• Journal of Inorganic Materials
  • Vol. 38, Issue 8, 938 (2023)
Xinling WANG1, Na ZHOU1, Yawen TIAN1, Mingran ZHOU1..., Jingru HAN1, Yuansheng SHEN1, Zhiyi HU1,2 and Yu LI1,2,*|Show fewer author(s)
Author Affiliations
  • 11. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China
  • 22. Nanostructure Research Centre (NRC), Wuhan University of Technology, Wuhan 430070, China
  • show less
    DOI: 10.15541/jim20220741 Cite this Article
    Xinling WANG, Na ZHOU, Yawen TIAN, Mingran ZHOU, Jingru HAN, Yuansheng SHEN, Zhiyi HU, Yu LI. SnS2/ZIF-8 Derived Two-dimensional Porous Nitrogen-doped Carbon Nanosheets for Lithium-sulfur Batteries [J]. Journal of Inorganic Materials, 2023, 38(8): 938 Copy Citation Text show less
    References

    [1] Y K SUN. Direction for development of next-generation lithium-ion batteries. ACS Energy Letters, 2694(2017).

    [2] N SU, J HAN, Y GUO et al. ZIF-8-derived three-dimensional silicon-carbon network composite for high-performance lithium- ion batteries. Journal of Inorganic Materials, 1016(2022).

    [3] Q ZHANG, Q HUANG, S M HAO et al. Polymers in lithium- sulfur batteries. Advanced Science(2022).

    [4] Z ZHANG, Z FANG, Y XIANG et al. Cellulose-based material in lithium-sulfur batteries: a review. Carbohydrate Polymers(2021).

    [5] P WU, M H SUN, Y YU et al. Physical and chemical dual-confinement of polysulfides within hierarchically meso- microporous nitrogen-doped carbon nanocages for advanced Li-S batteries. RSC Advances, 42627(2017).

    [6] W HUA, Z YANG, H NIE et al. Polysulfide-scission reagents for the suppression of the shuttle effect in lithium-sulfur batteries. ACS Nano, 2209(2017).

    [7] Y ZHANG, X LIU, L WU et al. A flexible, hierarchically porous PANI/MnO2 network with fast channels and an extraordinary chemical process for stable fast-charging lithium-sulfur batteries. Journal of Materials Chemistry A, 2741(2020).

    [8] F HAN, J YUE, X FAN et al. High-performance all-solid-state lithium-sulfur battery enabled by a mixed-conductive Li2S nanocomposite. Nano Letters, 4521(2016).

    [9] Y YU, M YAN, W D DONG et al. Optimizing inner voids in yolk- shell TiO2 nanostructure for high-performance and ultralong-life lithium-sulfur batteries. Chemical Engineering Journal(2021).

    [10] W TANG, Y ZHANG, W ZHONG et al. A labyrinth-like network electrode design for lithium-sulfur batteries. Nanoscale, 14648(2019).

    [11] M YAN, Y ZHANG, Y LI et al. Manganese dioxide nanosheet functionalized sulfur@PEDOT core-shell nanospheres for advanced lithium-sulfur batteries. Journal of Materials Chemistry A, 9403(2016).

    [12] C LI, R LIU, Y XIAO et al. Recent progress of separators in lithium-sulfur batteries. Energy Storage Materials, 439(2021).

    [13] J CUI, Z LI, J LI et al. An atomic-confined-space separator for high performance lithium-sulfur batteries. Journal of Materials Chemistry A, 1896(2020).

    [14] M BAEK, H SHIN, K CHAR et al. New high donor electrolyte for lithium-sulfur batteries. Advanced Materials(2020).

    [15] S CHOUDHURY, T SAHA, K NASKAR et al. A highly stretchable gel-polymer electrolyte for lithium-sulfur batteries. Polymer, 447(2017).

    [16] B HE, Z RAO, Z CHENG et al. Rationally design a sulfur cathode with solid-phase conversion mechanism for high cycle-stable Li-S Batteries. Advanced Energy Materials(2021).

    [17] Z WANG, J SHEN, J LIU et al. Self-supported and flexible sulfur cathode enabled via synergistic confinement for high-energy-density lithium-sulfur batteries. Advanced Materials(2019).

    [18] P WU, L H CHEN, S S XIAO et al. Insight into the positive effect of porous hierarchy in S/C cathodes on the electrochemical performance of Li-S batteries. Nanoscale, 11861(2018).

    [19] Y ZHANG, Z GAO, N SONG et al. Graphene and its derivatives in lithium-sulfur batteries. Materials Today Energy, 319(2018).

    [20] C LI, J YU, S L XUE et al. Wood-inspired multi-channel tubular graphene network for high-performance lithium-sulfur batteries. Carbon, 522(2018).

    [21] W YANG, H ZHAO, L CHEN et al. Ferrous sulfide-assisted hollow carbon spheres as sulfur host for advanced lithium-sulfur batteries. Chemical Engineering Journal, 1040(2017).

    [22] R ZHE, T ZHU, X WEI et al. Graphene oxide wrapped hollow mesoporous carbon spheres as a dynamically bipolar host for lithium-sulfur batteries. Journal of Materials Chemistry A, 24422(2022).

    [23] H CHEN, W D DONG, F J XIA et al. Hollow nitrogen-doped carbon/sulfur@MnO2 nanocomposite with structural and chemical dual-encapsulation for lithium-sulfur battery. Chemical Engineering Journal(2020).

    [24] C LI, Z XI, S DONG et al. CNTs/MOFs-derived carbon/ Al2(OH)2.76F3.24/S cathodes for high-performance lithium-sulfur batteries. Energy Storage Materials, 341(2018).

    [25] T DENG, X L MEN, X C JIAO et al. CNTs decorated Cu-BTC with catalytic effect for high-stability lithium-sulfur batteries. Ceramics International, 4352(2022).

    [26] Y AN, Y TIAN, Y LI et al. Heteroatom-doped 3D porous carbon architectures for highly stable aqueous zinc metal batteries and non-aqueous lithium metal batteries. Chemical Engineering Journal(2020).

    [27] L FAN, H L ZHUANG, K ZHANG et al. Chloride-reinforced carbon nanofiber host as effective polysulfide traps in lithium-sulfur batteries. Advanced Science(2016).

    [28] Y CHEN, P XU, Q LIU et al. Cobalt embedded in porous carbon fiber membranes for high-performance lithium-sulfur batteries. Carbon, 187(2022).

    [29] Y ZHENG, S ZHENG, H XUE et al. Metal-organic frameworks for lithium-sulfur batteries. Journal of Materials Chemistry A, 3469(2019).

    [30] K CHEN, Z SUN, R FANG et al. Metal-organic frameworks (MOFs)-derived nitrogen-doped porous carbon anchored on graphene with multifunctional effects for lithium-sulfur batteries. Advanced Functional Materials(2018).

    [31] N ZHANG, Y YANG, X FENG et al. Sulfur encapsulation by MOF-derived CoS2 embedded in carbon hosts for high-performance Li-S batteries. Journal of Materials Chemistry A, 21128(2019).

    [32] Q SHAO, P LU, L XU et al. Rational design of MoS2 nanosheets decorated on mesoporous hollow carbon spheres as a dual- functional accelerator in sulfur cathode for advanced pouch-type Li-S batteries. Journal of Energy Chemistry, 262(2020).

    [33] H E WANG, K YIN, X ZHAO et al. Coherent TiO2/BaTiO3 heterostructure as a functional reservoir and promoter for polysulfide intermediates. Chemical Communications, 12250(2018).

    [34] W DONG, D WANG, X LI et al. Bronze TiO2 as a cathode host for lithium-sulfur batteries. Journal of Energy Chemistry, 259(2020).

    [35] X GAO, X YANG, M LI et al. Cobalt-doped SnS2 with dual active centers of synergistic absorption-catalysis effect for high-S loading Li-S batteries. Advanced Functional Materials(2019).

    [36] N ZHOU, W D DONG, Y J ZHANG et al. Embedding tin disulfide nanoparticles in two-dimensional porous carbon nanosheet interlayers for fast-charging lithium-sulfur batteries. Science China Materials, 2697(2021).

    [37] X LI, G GUO, N QIN et al. SnS2/TiO2 nanohybrids chemically bonded on nitrogen-doped graphene for lithium-sulfur batteries: synergy of vacancy defects and heterostructures. Nanoscale, 15505(2018).

    [38] Y JIANG, H LIU, X TAN et al. Monoclinic ZIF-8 nanosheet- derived 2D carbon nanosheets as sulfur immobilizer for high-performance lithium sulfur batteries. ACS Applied Materials & Interfaces, 25239(2017).

    [39] L WU, Y LI, Z FU et al. Hierarchically structured porous materials: synthesis strategies and applications in energy storage. National Science Review, 1667(2020).

    [40] H YUAN, W ZHANG, J G WANG et al. Facilitation of sulfur evolution reaction by pyridinic nitrogen doped carbon nanoflakes for highly-stable lithium-sulfur batteries. Energy Storage Materials, 1(2018).

    [41] M YAN, W DONG, F LIU et al. Unprecedented strong and reversible atomic orbital hybridization enables a highly stable Li-S battery. National Science Review, nwac078(2022).

    [42] M YAN, Z Y WANG, G W YU et al. Adsorption-catalysis- conversion of polysulfides in sandwiched ultrathin Ni(OH)2-PANI for stable lithium-sulfur batteries. Small(2022).

    [43] D LIU, C ZHANG, G ZHOU et al. Catalytic effects in lithium- sulfur batteries: promoted sulfur transformation and reduced shuttle effect. Advanced Science(2018).

    [44] N LIU, K HUO, M T MCDOWELL et al. Rice husks as a sustainable source of nanostructured silicon for high performance Li-ion battery anodes. Scientific Reports, 3:, 1919(2013).

    [45] W JING, J ZU, K ZOU et al. Tin disulfide embedded on porous carbon spheres for accelerating polysulfide conversion kinetics toward lithium-sulfur batteries. Journal of Colloid and Interface Science, 32(2022).

    [46] J L YANG, S X ZHAO, X T ZENG et al. Catalytic interfaces- enriched hybrid hollow spheres sulfur host for advanced Li-S batteries. Advanced Materials Interfaces(2019).

    [47] M YAN, H CHEN, Y YU et al. 3D ferroconcrete-like aminated carbon nanotubes network anchoring sulfur for advanced lithium- sulfur battery. Advanced Energy Materials(2018).

    [48] L FAN, X LI, X SONG et al. Promising dual-doped graphene aerogel/SnS2 nanocrystal building high performance sodium ion batteries. ACS Applied Materials & Interfaces, 2637(2018).

    [49] J ZHANG, C YOU, J WANG et al. Synergistic catalytic effect of ion tunnels with polar dopants to boost the electrochemical kinetics for high-performance sulfur cathodes. ChemElectroChem, 5051(2019).

    [50] J WU, B CHEN, Q LIU et al. Preparing a composite including SnS2, carbon nanotubes and S and using as cathode material of lithium-sulfur battery. Scripta Materialia, 208(2020).

    Xinling WANG, Na ZHOU, Yawen TIAN, Mingran ZHOU, Jingru HAN, Yuansheng SHEN, Zhiyi HU, Yu LI. SnS2/ZIF-8 Derived Two-dimensional Porous Nitrogen-doped Carbon Nanosheets for Lithium-sulfur Batteries [J]. Journal of Inorganic Materials, 2023, 38(8): 938
    Download Citation