• Journal of Inorganic Materials
  • Vol. 36, Issue 11, 1137 (2021)
Fanxin ZENG, Chuang LIU, and Yuliang CAO*
Author Affiliations
  • College of Chemistry and Molecular Science, Wuhan University, Wuhan 430072, China
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    DOI: 10.15541/jim20210105 Cite this Article
    Fanxin ZENG, Chuang LIU, Yuliang CAO. Sodium Storage Behavior of Nanoporous Sb/MCNT Anode Material with High Cycle Stability by Dealloying Route[J]. Journal of Inorganic Materials, 2021, 36(11): 1137 Copy Citation Text show less
    References

    [1] L CAO Y. The opportunities and challenges of sodium ion battery. Energy Storage Science and Technology, 9, 757-761(2020).

    [2] H LU, F AI, Y JIA et al. Exploring sodium-ion storage mechanism in hard carbons with different microstructure prepared by ball- milling method. Small, 14(2018).

    [3] K ALLAN P, M GRIFFIN J, A DARWICHE et al. Tracking sodium- antimonide phase transformations in sodium-ion anodes: insights from operando pair distribution function analysis and solid-state NMR spectroscopy. Journal of the American Chemical Society, 138, 2352-2365(2016).

    [4] H XIE, P KALISVAART W, C OLSEN B et al. Sn-Bi-Sb alloys as anode materials for sodium ion batteries. Journal of Materials Chemistry A, 5, 9661-9670(2017).

    [5] Y PAN, J WU X, Q ZHANG Z et al. Binder and carbon-free SbSn-P nanocomposite thin films as anode materials for sodium-ion batteries. Journal of Alloys and Compounds, 714, 348-355(2017).

    [6] Y ZHAO, A MANTHIRAM. High-capacity, high-rate Bi-Sb alloy anodes for lithium-ion and sodium-ion batteries. Chemistry of Materials, 27, 3096-3101(2015).

    [7] L WANG, C WANG, N ZHANG et al. High anode performance of in situ formed Cu2Sb nanoparticles integrated on Cu foil via replacement reaction for sodium-ion batteries. ACS Energy Letters, 2, 256-262(2016).

    [8] W LEE C, C KIM J, S PARK et al. Highly stable sodium storage in 3-D gradational Sb-NiSb-Ni heterostructures. Nano Energy, 15, 479-489(2015).

    [9] D KIM, C HWANG, J JEONG et al. Bipolymer-cross-linked binder to improve the reversibility and kinetics of sodiation and desodiation of antimony for sodium-ion batteries. ACS Applied Materials & Interfaces, 11, 43039-43045(2019).

    [10] H GAO, W ZHOU, H JANG J et al. Cross-linked chitosan as a polymer network binder for an antimony anode in sodium-ion batteries. Advanced Energy Materials, 6(2016).

    [11] J FENG, L WANG, D LI et al. Enhanced electrochemical stability of carbon-coated antimony nanoparticles with sodium alginate binder for sodium-ion batteries. Progress in Natural Science: Materials International, 28, 205-211(2018).

    [12] J DIMITRIJEVIC B, E AIFANTIS K, K HACKL. The influence of particle size and spacing on the fragmentation of nanocomposite anodes for Li batteries. Journal of Power Sources, 206, 343-348(2012).

    [13] Y LIU, B ZHOU, S LIU et al. Galvanic replacement synthesis of highly uniform Sb nanotubes: reaction mechanism and enhanced sodium storage performance. ACS Nano, 13, 5885-5892(2019).

    [14] S HOU H, J JING M, C YANG Y et al. Sb porous hollow microspheres as advanced anode materials for sodium-ion batteries. Journal of Materials Chemistry A, 3, 2971-2977(2015).

    [15] S LIU, J FENG, X BIAN et al. The morphology-controlled synthesis of a nanoporous-antimony anode for high-performance sodium-ion batteries. Energy & Environmental Science, 9, 1229-1236(2016).

    [16] H LI, K WANG, M ZHOU et al. Facile tailoring of multidimensional nanostructured Sb for sodium storage applications. ACS Nano, 13, 9533-9540(2019).

    [17] J WOLFENSTINE, D FOSTER, J READ et al. Experimental confirmation of the model for microcracking during lithium charging in single-phase alloys. Journal of Power Sources, 87, 1-3(2000).

    [18] J QIAN, Y CHEN, L WU et al. High capacity Na-storage and superior cyclability of nanocomposite Sb/C anode for Na-ion batteries. Chemical Communications, 48, 7070-7072(2012).

    [19] X ZHOU, Z DAI, J BAO et al. Wet milled synthesis of an Sb/ MWCNT nanocomposite for improved sodium storage. Journal of Materials Chemistry A, 1, 13727-13731(2013).

    [20] X ZHOU, X LIU, Y XU et al. An SbOX/reduced graphene oxide composite as a high-rate anode material for sodium-ion batteries. The Journal of Physical Chemistry C, 118, 23527-23534(2014).

    [21] J JUNG G, Y LEE, S MUN Y et al. Sb-AlC0.75-C composite anodes for high-performance sodium-ion batteries. Journal of Power Sources, 340, 393-400(2017).

    [22] J GU, Z DU, C ZHANG et al. Liquid-phase exfoliated metallic antimony nanosheets toward high volumetric sodium storage. Advanced Energy Materials Liquid-phase exfoliated metallic antimony nanosheets toward high volumetric sodium storage. Advanced Energy Materials, 7(2017).

    [23] Z LIN, G WANG, X XIONG et al. Ni-polymer gels-derived hollow NiSb alloy confined in 3D interconnected carbon as superior sodium- ion battery anode. Electrochimica Acta, 269, 225-231(2018).

    [24] P WU, A ZHANG, L PENG et al. Cyanogel-enabled homogeneous Sb-Ni-C ternary framework electrodes for enhanced sodium storage. ACS Nano, 12, 759-767(2018).

    [25] M GUO, J CHEN, X LIU et al. Three-dimensional polypyrrole nano-network with Sb nanocrystals as electrode material for sodium- ion Three-dimensional polypyrrole nano-network with Sb nanocrystals as electrode material for sodium- ion and lithium-ion batteries. Journal of The Electrochemical Society, 167(2020).

    [26] N LI, S LIAO, Y SUN et al. Uniformly dispersed self-assembled growth of Sb2O3/Sb@graphene nanocomposites on a 3D carbon sheet network for high Na-storage capacity and excellent stability. Journal of Materials Chemistry A, 3, 5820-5828(2015).

    [27] H WANG, S FAN, Y CAO et al. Building a cycle-stable Fe-Si alloy/carbon nanocomposite anode for Li-ion batteries through a covalent-bonding method. ACS Applied Materials & Interfaces, 12, 30503-30509(2020).

    [28] C FERRARI A, J ROBERTSON. Resonant Raman spectroscopy of disordered, amorphous, diamond like carbon. Physical Review B, 64(2001).

    [29] M ZHANG, L OUYANG, M ZHU et al. A phosphorus and carbon composite containing nanocrystalline Sb as a stable and high-capacity anode for sodium ion batteries. Journal of Materials Chemistry A, 8, 443-452(2020).

    [30] E DREWETT N, M ALDOUS I, J ZOU et al. In situ Raman spectroscopic analysis of the lithiation and sodiation of antimony microparticles. Electrochimica Acta, 247, 296-305(2017).

    [31] S HONG K, H NAM D, J LIM S et al. Electrochemically synthesized Sb/Sb2O3 composites as high-capacity anode materials utilizing a reversible conversion reaction for Na-ion batteries. ACS Applied Materials & Interfaces, 7, 17264-17271(2015).

    [32] L BODENES, A DARWICHE, L MONCONDUIT et al. The solid electrolyte interphase a key parameter of the high performance of Sb in sodium-ion batteries: comparative X-ray photoelectron spectroscopy study of Sb/Na-ion and Sb/Li-ion batteries. Journal of Power Sources, 273, 14-24(2015).

    [33] J ERLEBACHER, J AZIZ M, A KARMA et al. Evolution of nanoporosity in dealloying. Nature, 410, 450-453(2001).

    [34] X LU, Z WANG, K LIU et al. Hierarchical Sb2MOO6 microspheres for high-performance sodium-ion battery anode. Energy Storage Materials, 17, 101-110(2019).

    [35] A DARWICHE, C MARINO, T SOUGRATI M et al. Better cycling performances of bulk Sb in Na-ion batteries compared to Li-ion systems: an unexpected electrochemical mechanism. Journal of the American Chemical Society, 134, 20805-20811(2012).

    [36] Y LEE, Y LEE K, W CHOI. One-pot synthesis of antimony-embedded silicon oxycarbide materials for high-performance sodium-ion batteries. Advanced Functional Materials, 27(2017).

    Fanxin ZENG, Chuang LIU, Yuliang CAO. Sodium Storage Behavior of Nanoporous Sb/MCNT Anode Material with High Cycle Stability by Dealloying Route[J]. Journal of Inorganic Materials, 2021, 36(11): 1137
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