Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage

The main challenge for sodium storage is to find suitable host materials to accommodate larger-sized Na+ and conquer sluggish chemical kinetics. Herein, by adjusting the heat treatment environment, a novel few-layered molybdenum oxide selenide encapsulated in a three-dimensional (3D) N-doped carbon...

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Published in:NEW JOURNAL OF CHEMISTRY
Main Authors: Qin, Yonghong; Abidin, Shahriman Zainal; Hashim, Azhari Bin Md; Hassan, Oskar Hasdinor; Zhao, Xiaojun
Format: Article
Language:English
Published: ROYAL SOC CHEMISTRY 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001195332500001
author Qin
Yonghong; Abidin
Shahriman Zainal; Hashim
Azhari Bin Md; Hassan
Oskar Hasdinor; Zhao
Xiaojun
spellingShingle Qin
Yonghong; Abidin
Shahriman Zainal; Hashim
Azhari Bin Md; Hassan
Oskar Hasdinor; Zhao
Xiaojun
Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
Chemistry
author_facet Qin
Yonghong; Abidin
Shahriman Zainal; Hashim
Azhari Bin Md; Hassan
Oskar Hasdinor; Zhao
Xiaojun
author_sort Qin
spelling Qin, Yonghong; Abidin, Shahriman Zainal; Hashim, Azhari Bin Md; Hassan, Oskar Hasdinor; Zhao, Xiaojun
Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
NEW JOURNAL OF CHEMISTRY
English
Article
The main challenge for sodium storage is to find suitable host materials to accommodate larger-sized Na+ and conquer sluggish chemical kinetics. Herein, by adjusting the heat treatment environment, a novel few-layered molybdenum oxide selenide encapsulated in a three-dimensional (3D) N-doped carbon skeleton (MoO3-MoSe2-NC) is rationally constructed to improve the rate performances and cycle life for sodium-ion batteries (SIBs). A small quantity of MoO3 is generated on the edge of MoSe2via in situ local phase transformation by treatment temperature in the air, which effectively regulates the electronic structure, enhances the intrinsic conductivity, and provides more active sites of MoSe2 species. The layered NC acts as a nanoreactor to encapsulate MoO3-MoSe2, which not only effectively improves the conductivity of MoO3-MoSe2, shortens the diffusion pathway of Na+, but also alleviates the volumetric expansion effect of MoO3-MoSe2, playing a key role in providing structural stability for the electrode. Utilizing the phase and interface engineering, the MoO3-MoSe2-NC anode delivers a high specific capacity of 551 mA h g-1 at 0.1 A g-1 upon 150 cycles for SIBs, and a reversible capacity of 368 mA h g-1 is maintained even under 1 A g-1 after 600 cycles. By pairing with commercial Na3V2(PO4)3, this MoO3-MoSe2-NC also exhibits excellent performances in full cells. This study develops a universal interface manipulation strategy for the synthesis of anode materials to boost fast sodium storage kinetics. Novel few-layered MoO3-MoSe2 encapsulated in a 3D NC skeleton is constructed to improve the electrochemical performances of SIBs.
ROYAL SOC CHEMISTRY
1144-0546
1369-9261
2024
48
16
10.1039/d4nj00389f
Chemistry

WOS:001195332500001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001195332500001
title Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
title_short Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
title_full Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
title_fullStr Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
title_full_unstemmed Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
title_sort Design and synthesis of few-layer molybdenum oxide selenide encapsulated in a 3D interconnected nitrogen-doped carbon anode toward high-performance sodium storage
container_title NEW JOURNAL OF CHEMISTRY
language English
format Article
description The main challenge for sodium storage is to find suitable host materials to accommodate larger-sized Na+ and conquer sluggish chemical kinetics. Herein, by adjusting the heat treatment environment, a novel few-layered molybdenum oxide selenide encapsulated in a three-dimensional (3D) N-doped carbon skeleton (MoO3-MoSe2-NC) is rationally constructed to improve the rate performances and cycle life for sodium-ion batteries (SIBs). A small quantity of MoO3 is generated on the edge of MoSe2via in situ local phase transformation by treatment temperature in the air, which effectively regulates the electronic structure, enhances the intrinsic conductivity, and provides more active sites of MoSe2 species. The layered NC acts as a nanoreactor to encapsulate MoO3-MoSe2, which not only effectively improves the conductivity of MoO3-MoSe2, shortens the diffusion pathway of Na+, but also alleviates the volumetric expansion effect of MoO3-MoSe2, playing a key role in providing structural stability for the electrode. Utilizing the phase and interface engineering, the MoO3-MoSe2-NC anode delivers a high specific capacity of 551 mA h g-1 at 0.1 A g-1 upon 150 cycles for SIBs, and a reversible capacity of 368 mA h g-1 is maintained even under 1 A g-1 after 600 cycles. By pairing with commercial Na3V2(PO4)3, this MoO3-MoSe2-NC also exhibits excellent performances in full cells. This study develops a universal interface manipulation strategy for the synthesis of anode materials to boost fast sodium storage kinetics. Novel few-layered MoO3-MoSe2 encapsulated in a 3D NC skeleton is constructed to improve the electrochemical performances of SIBs.
publisher ROYAL SOC CHEMISTRY
issn 1144-0546
1369-9261
publishDate 2024
container_volume 48
container_issue 16
doi_str_mv 10.1039/d4nj00389f
topic Chemistry
topic_facet Chemistry
accesstype
id WOS:001195332500001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001195332500001
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