Dual-Level Engineering of MOF-Derived Hierarchical Porous Carbon Nanofibers with Low-Coordinated Cobalt Single-Atom Catalysts for High-Performance Lithium–Sulfur Batteries

Jeong Ho Na , Seohyeon Jang , Hyun Jin Kim , Jin Koo Kim , Haeseong Jang , Inho Nam , Seung-Keun Park

Advanced Fiber Materials ›› 2026, Vol. 8 ›› Issue (1) : 234 -251.

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Advanced Fiber Materials ›› 2026, Vol. 8 ›› Issue (1) :234 -251. DOI: 10.1007/s42765-025-00614-w
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Dual-Level Engineering of MOF-Derived Hierarchical Porous Carbon Nanofibers with Low-Coordinated Cobalt Single-Atom Catalysts for High-Performance Lithium–Sulfur Batteries

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Abstract

Carbon-supported single-atom catalysts (SACs) with metal-N moieties have garnered significant attention for their ability to enhance redox kinetics and suppress the dissolution of lithium polysulfides (LiPSs) in lithium–sulfur (Li–S) batteries. However, fully harnessing the catalytic potential of these SACs requires simultaneous optimization of the carbon substrate structure and modulation of the SACs coordination environment—a challenging feat. We propose a metal–organic framework-engaged dual-level engineering strategy to fabricate a hierarchical porous carbon nanofiber with low-coordinated SACs (CoSA/p-CNF). This strategy integrates both macro- and micro-level designs, resulting in a hierarchical pore structure that enhances ionic conductivity and electrolyte wettability, while providing highly active, low-coordinated Co–N3 moieties for efficient LiPS adsorption and conversion. Consequently, the CoSA/p-CNF demonstrates a high capacity of 917.7 mA⋅h⋅g−1 with excellent retention (95.3% after 300 cycles at 0.5 C) and outstanding rate performance (745 mA⋅h⋅g−1 at 4.0 C). Under demanding conditions, the Li–S cell with CoSA/p-CNF exhibits exceptional electrochemical performance (858 mA⋅h⋅g−1 at 0.5 C with a sulfur loading of 3.8 mg⋅cm−2). X-ray absorption spectroscopy and density functional theory calculations confirm that the low-coordinated Co–N3 moieties effectively adsorb and convert LiPSs, offering a practical solution to enhance sulfur redox kinetics in Li–S batteries.

Keywords

Li-S battery / Metal-organic framework / Single-atom catalyst / Electrospinning / Interlayer

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Jeong Ho Na, Seohyeon Jang, Hyun Jin Kim, Jin Koo Kim, Haeseong Jang, Inho Nam, Seung-Keun Park. Dual-Level Engineering of MOF-Derived Hierarchical Porous Carbon Nanofibers with Low-Coordinated Cobalt Single-Atom Catalysts for High-Performance Lithium–Sulfur Batteries. Advanced Fiber Materials, 2026, 8(1): 234-251 DOI:10.1007/s42765-025-00614-w

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References

[1]

Fang DL, Sun P, Huang SZ, Shang Y, Li XL, Yan D, Von Lim Y, Su CY, Su BJ, Juang JY, Yang HY. An exfoliation-evaporation strategy to regulate N coordination number of Co single-atom catalysts for high-performance lithium-sulfur batteries. ACS Mater Lett, 2022, 4: 1

[2]

Wang D, Cao Q, Jing B, Wang XY, Huang TL, Zeng P, Jiang SX, Zhang Q, Sun JY. A freestanding metallic tin-modified and nitrogen-doped carbon skeleton as interlayer for lithium-sulfur battery. Chem Eng J, 2020, 399 125723

[3]

Gong Y, Li J, Yang K, Li SY, Xu M, Zhang GP, Shi Y, Cai Q, Li HX, Zhao YL. Towards practical application of Li–S battery with high sulfur loading and lean electrolyte: will carbon-based hosts win this race?. Nano-Micro Lett, 2023, 15: 150

[4]

Yoon H, Park D, Song HJ, Park S, Kim DW. Vertically aligned sulfiphilic cobalt disulfide nanosheets supported on a free-standing carbon nanofiber interlayer for high-performance lithium-sulfur batteries. ACS Sustain Chem Eng, 2021, 9: 8487

[5]

Zhou G, Li L, Wang D-W, Shan X-y, Pei S, Li F, Cheng H-M. A flexible sulfur-graphene-polypropylene separator integrated electrode for advanced Li–S batteries. Adv Mater, 2015, 27: 641

[6]

Kumar YA, Koyyada G, Ramachandran T, Kim JH, Sajid S, Moniruzzaman M, Alzahmi S, Obaidat IM. Carbon materials as a conductive skeleton for supercapacitor electrode applications: a review. Nanomaterials, 2023, 13 1049

[7]

Chen L, Yu H, Li WX, Dirican M, Liu Y, Zhang XW. Interlayer design based on carbon materials for lithium-sulfur batteries: a review. J Mater Chem A, 2020, 8: 10709

[8]

Huang J-Q, Zhang Q, Wei F. Multi-functional separator/interlayer system for high-stable lithium-sulfur batteries: progress and prospects. Energy Storage Mater, 2015, 1: 127

[9]

Yang YX, Sun W, Zhang J, Yue XY, Wang ZH, Sun KN. High rate and stable cycling of lithium-sulfur batteries with carbon fiber cloth interlayer. Electrochim Acta, 2016, 209: 691

[10]

Wang JG, Yang Y, Kang FY. Porous carbon nanofiber paper as an effective interlayer for high-performance lithium-sulfur batteries. Electrochim Acta, 2015, 168: 271

[11]

Lu XF, Li MX, Wang HY, Wang C. Advanced electrospun nanomaterials for highly efficient electrocatalysis. Inorg Chem Front, 2019, 6: 3012

[12]

Wang XJ, Li Y, Jin T, Meng J, Jiao LF, Zhu M, Chen J. Electrospun thin-walled CuCoO@C nanotubes as bifunctional oxygen electrocatalysts for rechargeable Zn-air batteries. Nano Lett, 2017, 17: 7989

[13]

Singhal R, Chung S-H, Manthiram A, Kalra V. A free-standing carbon nanofiber interlayer for high-performance lithium-sulfur batteries. J Mater Chem A, 2015, 3: 4530

[14]

Du ZZ, Chen XJ, Hu W, Chuang CH, Xie S, Hu AJ, Yan WS, Kong XH, Wu XJ, Ji HX, Wan LJ. Cobalt in nitrogen-doped graphene as single-atom catalyst for high-sulfur content lithium-sulfur batteries. J Am Chem Soc, 2019, 141: 3977

[15]

Pang Q, Liang X, Kwok CY, Nazar LF. Advances in lithium-sulfur batteries based on multifunctional cathodes and electrolytes. Nat Energy, 2016, 1: 16132

[16]

Luo J, Waterhouse GIN, Peng L, Chen Q. Recent progress in high-loading single-atom catalysts and their aplications. Ind Chem Mater, 2023, 1: 486

[17]

Cao FL, Zhang XK, Jin ZH, Zhang JY, Tian ZY, Kong DB, Li YP, Li YT, Zhi LJ. Electronegativity matching of asymmetrically coordinated single-atom catalysts for high-performance lithium-sulfur batteries. Adv Energy Mater, 2024, 14 2303893

[18]

Liu Y, Wang B, Zhu JJ, Xu XN, Zhou B, Yang Y. Single-atom nanozyme with asymmetric electron distribution for tumor catalytic therapy by disrupting tumor redox and energy metabolism homeostasis. Adv Mater, 2023, 35 2208512

[19]

Yu J, Li J, Xu C-Y, Li Q, Liu Q, Liu J, Chen R, Zhu J, Wang J. Modulating the d-band centers by coordination environment regulation of single-atom Ni on porous carbon fibers for overall water splitting. Nano Energy, 2022, 98 107266

[20]

Wang JY, Qiu WB, Li GR, Liu JB, Luo D, Zhang YG, Zhao Y, Zhou GF, Shui LL, Wang X, Chen ZW. Coordinatively deficient single-atom Fe–N–C electrocatalyst with optimized electronic structure for high-performance lithium-sulfur batteries. Energy Storage Mater, 2022, 46: 269

[21]

Wang LL, Zhu CW, Xu MQ, Zhao CL, Gu J, Cao LN, Zhang XH, Sun ZH, Wei SQ, Zhou W, Li WX, Lu JL. Boosting activity and stability of metal single-atom catalysts via regulation of coordination number and local composition. J Am Chem Soc, 2021, 143: 18854

[22]

Wang M-Q, Cao M-S. Perspectives on metal–organic framework-derived microwave absorption materials. J Mater Sci Technol, 2025, 214: 37

[23]

Wang M-Q, Shu J-C, Wan X, Cao W-Q, Cao M-S. Thermally derived hierarchical nanoplates for electromagnetic protection and waste energy recovery device. Small, 2023, 19: 2303186

[24]

Zhang X-C, Zhang M, Wang M-Q, Chang L, Li L, Cao M-S. Metal single-atoms toward electromagnetic wave-absorbing materials: insights and perspective. Adv Funct Mater, 2024, 34 2405972

[25]

Zou Y, Hu J, Li B, Lin L, Li Y, Liu F, Li X-y. Tailoring the coordination environment of cobalt in a single-atom catalyst through phosphorus doping for enhanced activation of peroxymonosulfate and thus efficient degradation of sulfadiazine. Appl Catal B, 2022, 312 121408

[26]

Kresse G, Furthmüller J. Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys Rev B, 1996, 54: 11169

[27]

Kresse G, Furthmüller J. Efficiency of ab-initio total energy calculations for metals and semiconductors using a plane-wave basis set. Comput Mater Sci, 1996, 6: 15

[28]

Kresse G, Hafner J. Ab initio molecular-dynamics simulation of the liquid-metal-amorphous-semiconductor transition in germanium. Phys Rev B, 1994, 49: 14251

[29]

Kresse G, Hafner J. Ab initio molecular dynamics for liquid metals. Phys Rev B, 1993, 47: 558

[30]

Pulay P. Convergence acceleration of iterative sequences. The case of scf iteration. Chem Phys Lett, 1980, 73: 393

[31]

Blöchl PE. Projector augmented-wave method. Phys Rev B, 1994, 50: 17953

[32]

Perdew JP, Burke K, Ernzerhof M. Generalized gradient approximation made simple. Phys Rev Lett, 1996, 77: 3865

[33]

Grimme S. Semiempirical GGA-type density functional constructed with a long-range dispersion correction. J Comput Chem, 2006, 27: 1787

[34]

Tang W, Sanville E, Henkelman G. A grid-based bader analysis algorithm without lattice bias. J Phys Condens Matter, 2009, 21 084204

[35]

Sanville E, Kenny SD, Smith R, Henkelman G. Improved grid-based algorithm for bader charge allocation. J Comput Chem, 2007, 28: 899

[36]

Henkelman G, Arnaldsson A, Jónsson H. A fast and robust algorithm for bader decomposition of charge density. Comput Mater Sci, 2006, 36: 354

[37]

Takamoto S, Shinagawa C, Motoki D, Nakago K, Li W, Kurata I, Watanabe T, Yayama Y, Iriguchi H, Asano Y, Onodera T, Ishii T, Kudo T, Ono H, Sawada R, Ishitani R, Ong M, Yamaguchi T, Kataoka T, Hayashi A, Charoenphakdee N, Ibuka T. Towards universal neural network potential for material discovery applicable to arbitrary combination of 45 elements. Nat Commun, 2022, 13 2991

[38]

Hjorth Larsen A, Jørgen Mortensen J, Blomqvist J, Castelli IE, Christensen R, Dułak M, Friis J, Groves MN, Hammer B, Hargus C, Hermes ED, Jennings PC, Bjerre Jensen P, Kermode J, Kitchin JR, Leonhard Kolsbjerg E, Kubal J, Kaasbjerg K, Lysgaard S, Bergmann Maronsson J, Maxson T, Olsen T, Pastewka L, Peterson A, Rostgaard C, Schiøtz J, Schütt O, Strange M, Thygesen KS, Vegge T, Vilhelmsen L, Walter M, Zeng Z, Jacobsen KW. The atomic simulation environment—a python library for working with atoms. J Phys Condens Matter, 2017, 29 273002

[39]

Lai Q, Zhao Y, Liang Y, He J, Chen J. In situ confinement pyrolysis transformation of ZIF-8 to nitrogen-enriched meso-microporous carbon frameworks for oxygen reduction. Adv Funct Mater, 2016, 26: 8334

[40]

Han XP, Ling XF, Wang Y, Ma TY, Zhong C, Hu WB, Deng YD. Generation of nanoparticle, atomic-cluster, and single-atom cobalt catalysts from zeolitic imidazole frameworks by spatial isolation and their use in zinc-air batteries. Angew Chem Int Ed, 2019, 58: 5359

[41]

Li Z, Liu F, Chen C, Jiang Y, Ni P, Song N, Hu Y, Xi S, Liang M, Lu Y. Regulating the N coordination environment of Co single-atom nanozymes for highly efficient oxidase mimics. Nano Lett, 2023, 23: 1505

[42]

Wang XQ, Chen Z, Zhao XY, Yao T, Chen WX, You R, Zhao CM, Wu G, Wang J, Huang WX, Yang JL, Hong X, Wei SQ, Wu Y, Li YD. Regulation of coordination number over single Co sites: triggering the efficient electroreduction of CO. Angew Chem Int Ed, 2018, 57: 1944

[43]

Song Y, Guo R, Feng B, Fu Y, Zhang F, Zhang Y, Chen D-L, Zhang J, Zhu W. Coordination number engineering of Zn single-atom sites for enhanced transfer hydrogenation performance. Chem Eng J, 2023, 465 142920

[44]

Thommes M, Kaneko K, Neimark AV, Olivier JP, Rodriguez-Reinoso F, Rouquerol J, Sing KSW. Physisorption of gases, with special reference to the evaluation of surface area and pore size distribution (IUPAC technical report). Pure Appl Chem, 2015, 87: 1051

[45]

Pagis C, Laprune D, Roiban L, Epicier T, Daniel C, Tuel A, Farrusseng D, Coasne B. Morphology and topology assessment in hierarchical zeolite materials: adsorption hysteresis, scanning behavior, and domain theory. Inorg Chem Front, 2022, 9: 2903

[46]

Sun YM, Sills RB, Hu XL, Seh ZW, Xiao X, Xui HH, Luo W, Jin HY, Xin Y, Li TQ, Zhang ZL, Zhou J, Cai W, Huang YH, Cui Y. A bamboo-inspired nanostructure design for flexible, foldable, and twistable energy storage devices. Nano Lett, 2015, 15: 3899

[47]

Hu FX, Hu T, Chen SH, Wang DP, Rao QH, Liu YH, Dai FY, Guo CX, Yang HB, Li CM. Single-atom cobalt-based electrochemical biomimetic uric acid sensor with wide linear range and ultralow detection limit. Nano-Micro Lett, 2021, 13: 7

[48]

Dedryvère R, Laruelle S, Grugeon S, Poizot P, Gonbeau D, Tarascon JM. Contribution of X-ray photoelectron spectroscopy to the study of the electrochemical reactivity of CoO toward lithium. Chem Mater, 2004, 16: 1056

[49]

Liang X, Wang D, Zhao Z, Li T, Gao Y, Hu C. Coordination number dependent catalytic activity of single-atom cobalt catalysts for fenton-like reaction. Adv Funct Mater, 2022, 32 2203001

[50]

Li Y, Zhou P, Li H, Gao T, Zhou L, Zhang Y, Xiao N, Xia Z, Wang L, Zhang Q, Gu L, Guo S. A freestanding flexible single-atom cobalt-based multifunctional interlayer toward reversible and durable lithium-sulfur batteries. Small Methods, 2020, 4: 1900701

[51]

Ma Y, Li JT, Liao XB, Luo W, Huang WZ, Meng JS, Chen Q, Xi SB, Yu RH, Zhao Y, Zhou L, Mai LQ. Heterostructure design in bimetallic phthalocyanine boosts oxygen reduction reaction activity and durability. Adv Funct Mater, 2020, 30 2005000

[52]

Dong X, Chen Z, Tang A, Dionysiou DD, Yang H. Mineral modulated single atom catalyst for effective water treatment. Adv Funct Mater, 2022, 32 2111565

[53]

Jia Q, Ramaswamy N, Hafiz H, Tylus U, Strickland K, Wu G, Barbiellini B, Bansil A, Holby EF, Zelenay P, Mukerjee S. Experimental observation of redox-induced Fe–N switching behavior as a determinant role for oxygen reduction activity. ACS Nano, 2015, 9: 12496

[54]

Yang Z, Zhang X, Long C, Yan S, Shi Y, Han J, Zhang J, An P, Chang L, Tang Z. Covalently anchoring cobalt phthalocyanine on zeolitic imidazolate frameworks for efficient carbon dioxide electroreduction. CrystEngComm, 2020, 22: 1619

[55]

Wan W, Triana CA, Lan J, Li J, Allen CS, Zhao Y, Iannuzzi M, Patzke GR. Bifunctional single atom electrocatalysts: coordination-performance correlations and reaction pathways. ACS Nano, 2020, 14: 13279

[56]

Kim J, Kim S-J, Jung E, Mok DH, Paidi VK, Lee J, Lee HS, Jeoun Y, Ko W, Shin H, Lee B-H, Kim S-Y, Kim H, Kim JH, Cho S-P, Lee K-S, Back S, Yu S-H, Sung Y-E, Hyeon T. Atomic structure modification of Fe-N-C catalysts via morphology engineering of graphene for enhanced conversion kinetics of lithium-sulfur batteries. Adv Funct Mater, 2022, 32 2110857

[57]

Liu Y, Zhu G, Li A, Pei J, Zheng Y, Chen W, Ding J, Wu W, Wang T, Wang D, Mao J. Transforming cobalt hydroxide nanowires into single atom site catalysts. Nano Energy, 2021, 83 105799

[58]

Ma C, Zhang YQ, Feng YM, Wang N, Zhou LJ, Liang CP, Chen LB, Lai YQ, Ji XB, Yan CL, Wei WF. Engineering Fe–N coordination structures for fast redox conversion in lithium-sulfur batteries. Adv Mater, 2021, 33 2100171

[59]

Kim H-e, Jang S, Lim H, Chung W, Nam I, Bang JH. Noble metal single-atoms for lithium-ion batteries: a booster for ultrafast charging/discharging in carbon electrodes. Appl Surf Sci, 2023, 624 157161

[60]

Xia Y, Fang R, Xiao Z, Huang H, Gan Y, Yan R, Lu X, Liang C, Zhang J, Tao X, Zhang W. Confining sulfur in N-doped porous carbon microspheres derived from microalgaes for advanced lithium-sulfur batteries. ACS Appl Mater Interfaces, 2017, 9: 23782

[61]

Ren L, Liu J, Zhao Y, Wang Y, Lu X, Zhou M, Zhang G, Liu W, Xu H, Sun X. Regulating electronic structure of Fe–N4 single atomic catalyst via neighboring sulfur doping for high performance lithium–sulfur batteries. Adv Funct Mater, 2023, 33 2210509

[62]

Liu K, Wang X, Gu S, Yuan H, Jiang F, Li Y, Tan W, Long Q, Chen J, Xu Z, Lu Z. N, S-coordinated Co single atomic catalyst boosting adsorption and conversion of lithium polysulfides for lithium-sulfur batteries. Small, 2022, 18: 2204707

[63]

Liu Y, Deb A, Leung KY, Nie W, Dean WS, Penner-Hahn JE, McCrory CCL. Determining the coordination environment and electronic structure of polymer-encapsulated cobalt phthalocyanine under electrocatalytic CO2 reduction conditions using in situ X-ray absorption spectroscopy. Dalton Trans, 2020, 49: 16329

[64]

Krogman JP, Gallagher JR, Zhang G, Hock AS, Miller JT, Thomas CM. Assignment of the oxidation states of Zr and Co in a highly reactive heterobimetallic Zr/Co complex using X-ray absorption spectroscopy (XANES). Dalton Trans, 2014, 43: 13852

[65]

Lv Z, Shu Z, Luo J, Xu J, Ma Y, Zhang L, Xu H, Mao Z. Asymmetric high-coordination Co-NSP single-atom catalysts with tailored d-p-orbital electron structure for efficient bifunctional catalyst of rechargeable Zn-Air battery cathodes. Appl Catal B Environ Energy, 2025, 365 124889

[66]

Zhao L, Li Y, Yu M, Peng Y, Ran F. Electrolyte-wettability issues and challenges of electrode materials in electrochemical energy storage, energy conversion, and beyond. Adv Sci, 2023, 10 2300283

[67]

Choi C, Park JB, Kim D-W. A synergistic engineering layer with a versatile H2Ti3O7 electrocatalyst for a suppressed shuttle effect and enhanced catalytic conversion in lithium-sulfur batteries. J Mater Chem A, 2020, 8: 25411

[68]

Ghazi ZA, He X, Khattak AM, Khan NA, Liang B, Iqbal A, Wang J, Sin H, Li L, Tang Z. MoS2/celgard separator as efficient polysulfide barrier for long-life lithium-sulfur batteries. Adv Mater, 2017, 29: 1606817

[69]

Li Y, Chen G, Mou J, Liu Y, Xue S, Tan T, Zhong W, Deng Q, Li T, Hu J, Yang C, Huang K, Liu M. Cobalt single atoms supported on N-doped carbon as an active and resilient sulfur host for lithium-sulfur batteries. Energy Storage Mater, 2020, 28: 196

[70]

Yao W, Zheng W, Xu J, Tian C, Han K, Sun W, Xiao S. Zns-sns@nc heterostructure as robust lithiophilicity and sulfiphilicity mediator toward high-rate and long-life lithium-sulfur batteries. ACS Nano, 2021, 15: 7114

[71]

Suo L, Hu Y-S, Li H, Armand M, Chen L. A new class of solvent-in-salt electrolyte for high-energy rechargeable metallic lithium batteries. Nat Commun, 2013, 4: 1481

[72]

Xu W, Lang S, Wang K, Zeng R, Li H, Feng X, Krumov MR, Bak S-M, Pollock CJ, Yeo J, Du Y, Abruña HD. Fundamental mechanistic insights into the catalytic reactions of Li─S redox by Co single-atom electrocatalysts via operando methods. Sci Adv, 2023, 9 eadi5108

[73]

Yang X, Gao X, Sun Q, Jand SP, Yu Y, Zhao Y, Li X, Adair K, Kuo L-Y, Rohrer J, Liang J, Lin X, Banis MN, Hu Y, Zhang H, Li X, Li R, Zhang H, Kaghazchi P, Sham T-K, Sun X. Promoting the transformation of Li2S2 to Li2S: significantly increasing utilization of active materials for high-sulfur-loading Li–S batteries. Adv Mater, 2019, 31 1901220

[74]

Xu Q, Jin Y, Sun T, Zheng T, Zhang P, Han Y, Wang Y, Li T, Qi D, Xu L, Wang D, Jiang J. Theoretical and experimental investigation of the coordination effect on photocatalytic CO2 reduction efficiency of cobalt single atom catalyst. Chem Eng J, 2024, 479 147837

Funding

Ministry of Trade, Industry and Energy(RS-2024-00456324)

Korea Institute of Energy Technology Evaluation and Planning(20214000000280)

Chung-Ang University

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