Kang Xu, Yu-Hui Li, Xin Wang, Yu-Peng Cao, Shuo-Tong Wang, Liang Cao, Qi-Tu Zhang, Zhe-Fei Wang, Jun Yang
{"title":"解锁MoSe2阳极的结构和阴离子协同调制用于超稳定和高速率钠离子存储","authors":"Kang Xu, Yu-Hui Li, Xin Wang, Yu-Peng Cao, Shuo-Tong Wang, Liang Cao, Qi-Tu Zhang, Zhe-Fei Wang, Jun Yang","doi":"10.1007/s12598-024-03041-9","DOIUrl":null,"url":null,"abstract":"<div><p>The two-dimensional MoSe<sub>2</sub> possesses a large interlayer spacing (0.65 nm) and a narrow bandgap (1.1 eV), showing potential in sodium-ion storage. However, it faces slow kinetics and volume stress during Na<sup>+</sup> (de)intercalation process, thereby affecting the cycling stability and lifespan of sodium-ion batteries (SIBs). In this work, a novel approach involving anionic doping and structural design has been proposed, wherein a two-step in-situ selenization and surface thermal annealing doping process is applied to fabricate a novel configuration material of fluorine-doped MoSe<sub>2</sub>@nitrogen-doped carbon nanosheets (F-MoSe<sub>2</sub>@FNC). The obtained F-MoSe<sub>2</sub>@FNC, benefiting from the dual advantages of structure and F-doping, synergistically promotes and accelerates the stable (de)intercalation of Na<sup>+</sup>. Henceforth, F-MoSe<sub>2</sub>@FNC demonstrates notable characteristics in terms of reversible specific capacity, boasting a high initial coulombic efficiency of 76.97%, alongside remarkable rate capabilities and cyclic stability. The constructed F-MoSe<sub>2</sub>@FNC anode-based half cell manifests exceptional longevity, enduring up to 2550 cycles at 10 A·g<sup>−1</sup> with a specific capacity of 322.04 mAh·g<sup>−1</sup>. Its electrochemical performance surpasses that of MoSe<sub>2</sub>@NC and Pure MoSe<sub>2</sub>, underscoring the significance of the proposed synergistic modulation. Through comprehensive kinetic analyses, encompassing in-situ electrochemical impedance spectroscopy (EIS), it is elucidated that the F-MoSe<sub>2</sub>@FNC electrode showcases elevated pseudo-capacitance and rapid diffusion attributes during charge and discharge processes. Furthermore, the assembled full-cell (F-MoSe<sub>2</sub>@FNC//Na<sub>3</sub>V<sub>2</sub>(PO<sub>4</sub>)<sub>3</sub>) attains a notable energy density of 166.94 Wh·kg<sup>−1</sup>. This design provides insights for the optimization of MoSe<sub>2</sub> electrodes and their applications in SIBs.</p><h3>Graphical abstract</h3>\n<div><figure><div><div><picture><source><img></source></picture></div></div></figure></div></div>","PeriodicalId":749,"journal":{"name":"Rare Metals","volume":"44 3","pages":"1661 - 1673"},"PeriodicalIF":11.0000,"publicationDate":"2024-11-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Unlocking the structure and anion synergistic modulation of MoSe2 anode for ultra-stable and high-rate sodium-ion storage\",\"authors\":\"Kang Xu, Yu-Hui Li, Xin Wang, Yu-Peng Cao, Shuo-Tong Wang, Liang Cao, Qi-Tu Zhang, Zhe-Fei Wang, Jun Yang\",\"doi\":\"10.1007/s12598-024-03041-9\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>The two-dimensional MoSe<sub>2</sub> possesses a large interlayer spacing (0.65 nm) and a narrow bandgap (1.1 eV), showing potential in sodium-ion storage. However, it faces slow kinetics and volume stress during Na<sup>+</sup> (de)intercalation process, thereby affecting the cycling stability and lifespan of sodium-ion batteries (SIBs). In this work, a novel approach involving anionic doping and structural design has been proposed, wherein a two-step in-situ selenization and surface thermal annealing doping process is applied to fabricate a novel configuration material of fluorine-doped MoSe<sub>2</sub>@nitrogen-doped carbon nanosheets (F-MoSe<sub>2</sub>@FNC). The obtained F-MoSe<sub>2</sub>@FNC, benefiting from the dual advantages of structure and F-doping, synergistically promotes and accelerates the stable (de)intercalation of Na<sup>+</sup>. Henceforth, F-MoSe<sub>2</sub>@FNC demonstrates notable characteristics in terms of reversible specific capacity, boasting a high initial coulombic efficiency of 76.97%, alongside remarkable rate capabilities and cyclic stability. The constructed F-MoSe<sub>2</sub>@FNC anode-based half cell manifests exceptional longevity, enduring up to 2550 cycles at 10 A·g<sup>−1</sup> with a specific capacity of 322.04 mAh·g<sup>−1</sup>. Its electrochemical performance surpasses that of MoSe<sub>2</sub>@NC and Pure MoSe<sub>2</sub>, underscoring the significance of the proposed synergistic modulation. Through comprehensive kinetic analyses, encompassing in-situ electrochemical impedance spectroscopy (EIS), it is elucidated that the F-MoSe<sub>2</sub>@FNC electrode showcases elevated pseudo-capacitance and rapid diffusion attributes during charge and discharge processes. Furthermore, the assembled full-cell (F-MoSe<sub>2</sub>@FNC//Na<sub>3</sub>V<sub>2</sub>(PO<sub>4</sub>)<sub>3</sub>) attains a notable energy density of 166.94 Wh·kg<sup>−1</sup>. 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Unlocking the structure and anion synergistic modulation of MoSe2 anode for ultra-stable and high-rate sodium-ion storage
The two-dimensional MoSe2 possesses a large interlayer spacing (0.65 nm) and a narrow bandgap (1.1 eV), showing potential in sodium-ion storage. However, it faces slow kinetics and volume stress during Na+ (de)intercalation process, thereby affecting the cycling stability and lifespan of sodium-ion batteries (SIBs). In this work, a novel approach involving anionic doping and structural design has been proposed, wherein a two-step in-situ selenization and surface thermal annealing doping process is applied to fabricate a novel configuration material of fluorine-doped MoSe2@nitrogen-doped carbon nanosheets (F-MoSe2@FNC). The obtained F-MoSe2@FNC, benefiting from the dual advantages of structure and F-doping, synergistically promotes and accelerates the stable (de)intercalation of Na+. Henceforth, F-MoSe2@FNC demonstrates notable characteristics in terms of reversible specific capacity, boasting a high initial coulombic efficiency of 76.97%, alongside remarkable rate capabilities and cyclic stability. The constructed F-MoSe2@FNC anode-based half cell manifests exceptional longevity, enduring up to 2550 cycles at 10 A·g−1 with a specific capacity of 322.04 mAh·g−1. Its electrochemical performance surpasses that of MoSe2@NC and Pure MoSe2, underscoring the significance of the proposed synergistic modulation. Through comprehensive kinetic analyses, encompassing in-situ electrochemical impedance spectroscopy (EIS), it is elucidated that the F-MoSe2@FNC electrode showcases elevated pseudo-capacitance and rapid diffusion attributes during charge and discharge processes. Furthermore, the assembled full-cell (F-MoSe2@FNC//Na3V2(PO4)3) attains a notable energy density of 166.94 Wh·kg−1. This design provides insights for the optimization of MoSe2 electrodes and their applications in SIBs.
期刊介绍:
Rare Metals is a monthly peer-reviewed journal published by the Nonferrous Metals Society of China. It serves as a platform for engineers and scientists to communicate and disseminate original research articles in the field of rare metals. The journal focuses on a wide range of topics including metallurgy, processing, and determination of rare metals. Additionally, it showcases the application of rare metals in advanced materials such as superconductors, semiconductors, composites, and ceramics.