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Journal ArticleDOI

K0.38(H2O)0.82MoS2 as a universal host for rechargeable aqueous cation (K+, Na+, Li+, NH4+, Mg2+, Al3+) batteries.

Miao Xie, +3 more
- 17 Mar 2020 - 
- Vol. 49, Iss: 11, pp 3488-3494
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TLDR
This study provides a promising anode for aqueous batteries using K0.38(H2O)0.82MoS2 as a universal host for reversible intercalation of various hydrated cations using molybdenum based ternary sulfide as an anode material.
Abstract
Rechargeable aqueous batteries have been widely investigated for large-scale energy storage in view of their high safety and low cost. While tremendous efforts have been devoted to the development of cathode materials, few have focused on the development of anode materials and only limited candidates such as V-based oxides and Ti-based polyanionic compounds have been explored. In this study, for the first time, we discover a hydrated compound of molybdenum based ternary sulfide K0.38(H2O)0.82MoS2 as a universal host for reversible intercalation of various hydrated cations (K+, Na+, Li+, NH4+, Mg2+, Al3+, etc.). It undergoes a two-phase reaction during the electrochemical process, showing a stable redox potential of around -0.1 V vs. Ag/AgCl to serve as an anode material and a specific capacity of over 50 mA h g-1 at a current density of 0.5 A g-1. The intercalation of larger hydrated cations during the discharge process results in a lower operation potential and wider interlayer spacing, which has been explained theoretically by Gibbs free energy analysis and valence bond theory. In particular, taking hydrated K+ insertion and extraction of K0.38(H2O)0.82MoS2 as an example, the ex situ XRD and XPS results demonstrate a reversible change in the phase structure and Mo3+/Mo4+ redox couple during the charge-discharge process. Our study provides a promising anode for aqueous batteries using K0.38(H2O)0.82MoS2 as a universal host.

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Citations
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Hydrogen Bond-Assisted Ultra-Stable and Fast Aqueous NH4+ Storage

TL;DR: In this article, the NH4+ insertion in cubic PBAs was proposed, especially for copper hexacyanoferrate (CuHCF), and a full cell by coupling CuHCF cathode and polyaniline anode was constructed.
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Advanced Post-Potassium-Ion Batteries as Emerging Potassium-Based Alternatives for Energy Storage

TL;DR: In this paper, a review summarizes the recent progress, current challenges, and advancements in post-potassium-ion batteries such as K-S/Se batteries and ASSPIBs.
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Research Development on Aqueous Ammonium‐Ion Batteries

TL;DR: In this article , the latest developments in electrode materials, electrolytes, and battery chemistry in aqueous rechargeable batteries are reviewed in detail timely and further challenges and opportunities are pointed out.
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