Engineering zirconium-based metal-organic framework-801 films on carbon cloth as shuttle-inhibiting interlayers for lithium-sulfur batteries

Gaofeng Jin, Jiale Zhang, Baoying Dang, Feichao Wu, Jingde Li

PDF(2389 KB)
PDF(2389 KB)
Front. Chem. Sci. Eng. ›› 2022, Vol. 16 ›› Issue (4) : 511-522. DOI: 10.1007/s11705-021-2068-4
RESEARCH ARTICLE
RESEARCH ARTICLE

Engineering zirconium-based metal-organic framework-801 films on carbon cloth as shuttle-inhibiting interlayers for lithium-sulfur batteries

Author information +
History +

Abstract

Lithium-sulfur batteries have been regarded as the next-generation rechargeable batteries due to their high theoretical energy density and specific capacity. Nevertheless, the shuttle effect of lithium polysulfides has hindered the development of lithium-sulfur batteries. Herein, a novel zirconium-based metal-organic framework-801 film on carbon cloth was developed as a versatile interlayer for lithium-sulfur batteries. This interlayer has a hierarchical porous structure, suitable for the immobilization of lithium polysulfides and accommodating volume expansion on cycling. Moreover, the MOF-801 material is capable of strongly adsorbing lithium polysulfides and promoting their catalytic conversion, which can be enhanced by the abundant active sites provided by the continuous structure of the MOF-801 films. Based on the above advantages, the lithium-sulfur battery, with the proposed interlayer, delivers an initial discharge capacity of 927 mAh·g–1 at 1 C with an extremely low decay rate of 0.04% over 500 cycles. Additionally, a high area capacity of 4.3 mAh·cm–2 can be achieved under increased S loading.

Graphical abstract

Keywords

lithium-sulfur batteries / metal-organic framework-801 film / interlayer / shuttle effect

Cite this article

Download citation ▾
Gaofeng Jin, Jiale Zhang, Baoying Dang, Feichao Wu, Jingde Li. Engineering zirconium-based metal-organic framework-801 films on carbon cloth as shuttle-inhibiting interlayers for lithium-sulfur batteries. Front. Chem. Sci. Eng., 2022, 16(4): 511‒522 https://doi.org/10.1007/s11705-021-2068-4

References

[1]
Yang X F, Luo J, Sun X L. Towards high-performance solid-state Li-S batteries: from fundamental understanding to engineering design. Chemical Society Reviews, 2020, 49(7): 2140–2195
CrossRef Google scholar
[2]
Tian Y, Li G R, Zhang Y G, Luo D, Wang X, Zhao Y, Liu H, Ji P G, Du X H, Li J D, Chen Z. Low-bandgap Se-deficient antimony selenide as a multifunctional polysulfide barrier toward high-performance lithium-sulfur batteries. Advanced Materials, 2020, 32(4): 1904876
CrossRef Google scholar
[3]
Kalaiappan K, Rengapillai S, Marimuthu S, Murugan R, Thiru P. Kombucha SCOBY-based carbon and graphene oxide wrapped sulfur/polyacrylonitrile as a high-capacity cathode in lithium-sulfur batteries. Frontiers of Chemical Science and Engineering, 2020, 14(6): 976–987
CrossRef Google scholar
[4]
Pan Y, Zhou Y, Zhao Q, Dou Y, Chou S, Cheng F, Chen J, Liu H K, Jiang L, Dou S X. Introducing ion-transport-regulating nanochannels to lithium-sulfur batteries. Nano Energy, 2017, 33: 205–212
CrossRef Google scholar
[5]
Li Z, Zhang J, Guan B, Wang D, Liu L M, Lou X W. A sulfur host based on titanium monoxide@carbon hollow spheres for advanced lithium-sulfur batteries. Nature Communications, 2016, 7(1): 13065
CrossRef Google scholar
[6]
Cheng Z, Pan H, Zhong H, Xiao Z, Li X, Wang R. Porous organic polymers for polysulfide trapping in lithium-sulfur batteries. Advanced Functional Materials, 2018, 28(38): 1707597
CrossRef Google scholar
[7]
Cui G L, Li G R, Luo D, Zhang Y G, Zhao Y, Wang D R, Wang J Y, Zhang Z, Wang X, Chen Z W. Three-dimensionally ordered macro-microporous metal organic frameworks with strong sulfur immobilization and catalyzation for high-performance lithium-sulfur batteries. Nano Energy, 2020, 72: 104685
CrossRef Google scholar
[8]
Sun Z P, Fang L J, Cai J J. A hierarchical composite constructed by ZIF-8 derived carbon core and Mn3O4/N-doped carbon shell as efficient polysulfide entrapment host for Li-S batteries. Journal of Alloys and Compounds, 2020, 860: 158461
CrossRef Google scholar
[9]
Wang X B, Zhao Y, Wu F C, Liu S M, Zhang Z S, Tan Z Y, Du X H, Li J D. ZIF-7@carbon composites as multifunctional interlayer for rapid and durable Li-S performance. Journal of Energy Chemistry, 2021, 57: 19–27
CrossRef Google scholar
[10]
Jeong Y C, Kim J H, Nam S, Park C R, Yang S J. Rational design of nanostructured functional interlayer/separator for advanced Li-S batteries. Advanced Functional Materials, 2018, 28(38): 1707411
CrossRef Google scholar
[11]
Bai S, Liu X, Zhu K, Wu S, Zhou H. Metal-organic framework-based separator for lithium-sulfur batteries. Nature Energy, 2016, 1(7): 16094
CrossRef Google scholar
[12]
Rana M, Li M, Huang M, Luo B, Gentlec I, Knibbe R. Recent advances in separators to mitigate technical challenges associated with re-chargeable lithium-sulfur batteries. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2019, 7(12): 6596–6615
CrossRef Google scholar
[13]
Cha E, Patel M D, Park J, Hwang J, Prasad V, Cho K, Choi W. 2D MoS2 as an efficient protective layer for lithium metal anodes in high-performance Li-S batteries. Nature Nanotechnology, 2018, 13(6): 337–344
CrossRef Google scholar
[14]
Fan L, Li M, Li X, Xiao W, Chen Z, Lu J. Interlayer material selection for lithium-sulfur batteries. Joule, 2019, 3(2): 361–386
CrossRef Google scholar
[15]
Zheng Y, Zheng S S, Xue H G, Pang H. Metal-organic framework for lithium-sulfur batteries. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2019, 7(8): 3469–3491
CrossRef Google scholar
[16]
Xiao X, Zou L L, Pang H, Xu Q. Synthesis of micro/nanoscaled metal-organic frameworks and their direct electrochemical applications. Chemical Society Reviews, 2020, 49(1): 301–331
CrossRef Google scholar
[17]
Meng J S, Liu X, Niu C J, Pang Q, Li J T, Liu F, Liu Z, Mai L Q. Advances in metal-organic framework coatings: versatile synthesis and broad applications. Chemical Society Reviews, 2020, 49(10): 3142–3186
CrossRef Google scholar
[18]
Song J J, Huang Z F, Pan L, Li K, Zhang X W, Wang L, Zou J J. Review on selective hydrogenation of nitroarene by catalytic, photocatalytic and electrocatalytic reactions. Applied Catalysis B: Environmental, 2018, 227: 386–408
CrossRef Google scholar
[19]
Zhang J, Bai H J, Ren Q, Luo H B, Ren X M, Tian Z F, Lu S. Extra water- and acid-stable MOF-801 with high proton conductivity and its composite membrane for proton-exchange membrane. ACS Applied Materials & Interfaces, 2018, 10(34): 28656–28663
CrossRef Google scholar
[20]
Wang W J, Zhao Y, Zhang Y G, Wang J Y, Cui G L, Li M J, Bakenov Z, Wang X. Defect-rich multi-shelled Fe-doped Co3O4 hollow microspheres with multiple spatial confinements to facilitate catalytic conversion of polysulfides for high-performance Li-S batteries. ACS Applied Materials & Interfaces, 2020, 12(11): 12763–12773
CrossRef Google scholar
[21]
Zhang J H, She Y B. Mechanism of methanol decomposition on the Pd/WC (0001) surface unveiled by first-principles calculations. Frontiers of Chemical Science and Engineering, 2020, 14(6): 1052–1064
CrossRef Google scholar
[22]
Sun J J, Li Q Q, Chen G N, Duan J G, Liu G P, Jin W Q. MOF-801 incorporated PEBA mixed-matrix composite membranes for CO2 capture. Separation and Purification Technology, 2019, 217: 229–239
CrossRef Google scholar
[23]
Zhu X H, Yang C X, Yan X P. Metal-organic framework-801 for efficient removal of fluoride from water. Microporous and Mesoporous Materials, 2018, 259: 163–170
CrossRef Google scholar
[24]
Choi J, Lin L C, Grossman J C. Role of structural defects in the water adsorption properties of MOF-801. Journal of Physical Chemistry C, 2018, 122(10): 5545–5552
CrossRef Google scholar
[25]
Sun L M, Yuan Y S, Wang F, Zhao Y L, Zhan W W, Han X G. Selective wet-chemical etching to create TiO2@MOF frame heterostructure for efficient photocatalytic hydrogen evolution. Nano Energy, 2020, 74: 104909
CrossRef Google scholar
[26]
Jiang Y, Ryu G H, Joo S H, Chen X, Lee S H, Chen X, Huang M, Wu X, Luo D, Huang Y, . Porous two-dimensional monolayer metal-organic framework material and its use for the size-selective separation of nanoparticles. ACS Applied Materials & Interfaces, 2017, 9(33): 28107–28116
CrossRef Google scholar
[27]
Wang M, Yang H, Shen K, Xu H, Wang W, Yang Z, Zhang L, Chen J, Huang Y, Chen M, . Stable lithium-sulfur battery based on in situ electrocatalytically formed Li2S on metallic MoS2-carbon cloth support. Small Methods, 2020, 4(9): 2000353
CrossRef Google scholar
[28]
Chen L, Yu H, Li W X, Dirican M, Liu Y, Zhang X W. Interlayer design based on carbon materials for lithium-sulfur batteries: a review. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2020, 8(21): 10709–10735
CrossRef Google scholar
[29]
Ci H N, Cai J S, Mao H, Shi Z X, Cui G, Wang M L, Jin J, Wei N, Lu C, Zhao W, . Defective VSe2-graphene heterostructures enabling in situ electrocatalyst evolution for lithium-sulfur batteries. ACS Nano, 2020, 14(9): 11929–11938
CrossRef Google scholar
[30]
Li Q, Liu Q, Zhao J, Hua Y, Sun J, Duan J, Jin W. High efficient water/ethanol separation by a mixed matrix membrane incorporating MOF filler with high water adsorption capacity. Journal of Membrane Science, 2017, 544: 68–78
CrossRef Google scholar
[31]
Zhang Z, Ren J, Xu J, Wang Z, He W, Wang S, Yang X, Du X, Meng L, Zhao P. Adjust the arrangement of imidazole on the metal-organic framework to obtain hybrid proton exchange membrane with long-term stable high proton conductivity. Journal of Membrane Science, 2020, 607: 118194
CrossRef Google scholar
[32]
Ke F, Peng C, Zhang T, Zhang M, Zhou C, Cai H, Zhu J, Wan X. Fumarate-based metal-organic frameworks as a new platform for highly selective removal of fluoride from brick tea. Scientific Reports, 2018, 8(1): 939–950
CrossRef Google scholar
[33]
Tan T L, Krusnamurthy P A P, Nakajima H, Rashid S A. Adsorptive, kinetics and regeneration studies of fluoride removal from water using zirconium-based metal organic frameworks. RSC Advances, 2020, 10(32): 18740–18752
CrossRef Google scholar
[34]
Zhang J F, Li G R, Zhang Y G, Zhang W, Wang X, Zhao Y, Li J D, Chen Z W. Vertically rooting multifunctional tentacles on carbon scaffold as efficient polysulfide barrier toward superior lithium-sulfur batteries. Nano Energy, 2019, 64: 103905
CrossRef Google scholar
[35]
Jiang Y, Liu H, Tan X, Guo L, Zhang J, Liu S, Guo Y, Zhang J, Wang H, Chu W. Monoclinic ZIF-8 nanosheet-derived 2D carbon nanosheets as sulfur Immobilizer for high-performance lithium sulfur batteries. ACS Applied Materials & Interfaces, 2017, 9(30): 25239–25249
CrossRef Google scholar
[36]
Lei W X, Wang X W, Zhang Y W, Luo Z Y, Xia P T, Zou Y L, Ma Z S, Pan Y, Lin S. Facile synthesis of Fe3C nano-particles/porous biochar cathode materials for lithium sulfur battery. Journal of Alloys and Compounds, 2021, 835: 157024
CrossRef Google scholar
[37]
Wang D, Cao Q, Jing B, Wang X, Huang T, Zeng P, Jiang S, Zhang Q, Sun J. A freestanding metallic tin-modified and nitrogen-doped carbon skeleton as interlayer for lithium-sulfur battery. Chemical Engineering Journal, 2020, 399: 125723
CrossRef Google scholar
[38]
Li B Y, Su Q M, Yu L T, Zhang J, Du G H, Wang D, Han D, Zhang M, Ding S K, Xu B S. Tuning the band structure of MoS2 via Co9S8@MoS2 core-shell structure to boost catalytic activity for lithium-sulfur batteries. ACS Nano, 2020, 14(12): 17285–17294
CrossRef Google scholar
[39]
Peng H J, Zhang G, Chen X, Zhang Z W, Xu W T, Huang J Q, Zhang Q. Enhanced electrochemical kinetics on conductive polar mediators for lithium-sulfur batteries. Angewandte Chemie International Edition, 2016, 55(42): 12990–12995
CrossRef Google scholar
[40]
Baumann A E, Han X, Butala M M, Thoi V S. Lithium thiophosphate functionalized zirconium MOFs for Li-S batteries with enhanced rate capabilities. Journal of the American Chemical Society, 2019, 141(44): 17891–17899
CrossRef Google scholar
[41]
Qi C, Cai M, Li Z, Jin J, Chowdari B V R, Chen C, Wen Z. Ultrathin TiO2 surface layer coated TiN nanoparticles in freestanding film for high sulfur loading Li-S battery. Chemical Engineering Journal, 2020, 399: 125674
CrossRef Google scholar
[42]
Li Y, Jiang T, Yang H, Lei D, Deng X, Hao C, Zhang F, Guo J. A heterostuctured Co3S4/MnS nanotube array as a catalytic sulfur host for lithium-sulfur batteries. Electrochimica Acta, 2020, 330: 135311
CrossRef Google scholar
[43]
Ji P, Shang B, Peng Q, Hu X, Wei J. α-MoO3 spheres as effective polysulfides adsorbent for high sulfur content cathode in lithium-sulfur batteries. Journal of Power Sources, 2018, 400: 572–579
CrossRef Google scholar
[44]
Wang Y K, Zhang R F, Chen J, Wu H, Lu S Y, Wang K, Li H L, Harris C J, Xi K, Kumar R V, Ding S. Enhancing catalytic activity of titanium oxide in lithium-sulfur batteries by band engineering. Advanced Energy Materials, 2019, 9(24): 1900953
CrossRef Google scholar
[45]
Qian J, Wang F J, Li Y, Wang S, Zhao Y Y, Li W L, Xing Y, Deng L, Sun Q, Li L, Wu F, Chen R. Electrocatalytic interlayer with fast lithium-polysulfides diffusion for lithium-sulfur batteries to enhance electrochemical kinetics under lean electrolyte conditions. Advanced Functional Materials, 2020, 30(27): 2000742
CrossRef Google scholar
[46]
Wang M Y, Hua S H, Chao Z S, Li S Y, Tan B, Lai J X, Guo Z Y, Wei X L, Jin H G, Luo W B, . Celgard-supported LiX zeolite membrane as ion-permselective separator in lithium sulfur battery. Journal of Membrane Science, 2020, 611: 118386
CrossRef Google scholar
[47]
Chen P, Wu Z, Guo T, Zhou Y, Liu M L, Xia X F, Sun J W, Lu L, Ouyang X P, Wang X, et al. Strong chemical interaction between lithium polysulfides and flame-retardant polyphosphazene for lithium-sulfur batteries with enhanced safety and electrochemical performance. Advanced Materials, 2021, 33(9): 2007549
CrossRef Google scholar
[48]
Wang S T, Li X C, Zhang Y, Zheng W J, Dai Y, He G H. Highly efficient polysulfide trapping and ion transferring within a hierarchical porous membrane interlayer for high-energy lithium-sulfur batteries. ACS Applied Energy Materials, 2020, 3(5): 5050–5057
CrossRef Google scholar
[49]
Qian J, Wang F J, Li Y, Wang S, Zhao Y Y, Li W L, Xing Y, Deng L, Sun Q, Li L, . Electrocatalytic interlayer with fast lithium-polysulfides diffusion for lithium-sulfur batteries to enhance electrochemical kinetics under lean electrolyte conditions. Advanced Materials, 2020, 30(27): 2000742
[50]
Yang J L, Zhao S X, Lu Y M, Zeng X T, Lv W, Cao G Z. ZnS spheres wrapped by an ultrathin wrinkled carbon film as a multifunctional interlayer for long life Li-S batteries. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2020, 8(1): 231–241
CrossRef Google scholar
[51]
He Y S, Li M J, Zhang Y G, Shan Z Z, Zhao Y, Li J D, Liu G H, Liang C Y, Bakenov Z, Li Q. All-purpose electrode design of flexible conductive scaffold toward high performance Li-S batteries. Advanced Functional Materials, 2020, 30(19): 2000613
CrossRef Google scholar

Acknowledgments

The authors are grateful for the financial support from the Natural Science Foundation of Hebei Province (Grant Nos. B2019202289, B2019202199), ‘Hundred Talents Program’ of Hebei Province (Grant NO. E2019050013), and the National Natural Science Foundation of China (Grant No. 21908039).

Electronic Supplementary Material

Supplementary material is available in the online version of this article at https://dx.doi.org/10.1007/s11705-021-2068-4 and is accessible for authorized users.

RIGHTS & PERMISSIONS

2021 Higher Education Press
AI Summary AI Mindmap
PDF(2389 KB)

Accesses

Citations

Detail

Sections
Recommended

/