Journal of the Chinese Ceramic Society, Volume. 50, Issue 1, 9(2022)
Preparation and Lithium/Sodium Storage of Sulfur Doped V2O3/C Nanowires
[1] [1] NI S B, LIU J L, CHAO D L, et al. Vanadate-based materials for Li-ion batteries: The search for anodes for practical applications[J].Adv Energy Mater, 2019, 9(14): 1803324.
[2] [2] PENG P P, WU Y R, LI X Z, et al. Toward superior lithium/sodium storage performance: Design and construction of novel TiO2-based anode materials[J]. Rare Met, 2021, 40(12): 3049–3075.
[3] [3] HUO Y F, QIN N, LIAO C Z, et al. Hydrothermal synthesis and energy storage performance of ultrafine Ce2Sn2O7 nanocubes[J]. J Cent South Univ, 2019, 26(6): 1416–1425.
[4] [4] ZHOU Y Z, LIU K, ZHOU Y, et al. Synthesis of a novel hexagonal porous TT-Nb2O5 via solid state reaction for high-performance lithium ion battery anodes[J]. J Cent South Univ, 2020, 27(12): 3625–3636.
[5] [5] CHEN Z, XIANG T, XIONG Q M, et al. Highly active SiO2@C nanofiber: High rate and long cycling for lithium ion batteries[J].Ionics, 2021, 27(4), 1385–1392.
[6] [6] LIU S, LI X Z, HUANG B, et al. Controllable construction of yolk–shell Sn–Co@void@C and its advantages in Na-ion storage[J].Rare Met, 2021, 40(9): 2392–2401.
[8] [8] CHEN Z, XIANG T, FENG Z J, et al. A NiO/NiS2 nanosheet integrated electrode for high area specific capacity alkaline metal battery[J]. Mater Lett, 2021, 283: 128771.
[9] [9] LIU P C, ZHU K J, XU Y, et al. Hierarchical porous and intercalation-type V2O3 for high performance anode materials of Li-ion batteries[J]. Chem Eur J, 2017, 23(31): 7538.
[10] [10] SONG H J, CHOI M G, KIM J C, et al. Li-electroactivity of thermally-reduced V2O3 nanoparticles[J]. Mater Lett, 2016, 180:243–246.
[11] [11] GOU W W, KONG X Z, WANG Y P, et al. Yolk–shell structured V2O3 microspheres wrapped in N, S co-doped carbon as pea-pod nanofibers for high-capacity lithium ion batteries[J]. Chem Eng J, 2019,374: 545–553.
[12] [12] LENG J G, MEI H L, ZHAN L, et al. V2O3 nanoparticles anchored onto the reduced graphene oxide for superior lithium storage[J].Electrochim Acta, 2017, 231: 732–738.
[13] [13] XUN L C, GAO S, XU Y M, et al. Synthesis of dandelion-like V2O3/C composite with bicontinuous 3D hierarchical structures as an anode for high performance lithium ion batteries[J]. Ceram Int, 2018, 44(12):14128–14135.
[14] [14] HE S R, ZOU J P, CHEN L B, et al. A nanostructured Ni/T-Nb2O5@carbon nanofibers as a long-life anode material for lithium-ion batteries[J]. Rare Met, 2021, 40(2):374–382.
[15] [15] ZHANG Y Q, TAO L, XIE C, et al. Defect engineering on electrode materials for rechargeable batteries[J]. Adv Mater, 2020, 32(7):1905923.
[16] [16] LI L, CHEN Z, ZHANG H, et al. The double effects of sulfur-doping on MoO2/C nanofibers with high properties for Na-ion batteries[J].Appl Surf Sci, 2018, 455: 343–348.
[17] [17] WANG J, LI Y S, LIU P, et al. Green large-scale production of N/O-dual doping hard carbon derived from bagasse as high-performance anodes for sodium-ion batteries[J]. J Cent South Univ, 2021, 28(2): 361–369.
[18] [18] YANG L P, ZHANG Z H, XIA L S, et al. Integrated insights into Na+ storage mechanism and electrochemical kinetics of ultrafine V2O3/S and N co-doped rGO composites as anodes for sodium ion batteries[J]. J Mater Chem A, 2019, 7(39): 22429–22435.
[19] [19] WON S J, LEE S Y, HWANG J Y, et al. Electric field-triggered metal-insulator transition resistive switching of bilayered multiphasic VOx[J]. Electron Mater Lett, 2018, 14(1): 14–22.
[20] [20] LIU T, LI L, YAO T H, Integrating amorphous vanadium oxide into carbon nanofibers via electrospinning as high-performance anodes for alkaline ion (Li+/Na+/K+) batteries[J]. Electrochim Acta, 2021, 369:137711.
[21] [21] ZHANG D, LI G S, LI B Y, et al, A facile strategy to fabricate V2O3/porous N-doped carbon nanosheet framework as high-performance anode for lithium-ion batteries[J]. J Alloy Compound, 2019, 789: 288–294.
[22] [22] AN X, YANG H, WANG Y, et al. Hydrothermal synthesis of coherent porous V2O3/carbon nanocomposites for high-performance lithiumand sodium-ion batteries[J]. Sci China Mater, 2017, 60(8): 717–727.
[23] [23] REN X L, AI D S, ZHAN C Z, et al. NaCl-template-assisted freeze-drying synthesis of 3D porous carbon-encapsulated V2O3 for lithium-ion battery anode[J]. Eletrochim Acta, 2019, 318: 730–736.
[24] [24] YUAN J, HU X, LI J W, et al. V2O3 nanoparticles confined in high-conductivity and high-throughput carbon nanofiber nanohybrids for advanced sodium-ion capacitors[J]. ACS Appl Mater Interfaces,2021, 13(8): 10001–10012.
Get Citation
Copy Citation Text
RAO Zhixin, CHEN Zhi, LIANG Danni, FENG Zhijun, YANG Huiyong, LI Xibao, XIANG Tong, FENG Shanzhi, HUANG Juntong, ZHANG Ming. Preparation and Lithium/Sodium Storage of Sulfur Doped V2O3/C Nanowires[J]. Journal of the Chinese Ceramic Society, 2022, 50(1): 9
Special Issue:
Received: Jul. 20, 2021
Accepted: --
Published Online: Nov. 14, 2022
The Author Email: Zhixin RAO (1163681490@qq.com)