Electrochemical Behavior of Ti3C2Tx MXene in Environmentally Friendly Methanesulfonic Acid Electrolyte

Two‐dimensional transition metal carbides, nitrides, and carbonitrides, called MXenes, have gained much attention as electrode materials in electrochemical energy storage devices. In particular, Ti3C2Tx has shown outstanding performance in common sulfuric acid (H2SO4) electrolyte. In this work, a mo...

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Veröffentlicht in:ChemSusChem 2019-10, Vol.12 (19), p.4480-4486
Hauptverfasser: Zhao, Xin, Dall'Agnese, Chunxiang, Chu, Xue‐Feng, Zhao, Shuangshuang, Chen, Gang, Gogotsi, Yury, Gao, Yu, Dall'Agnese, Yohan
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container_end_page 4486
container_issue 19
container_start_page 4480
container_title ChemSusChem
container_volume 12
creator Zhao, Xin
Dall'Agnese, Chunxiang
Chu, Xue‐Feng
Zhao, Shuangshuang
Chen, Gang
Gogotsi, Yury
Gao, Yu
Dall'Agnese, Yohan
description Two‐dimensional transition metal carbides, nitrides, and carbonitrides, called MXenes, have gained much attention as electrode materials in electrochemical energy storage devices. In particular, Ti3C2Tx has shown outstanding performance in common sulfuric acid (H2SO4) electrolyte. In this work, a more environmentally friendly alternative acidic electrolyte, methanesulfonic acid (MSA), is proposed. The energy storage performance of Ti3C2Tx in aqueous and neat MSA ionic liquid electrolytes is investigated. The specific capacitance of 298 F g−1 was obtained at a scan rate of 5 mV s−1 in 4 m MSA and it exhibits excellent cycle stability with retention of nearly 100 % over 10 000 cycles. This electrochemical performance is similar to that of Ti3C2Tx in H2SO4, but using a greener electrolyte. In situ X‐ray diffraction analysis reveals the intercalation charge storage mechanism. Specifically, the interlayer spacing changes by up to 2.58 Å during cycling, which is the largest reversible volume change observed in MXenes in aqueous electrolytes. Change the volume: Two‐dimensional titanium carbide (Ti3C2Tx MXene) has gained much attention as an electrode for supercapacitors with common sulfuric acid as the electrolyte. In this work, attractive performance is achieved with a more environmentally friendly alternative acidic electrolyte, methanesulfonic acid. The largest reversible volume change in MXenes in aqueous electrolytes is observed.
doi_str_mv 10.1002/cssc.201901746
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In particular, Ti3C2Tx has shown outstanding performance in common sulfuric acid (H2SO4) electrolyte. In this work, a more environmentally friendly alternative acidic electrolyte, methanesulfonic acid (MSA), is proposed. The energy storage performance of Ti3C2Tx in aqueous and neat MSA ionic liquid electrolytes is investigated. The specific capacitance of 298 F g−1 was obtained at a scan rate of 5 mV s−1 in 4 m MSA and it exhibits excellent cycle stability with retention of nearly 100 % over 10 000 cycles. This electrochemical performance is similar to that of Ti3C2Tx in H2SO4, but using a greener electrolyte. In situ X‐ray diffraction analysis reveals the intercalation charge storage mechanism. Specifically, the interlayer spacing changes by up to 2.58 Å during cycling, which is the largest reversible volume change observed in MXenes in aqueous electrolytes. Change the volume: Two‐dimensional titanium carbide (Ti3C2Tx MXene) has gained much attention as an electrode for supercapacitors with common sulfuric acid as the electrolyte. In this work, attractive performance is achieved with a more environmentally friendly alternative acidic electrolyte, methanesulfonic acid. 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subjects Aqueous electrolytes
carbides
Carbon nitride
Electrochemical analysis
Electrode materials
Electrolytes
Energy storage
Interlayers
Ionic liquids
Metal carbides
Methanesulfonic acid
MXenes
sulfonic acids
Sulfuric acid
supercapacitors
Transition metals
title Electrochemical Behavior of Ti3C2Tx MXene in Environmentally Friendly Methanesulfonic Acid Electrolyte
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