Amorphous lithiophilic cobalt-boride@rGO interlayer for dendrite-free and highly stable lithium metal batteries

Yu Wu , Fei Ma , Ziheng Zhang , Daiqian Chen , Hesheng Yu , Xiaojuan Zhang , Fei Ding , Lin Zhang , Yuanfu Chen

EcoEnergy ›› 2024, Vol. 2 ›› Issue (2) : 299 -310.

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EcoEnergy ›› 2024, Vol. 2 ›› Issue (2) : 299 -310. DOI: 10.1002/ece2.38
RESEARCH ARTICLE

Amorphous lithiophilic cobalt-boride@rGO interlayer for dendrite-free and highly stable lithium metal batteries

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Abstract

Lithium metal batteries (LMBs) are recognized to be crucial for secondary battery technology targeting electric vehicles and portable electronic devices. However, the undesirable growth of lithium dendrites would result in reduced capacity, short-circuit, and overheating, seriously hindering the practical applications of LMBs. To address this issue, a neoteric lithiophilic interlayer on a commercial polypropylene separator is presented for the first time, which is constructed by amorphous CoB nanoparticles decorated reduced graphene oxide nanosheets (CoB@rGO). Density Functional Theory calculations and experimental analysis reveal remarkable lithiophilicity features for CoB@rGO and provide multiple Li deposition sites and improved electrolyte wettability, which facilitates the formation of durable solid electrolyte interphase (SEI), reduces side reactions, and improves Li+ flux regulation for long-term cycling stability in LMBs. Taking advantage of these merits, the symmetric Li//Li cell with CoB@rGO/PP separator exhibits stable cycling for up to 1600 h at 1 mA cm−2 with 1 mAh cm−2. Employed with CoB@rGO separator, the Li//LiFePO4 full cell with a high LiFePO4 loading of 11 mg cm−2 delivers a high initial specific capacity of 115.3 mAh g−1 and a low decay rate of 0.08% per cycle after 200 cycles even at a high rate of 2C.

Keywords

CoB@rGO interlayer / dendrite-free lithium metal batteries / functional separator / long-term stability / uniform lithium deposition

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Yu Wu, Fei Ma, Ziheng Zhang, Daiqian Chen, Hesheng Yu, Xiaojuan Zhang, Fei Ding, Lin Zhang, Yuanfu Chen. Amorphous lithiophilic cobalt-boride@rGO interlayer for dendrite-free and highly stable lithium metal batteries. EcoEnergy, 2024, 2(2): 299-310 DOI:10.1002/ece2.38

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References

[1]

ChouS, YuY. Next generation batteries: aim for the future. Adv Energy Mater. 2017;7(24):1703223

[2]

ChenB, ZhongX, ZhouG, Zhao N, ChengHM. Graphenesupported atomically dispersed metals as bifunctional catalysts for next-generation batteries based on conversion reactions. Adv Mater. 2022;34(5):2105812

[3]

LiuH, LiuXX, LiW, et al. Porous carbon composites for next generation rechargeable lithium batteries. Adv Energy Mater. 2017;7(24):1700283

[4]

XiZW, ZhangX, MaYS, et al. Recent progress in flexible fibrous batteries. Chemelectrochem. 2018;5(21):3127-3137

[5]

ZhanX, LiM, ZhaoX, et al. Self-assembled hydrated copper coordination compounds as ionic conductors for room temperature solid-state batteries. Nat Commun. 2024;15(1):1056

[6]

KimS, TanimTR, DufekEJ, et al. Projecting recent advancements in battery technology to next-generation electric vehicles. Energy Technol. 2022;10(8):2200303

[7]

XuX, LiuY, HwangJ, et al. Role of Li-ion depletion on electrode surface: underlying mechanism for electrodeposition behavior of lithium metal anode. Adv Energy Mater. 2020;10(44):2002390

[8]

LuW, LiZ, ShangH, Jiao L. Conversion reaction lithium metal batteries. Nano Res. 2023;16(6):8219-8252

[9]

FengX, WuH, GaoB, Świętosławski M, HeX, ZhangQ. Lithiophilic N-doped carbon bowls induced Li deposition in layered graphene film for advanced lithium metal batteries. Nano Res. 2021;15(1):352-360

[10]

HouC, HanJ, LiuP, et al. Operando observations of SEI film evolution by mass-sensitive scanning transmission electron microscopy. Adv Energy Mater. 2019;9(45):1902675

[11]

XuS, ChenK, DasguptaNP, Siegel JB, StefanopoulouAG. Evolution of dead lithium growth in lithium metal batteries: experimentally validated model of the apparent capacity loss. J Electrochem Soc. 2019;166(14):A3456-A3463

[12]

HanX, GuL, SunZ, et al. Manipulating charge-transfer kinetics and a flow-domain LiF-rich interphase to enable highperformance microsized silicon-silver-carbon composite anodes for solid-state batteries. Energy Environ Sci. 2023;16(11):5395-5408

[13]

HeiskanenSK, KimJ, LuchtBL. Generation and evolution of the solid electrolyte interphase of lithium-ion batteries. Joule. 2019;3(10):2322-2333

[14]

RaoRikka V, Ranjan Sahu S, ChatterjeeA, GopalanR, Sundararajan G, PrakashR. Composition-dependent long-term stability of mosaic solid-electrolyte interface for long-life lithium-ion battery. Batteries Supercaps. 2021;4(11):1720-1730

[15]

WuX, PanK, JiaM, et al. Electrolyte for lithium protection: from liquid to solid. Green Energy Environ. 2019;4(4):360-374

[16]

HuangX, HeR, LiM, CheeMOL, DongP, Lu J. Functionalized separator for next-generation batteries. Mater Today. 2020;41:143-155

[17]

MaF, Srinivas K, ZhangX, et al. MO2N quantum dots decorated N-doped graphene nanosheets as dual-functional interlayer for dendrite-free and shuttle-free lithium-sulfur batteries. Adv Funct Mater. 2022;32(40):2206113

[18]

WeiZ, RenY, SokolowskiJ, Zhu X, WuG. Mechanistic understanding of the role separators playing in advanced lithiumsulfur batteries. InfoMat. 2020;2(3):483-508

[19]

PomerantsevaE, Bonaccorso F, FengX, CuiY, Gogotsi Y. Energy storage: the future enabled by nanomaterials. Science. 2019;366(6468):966

[20]

LiN, MaX, YeH, WangS, HanK. Carbon nanotube-modified separator for lithium-sulfur batteries: effects of mass loading and adding polyvinylpyrrolidone on electrochemical performance. J Phys Chem Solid. 2019;134:69-76

[21]

ChenH, XiaoY, ChenC, et al. Conductive MOF-modified separator for mitigating the shuttle effect of lithium-sulfur battery through a filtration method. ACS Appl Mater Interfaces. 2019;11(12):11459-11465

[22]

LeiQ, ZhangQ, WuX, et al. Towards ultra-stable lithium metal batteries: interfacial ionic flux regulated through LiAl LDHmodified polypropylene separator. Chem Eng J. 2020;395:125187

[23]

ZhangJ, ChengY, ChenH, et al. MoP quantum dot-modified N, P-carbon nanotubes as a multifunctional separator coating for high-performance lithium-sulfur batteries. ACS Appl Mater Interfaces. 2022;14(14):16289-16299

[24]

GuptaS, PatelMK, MiotelloA, Patel N. Metal boride-based catalysts for electrochemical water-splitting: a review. Adv Funct Mater. 2019;30(1):1906481

[25]

LiangY, WuZ, YuanX, Zhang W, ZhangP. Discovery of elusive structures of multifunctional transition-metal borides. Nanoscale. 2016;8(2):1055-1065

[26]

GuptaS, PatelN, MiotelloA, Kothari DC. Cobalt-boride: an efficient and robust electrocatalyst for hydrogen evolution reaction. J Power Sources. 2015;279:620-625

[27]

WangD, ZhouJ, LiJ, JiangX, WangY, Gao F. Cobalt-boron nanoparticles anchored on graphene as anode of lithium ion batteries. Chem Eng J. 2019;360:271-279

[28]

DengJ, YuX, QinX, et al. Co-B nanoflakes as multifunctional bridges in ZnCO2O4 micro-/nanospheres for superior lithium storage with boosted kinetics and stability. Adv Energy Mater. 2019;9(14):1803612

[29]

LiZ, ZengQ, YuY, et al. Application of transition metal boride nanosheet as sulfur host in high loading Li-S batteries. Chem Eng J. 2023;452:139366

[30]

GuanB, FanL, WuX, et al. The facile synthesis and enhanced lithium-sulfur battery performance of an amorphous cobalt boride (CO2B)@graphene composite cathode. J Mater Chem A. 2018;6(47):24045-24049

[31]

WangB, WangL, ZhangB, et al. Ultrafine zirconium boride nanoparticles constructed bidirectional catalyst for ultrafast and long-lived lithium-sulfur batteries. Energy Storage Mater. 2022;45:130-141

[32]

HeJ, Bhargav A, ManthiramA. Molybdenum boride as an efficient catalyst for polysulfide redox to enable high-energydensity lithium-sulfur batteries. Adv Mater. 2020;32(40):2004741

[33]

GuanB, ZhangY, FanL, et al. Blocking polysulfide with CO2B@CNT via “synergetic adsorptive effect” toward ultrahighrate capability and robust lithium-sulfur battery. ACS Nano. 2019;13(6):6742-6750

[34]

LiZ, LiP, MengX, Lin Z, WangR. The interfacial electronic engineering in binary sulfiphilic cobalt boride heterostructure nanosheets for upgrading energy density and longevity of lithium-sulfur batteries. Adv Mater. 2021;33(42):2102338

[35]

FengT, ZhaoT, ZhangN, et al. 2D amorphous Mo-doped CoB for bidirectional sulfur catalysis in lithium sulfur batteries. Adv Funct Mater. 2022;32(30):202202766

[36]

WangJ, LiuW, LuoG, et al. Synergistic effect of well-defined dual sites boosting the oxygen reduction reaction. Energy Environ Sci. 2018;11(12):3375-3379

[37]

NarenT, JiangR, QingP, et al. Stabilizing lithium metal batteries by synergistic effect of high ionic transfer separator and lithium-boron composite material anode. ACS Nano. 2023;17(20):20315-20324

[38]

HaoZ, ZhaoQ, TangJ, et al. Functional separators towards the suppression of lithium dendrites for rechargeable highenergy batteries. Mater Horiz. 2021;8(1):12-32

[39]

WuH, JiaH, WangC, Zhang JG, XuW. Recent progress in understanding solid electrolyte interphase on lithium metal anodes. Adv Energy Mater. 2020;11(5):2003092

[40]

ZhangX, MaF, SrinivasK, et al. Fe3N@N-doped graphene as a lithiophilic interlayer for highly stable lithium metal batteries. Energy Storage Mater. 2022;45:656-666

[41]

SunZ, PanJ, ChenW, et al. Electrochemical processes and reactions in rechargeable battery materials revealed via in situ transmission electron microscopy. Adv Energy Mater. 2023;14(2):2303165

[42]

HeY, LiuL, ZhuC, et al. Amorphizing noble metal chalcogenide catalysts at the single-layer limit towards hydrogen production. Nat Catal. 2022;5(3):212-221

[43]

LongH, GaoD, WangP, Wang X, ChenF, YuH. Amorphization-induced reverse electron transfer in NiB cocatalyst for boosting photocatalytic H2 production. Appl Catal B Environ Energy. 2024;340:123270

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2024 The Author(s). EcoEnergy published by John Wiley & Sons Australia, Ltd on behalf of China Chemical Safety Association.

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