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      A high-capacity aqueous Zn-ion hybrid energy storage device using poly(4,4′-thiodiphenol)-modified activated carbon as a cathode material

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          Abstract

          A poly(4,4′-thiodiphenol)/carbon composite cathode is used to fabricate Zn-ion hybrid energy storage devices with a high capacity and wide voltage window.

          Abstract

          Aqueous electrochemical energy storage devices have advantages in terms of high safety, low cost, and environmental benignity, yet a major drawback is the low energy density compared to those using organic electrolytes. Here, we report an aqueous Zn-ion hybrid energy storage device (ZIHESD) using poly(4,4′-thiodiphenol, TDP)-modified nanoporous activated carbon (AC) as the cathode material. The introduction of this redox-active polymer can largely enhance the energy storage capacity. Compared to the Zn//AC cell, the use of the poly(4,4′-TDP)/AC cathode leads to not only a wide voltage window, as broadened from 0.2–1.8 V to 0.1–1.9 V, but also an approximately three-fold increased areal capacity. The capacity retention is 71% after 2000 cycles. Also, a group of ZIHESDs with different AC mass loadings in the cathode are tested. A maximum areal capacity of 1.16 mA h cm −2 is achieved. Furthermore, a flexible quasi-solid-state cell encapsulated in a flat pouch shows stable electrochemical performance when repeatedly bent at large angles. The cell shows sustained powering capability after being partially cut by using scissors. The energy storage mechanism is discussed in detail.

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          Zn/MnO2 Battery Chemistry With H+ and Zn2+ Coinsertion.

          Rechargeable aqueous Zn/MnO2 battery chemistry in a neutral or mildly acidic electrolyte has attracted extensive attention recently because all the components (anode, cathode, and electrolyte) in a Zn/MnO2 battery are safe, abundant, and sustainable. However, the reaction mechanism of the MnO2 cathode remains a topic of discussion. Herein, we design a highly reversible aqueous Zn/MnO2 battery where the binder-free MnO2 cathode was fabricated by in situ electrodeposition of MnO2 on carbon fiber paper in mild acidic ZnSO4+MnSO4 electrolyte. Electrochemical and structural analysis identify that the MnO2 cathode experience a consequent H+ and Zn2+ insertion/extraction process with high reversibility and cycling stability. To our best knowledge, it is the first report on rechargeable aqueous batteries with a consequent ion-insertion reaction mechanism.
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            Present and Future Perspective on Electrode Materials for Rechargeable Zinc-Ion Batteries

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              Extremely safe, high-rate and ultralong-life zinc-ion hybrid supercapacitors

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                Author and article information

                Contributors
                Journal
                JMCAET
                Journal of Materials Chemistry A
                J. Mater. Chem. A
                Royal Society of Chemistry (RSC)
                2050-7488
                2050-7496
                October 15 2019
                2019
                : 7
                : 40
                : 23076-23083
                Affiliations
                [1 ]School of Materials Science and Engineering
                [2 ]Beihang University
                [3 ]Beijing 100083
                [4 ]China
                [5 ]Dalian University of Technology
                [6 ]Panjin 124221
                Article
                10.1039/C9TA08693E
                034b5cd3-f2df-4814-9394-bd442a3f37cc
                © 2019

                http://rsc.li/journals-terms-of-use

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