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  4. Polyethylene oxide-based solid-state polymer electrolyte hybridized with liquid catholyte for semi-solid-state rechargeable Mg–O2 batteries
 
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Polyethylene oxide-based solid-state polymer electrolyte hybridized with liquid catholyte for semi-solid-state rechargeable Mg–O2 batteries

Journal
Journal of Materials Chemistry A
Journal Volume
12
Journal Issue
38
Start Page
25968
End Page
25978
ISSN
2050-7488
2050-7496
Date Issued
2024
Author(s)
Ayan Sarkar
Shang-Yang Huang
Vasantan Rasupillai Dharmaraj
Behrouz Bazri
Kevin Iputera
Hsiu-Hui Su
Yi-An Chen
Han-Chen Chen
Yu-Ping Lin
Ren-Jei Chung
Da-Hua Wei
RU-SHI LIU  
DOI
10.1039/d4ta04244a
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/721938
Abstract
In this article, we report the fabrication of a free-standing non-porous polyethylene oxide (PEO)-based solid-state polymer electrolyte with the amalgamation of magnesium triflate (Mg(OTf)2) and plasticizer succinonitrile (SN) for room-temperature secondary Mg-O2 batteries. The polymer electrolyte comprising [EO] : Mg2+ = 20 : 1 and 30 wt% SN delivered the highest room-temperature (RT) conductivity of 3.9 × 10−5 S cm−1, which reached 2.2 × 10−4 S cm−1 at 60 °C. Ruthenium nanoparticles anchored multi-walled carbon nanotubes (Ru/CNT) on carbon paper were used as cathode catalysts for rechargeable Mg-O2 batteries. The non-establishment of the cathode-solid-state polymer electrolyte interphase was alleviated by introducing a separator soaked with 50-60 μL of 1 M Mg(TFSI)2 in diglyme (G2) between the polymer electrolyte and Ru/CNT cathode catalyst. The Mg-O2 battery with this hybrid electrolyte configuration delivered a deep discharge capacity of 9489 mA h g−1 at 100 mA g−1 and a stable galvanostatic discharge-charge performance with the cycle number reaching 51 at 100 mA g−1 with 500 mA h g−1 curtailing capacity, demonstrating an average charging-discharging voltage hysteresis of 1.14 V at RT. The polymer electrolyte also participated in forming an MgF2-rich stable solid-electrolyte interphase layer on the Mg anode, substantially protecting the anode surface from severe side reactions and corrosion. Raman spectroscopy and distribution of relaxation time studies shed light on the probable mechanism of the liquid catholyte in improving the interphase issue.
SDGs

[SDGs]SDG7

Publisher
Royal Society of Chemistry (RSC)
Type
journal article

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