4.8 Article

Electrochemically Induced Structural Transformation in a γ-MnO2 Cathode of a High Capacity Zinc-Ion Battery System

Journal

CHEMISTRY OF MATERIALS
Volume 27, Issue 10, Pages 3609-3620

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/cm504717p

Keywords

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Funding

  1. Global Frontier Program through the Global Frontier Hybrid Interface Materials (GFHIM) of the National Research Foundation of Korea (NRF) - Ministry of Science, ICT & Future Planning [2013M3A6B1078875, 2013-073298]
  2. National Research Foundation of Korea [2013M3A6B1078875] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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In the present study, an in-depth investigation on the structural transformation in a mesoporous gamma-MnO2 cathode during electrochemical reaction in a zinc-ion battery (ZIB) has been undertaken. A combination of in situ Synchrotron XANES and XRD studies reveal that the tunnel-type parent gamma-MnO2 undergoes a structural transformation to spinel-type Mn(III) phase (ZnMn2O4) and two new intermediary Mn(II) phases, namely, tunnel-type gamma-ZnxMnO2 and layered-type L-ZnyMnO2, and that these phases with multioxidation states coexist after complete electrochemical Zn-insertion. On successive Zn-deinsertion/extraction, a majority of these phases with multioxidation states is observed to revert back to the parent gamma-MnO2 phase. The mesoporous gamma-MnO2 cathode, prepared by a simple ambient temperature strategy followed by low-temperature annealing at 200 degrees C, delivers an initial discharge capacity of 285 mAh g(-1) at 0.05 mA cm(-2) with a defined plateau at around 1.25 V vs Zn/Zn2+. Ex situ HR-TEM studies of the discharged electrode aided to identify the lattice fringe widths corresponding to the Mn(III) and Mn(II) phases, and the stoichiometric composition estimated by ICP analysis appears to be concordant with the in situ findings. Ex situ XRD studies also confirmed that the same electrochemical reaction occurred on repeated discharge/charge cycling. Moreover, the present synthetic strategy offers solutions for developing cost-effective and environmentally safe nanostructured porous electrodes for cheap and eco-friendly batteries.

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