudip
1 / 20 shared
Barlow, A. J.
1 / 2 shared
Barmi, M.
1 / 1 shared
Fichtner, M.
1 / 14 shared
Mitchell, D. R. G.
2 / 4 shared
Chakraborty, S.
3 / 13 shared
Aughterson, R. D.
1 / 1 shared
Li, D.
1 / 22 shared
Watcharatharapong, T.
3 / 3 shared
Ramkumar, R.
1 / 1 shared
Barmi, M. J.
1 / 1 shared
Jones, R.
1 / 22 shared
Mitchell, D.
3 / 4 shared
Selvan, R. K.
1 / 2 shared
Meyrick, D.
2 / 2 shared
Senthilkumar, B.
1 / 1 shared
Subbaiah, T.
1 / 1 shared
Chandra Tripathy, B.
1 / 1 shared
Duraisamy, S.
1 / 1 shared
Munichandraiah, N.
1 / 1 shared
Rao, P. T.
1 / 1 shared
Singh, N. K.
2 / 6 shared
Verma, M. L.
2 / 2 shared
Singh, P.
5 / 17 shared
Kandhasamy, S.
2 / 2 shared
Pandey, A.
1 / 6 shared
Nallathamby, K.
2 / 2 shared
Ionescu, M.
1 / 2 shared
Blackford, M.
1 / 1 shared
Ralph, D. E.
1 / 1 shared
Sharma, N.
1 / 10 shared
Blackford, M. G.
1 / 2 shared
Thorogood, G. J.
1 / 2 shared
Prince, K.
1 / 1 shared
Thurgate, S.
2 / 2 shared
Chart of publication period
2021
2020
2019
2018
2017
2016
2015
2014
2012
2011
2010
2008
2007
2006

Co-Authors (by relevance)

  • Wickramaarachchi, K.
  • Schneider, P. A.
  • Ahuja, R.
  • Radevski, N.
  • Lee, S.
  • Amri, A.
  • Lim, H. N.
  • Liew, W. Y. H.
  • Rowles, M. R.
  • Jiang, Z-T
  • Mohammadpour, E.
  • Mondinos, N.
  • Miran, H. A.
  • Veder, J-P
  • Dlugogorski, B. Z.
  • Zhou, Z-F
  • Jaf, Z. N.
  • Huang, N. M.
  • Appadoo, D.
  • Acharya, A. N.
  • Tripathy, B. C.
  • Alenazey, F.
  • Panda, P. K.
  • Biswal, A.
  • Swain, N.
  • Mohapatra, S.
  • Garnweitner, Georg
  • Mitchell, David R. G.
  • Jean-Fulcrand, Annelise
  • Pramanik, Nimai Chand
  • Singh, D.
  • Sharma, P.
  • Panda, P.
  • Tripathy, B.
  • Ahuja, Rajeev
  • Watcharatharapong, Teeraphat
  • Chakraborty, Sudip
  • Barlow, A. J.
  • Barmi, M.
  • Fichtner, M.
  • Mitchell, D. R. G.
  • Chakraborty, S.
  • Aughterson, R. D.
  • Li, D.
  • Watcharatharapong, T.
  • Ramkumar, R.
  • Barmi, M. J.
  • Jones, R.
  • Mitchell, D.
  • Selvan, R. K.
  • Meyrick, D.
  • Senthilkumar, B.
  • Subbaiah, T.
  • Chandra Tripathy, B.
  • Duraisamy, S.
  • Munichandraiah, N.
  • Rao, P. T.
  • Singh, N. K.
  • Verma, M. L.
  • Singh, P.
  • Kandhasamy, S.
  • Pandey, A.
  • Nallathamby, K.
  • Ionescu, M.
  • Blackford, M.
  • Ralph, D. E.
  • Sharma, N.
  • Blackford, M. G.
  • Thorogood, G. J.
  • Prince, K.
  • Thurgate, S.
OrganizationsLocationPeople

thesis

Electrochemistry of cathode materials in aqueous lithium hydroxide electrolyte

  • Minakshi, Manickam
Abstract

Electrochemical behavior of electrolytic manganese dioxide (EMD), chemically prepared battery grade manganese dioxide (BGM), titanium dioxide (TiO2), lithium iron phosphate (LiFePO4) and lithium manganese phosphate (LiMnPO4) in aqueous lithium hydroxide electrolyte has been investigated. These materials are commonly used as cathodes in non-aqueous electrolyte lithium batteries. The main aim of the work was to determine how the electroreduction/oxidation behavior of these materials in aqueous LiOH compares with that reported in the literature in non-aqueous electrolytes in connection with lithium batteries. An objective was to establish whether these materials could also be used to develop other battery systems using aqueous LiOH as electrolyte.The electrochemical characteristics of the above materials were investigated by subjecting them to slow scan cyclic voltammetry and determining the charge/discharge characteristics of Zn/cathode material-aqueous LiOH batteries. The products of electroreduction/oxidation were characterized by physical techniques using X-ray diffraction (XRD), scanning electron micrography (SEM), X-ray photoelectron spectroscopy (XPS), secondary ion mass spectrometry (SIMS), Thermogravimetric analysis (TG) and infra-red spectrometry (IR).The reduction of gamma-MnO2 (EMD) in aqueous lithium hydroxide electrolyte is found to result in intercalation of Li+ into the host structure of gamma-MnO2. The process was found to be reversible for many cycles. This is similar to what is known to occur for gamma-MnO2 in non-aqueous electrolytes. The mechanism, however, differs from that for reduction/oxidation of gamma-MnO2 in aqueous potassium hydroxide electrolyte. KOH electrolyte is used in the state-of-art aqueous alkaline Zn/MnO2 batteries. Alkaline batteries based on aqueous KOH as the electrolyte rely upon a mechanism other than K+ intercalation into MnO2. This mechanism is not reversible. This is explained in terms of the relative ionic sizes of Li+ and K+. The lithium-intercalated MnO2 lattice is stable because Li+ and Mn4+ are of approximately the same size and hence Li+ is accommodated nicely into the host lattice of MnO2. The K+ ion which has almost double the size of Li+ cannot be appropriately accommodated into the host structure and hence the K+ -intercalated MnO2 phase is not stable.Chemically prepared battery grade MnO2 (BGM) is found to undergo electroreduction/oxidation in aqueous LiOH via the same Li+ intercalation mechanism as for the EMD. While the Zn/BGM- aqueous LiOH cell discharges at a voltage higher than that for the Zn/EMD- aqueous LiOH cell under similar conditions, the rechargeability and the material utilization of the BGM cell is poorer.The cathodic behavior of TiO2 (anatase phase) in the presence of aqueous LiOH is not reversible. In addition to LiTiO2, Ti2O3 is also formed. The discharge voltage of the Zn/TiO2- aqueous LiOH cell and material utilization of the TiO2 as cathode are very low. Hence TiO2 is not suitable for use in any aqueous LiOH electrolyte battery.LiFePO4 (olivine-type structure) as a cathode undergoes electrooxidation in aqueous LiOH forming FePO4. However the subsequent reduction forms not only the original LiFePO4 but also Fe3O4. Thus the process is not completely reversible and hence LiFePO4 is not a suitable material for use as a cathode in aqueous battery systems.LiMnPO4 (olivine-type structure) undergoes reversible electrooxidation in aqueous LiOH forming MnPO4. The charge/discharge voltage profile of the Zn/MnPO4-aqueous LiOH cell, its coulombic efficiency and rechargeability are comparable to that of the cell using gamma-MnO2. EMD and LiMnPO4 both have the potential for use in rechargeable batteries using aqueous LiOH as the electrolyte. Recommendations for further developmental work for such batteries are made.

Topics
  • impedance spectroscopy
  • phase
  • scanning electron microscopy
  • x-ray diffraction
  • x-ray photoelectron spectroscopy
  • Potassium
  • thermogravimetry
  • titanium
  • forming
  • Lithium
  • iron
  • Manganese
  • spectrometry
  • cyclic voltammetry
  • selective ion monitoring
  • secondary ion mass spectrometry