
Multilevel carbon architecture of subnanoscopic silicon for fast-charging high-energy-density lithium-ion batteries
Meisheng Han, Yongbiao Mu, Lei Wei, Lin Zeng, Tianshou Zhao
Carbon Energy ›› 2024, Vol. 6 ›› Issue (4) : 377.
Multilevel carbon architecture of subnanoscopic silicon for fast-charging high-energy-density lithium-ion batteries
Silicon (Si) is widely used as a lithium-ion-battery anode owing to its high capacity and abundant crustal reserves. However, large volume change upon cycling and poor conductivity of Si cause rapid capacity decay and poor fast-charging capability limiting its commercial applications. Here, we propose a multilevel carbon architecture with vertical graphene sheets (VGSs) grown on surfaces of subnanoscopically and homogeneously dispersed Si–C composite nanospheres, which are subsequently embedded into a carbon matrix (C/VGSs@Si–C). Subnanoscopic C in the Si–C nanospheres, VGSs, and carbon matrix form a three-dimensional conductive and robust network, which significantly improves the conductivity and suppresses the volume expansion of Si, thereby boosting charge transport and improving electrode stability. The VGSs with vast exposed edges considerably increase the contact area with the carbon matrix and supply directional transport channels through the entire material, which boosts charge transport. The carbon matrix encapsulates VGSs@Si–C to decrease the specific surface area and increase tap density, thus yielding high first Coulombic efficiency and electrode compaction density. Consequently, C/VGSs@Si–C delivers excellent Li-ion storage performances under industrial electrode conditions. In particular, the full cells show high energy densities of 603.5 Wh kg-1 and 1685.5 Wh L-1 at 0.1 C and maintain 80.7% of the energy density at 3 C.
fast charging / high energy densities / lithium-ion batteries / multilevel carbon architecture / subnanoscopic silicon anode
[1] |
Wu H, Chan G, Choi JW, et al. Stable cycling of double-walled silicon nanotube battery anodes through solid-electrolyte interphase control. Nat Nanotechnol. 2012; 7 (5): 310- 315.
|
[2] |
Dash R, Pannala S. The potential of silicon anode based lithium ion batteries. Mater Today. 2016; 19 (9): 483- 484.
|
[3] |
Graetz J, Ahn CC, Yazami R, Fultz B. Highly reversible lithium storage in nanostructured silicon. Electrochem Solid-State Lett. 2003; 6 (9): A194.
|
[4] |
Chan CK, Peng H, Liu G, et al. High-performance lithium battery anodes using silicon nanowires. Nat Nanotechnol. 2008; 3 (1): 31- 35.
|
[5] |
Li J, Huang Y, Huang W, et al. Simple designed micro-nano Si-graphite hybrids for lithium storage. Small. 2021; 17 (8): 2006373.
|
[6] |
Wang H, Fu J, Wang C, et al. A binder-free high silicon content flexible anode for Li-ion batteries. Energy Environ Sci. 2020; 13 (3): 848- 858.
|
[7] |
Gao R, Tang J, Yu X, et al. In situ synthesis of MOF-derived carbon shells for silicon anode with improved lithium-ion storage. Nano Energy. 2020; 70: 104444.
|
[8] |
Chen B, Chen L, Zu L, et al. Zero-strain high-capacity silicon/carbon anode enabled by a MOF-derived space-confined single-atom catalytic strategy for lithium-ion batteries. Adv Mater. 2022; 34 (21): 2200894.
|
[9] |
Liu Q, Ji Y, Yin X, et al. Magnesiothermic reduction improved route to high-yield synthesis of interconnected porous Si@C networks anode of lithium ions batteries. Energy Storage Mater. 2022; 46: 384- 393.
|
[10] |
Ko M, Chae S, Ma J, et al. Scalable synthesis of siliconnanolayer-embedded graphite for high-energy lithium-ion batteries. Nat Energy. 2016; 1 (9): 16113.
|
[11] |
Kwon HJ, Hwang JY, Shin HJ, et al. Nano/microstructured silicon-carbon hybrid composite particles fabricated with corn starch biowaste as anode materials for Li-ion batteries. Nano Lett. 2020; 20 (1): 625- 635.
|
[12] |
Jia H, Li X, Song J, et al. Hierarchical porous silicon structures with extraordinary mechanical strength as high performance lithium-ion battery anodes. Nat Commun. 2020; 11: 1474.
|
[13] |
Chae S, Xu Y, Yi R, et al. A micrometer-sized silicon/carbon composite anode synthesized by impregnation of petroleum pitch in nanoporous silicon. Adv Mater. 2021; 33 (40): 2103095.
|
[14] |
Yan Z, Jin H, Guo J. Low-temperature synthesis of graphitic carbon-coated silicon anode materials. Carbon Energy. 2019; 1 (2): 246- 252.
|
[15] |
Jo YN, Kim Y, Kim JS, et al. Si-graphite composites as anode materials for lithium secondary batteries. J Power Sources. 2010; 195 (18): 6031- 6036.
|
[16] |
Lee D, Kondo A, Lee S, et al. Controlled swelling behavior and stable cycling of silicon/graphite granular composite for high energy density in lithium ion batteries. J Power Sources. 2020; 457: 228021.
|
[17] |
Kim N, Chae S, Ma J, Ko M, Cho J. Fast-charging high-energy lithium-ion batteries via implantation of amorphous silicon nanolayer in edge-plane activated graphite anodes. Nat Commun. 2017; 8: 812.
|
[18] |
Ma J, Sung J, Lee Y, et al. Strategic pore architecture for accommodating volume change from high Si content in lithiumion battery anodes. Adv Energy Mater. 2020; 10 (6): 1903400.
|
[19] |
Zhang L, Deng J, Liu L, et al. Hierarchically designed SiOx/SiOy bilayer nanomembranes as stable anodes for lithium ion batteries. Adv Mater. 2014; 26 (26): 4527- 4532.
|
[20] |
Han M, Lin Z, Ji X, Mu Y, Li J, Yu J. Growth of flexible and porous surface layers of vertical graphene sheets for accommodating huge volume change of silicon in lithium ion battery anodes. Mater Today Energy. 2020; 17: 100445.
|
[21] |
Mu Y, Han M, Li J, Liang J, Yu J. Growing vertical graphene sheets on natural graphite for fast charging lithium-ion batteries. Carbon. 2021; 173: 477- 484.
|
[22] |
Han M, Chen J, Cai Y, Wei L, Zhao T. Magnetic-atom strategy enables unilamellar MoS2-C interoverlapped superstructure with ultrahigh capacity and ultrafast ion transfer capability in Li/Na/K-ion batteries. Chem Eng J. 2023; 454: 140137.
|
[23] |
Ferrari AC, Meyer JC, Scardaci V, et al. Raman spectrum of graphene and graphene layers. Phys Rev Lett. 2006; 97 (18): 187401.
|
[24] |
Reina A, Jia X, Ho J, et al. Large area, few-layer graphene films on arbitrary substrates by chemical vapor deposition. Nano Lett. 2009; 9 (1): 30- 35.
|
[25] |
Zhong J, Wang T, Wang L, et al. A silicon monoxide lithiumion battery anode with ultrahigh areal capacity. Nano-Micro Lett. 2022; 14 (1): 50.
|
[26] |
Zhou S, Fang C, Song X, Liu G. The influence of compact and ordered carbon coating on solid-state behaviors of silicon during electrochemical processes. Carbon Energy. 2020; 2 (1): 143- 150.
|
[27] |
Nara H, Yokoshima T, Momma T, Osaka T. Highly durable SiOC composite anode prepared by electrodeposition for lithium secondary batteries. Energy Environ Sci. 2012; 5 (4): 6500- 6505.
|
[28] |
Zhou J, Lu Y, Yang L, et al. Sustainable silicon anodes facilitated via a double-layer interface engineering: inner SiOx combined with outer nitrogen and boron co-doped carbon. Carbon Energy. 2022; 4 (3): 399- 410.
|
[29] |
Li Z, Yuan F, Han M, Yu J. Atomic-scale laminated structure of Odoped WS2 and carbon layers with highly enhanced ion transfer for fast-charging lithium-ion batteries. Small. 2022; 18 (27): 2202495.
|
[30] |
Liu R, Wu D, Feng X, Müllen K. Nitrogen-doped ordered mesoporous graphitic arrays with high electrocatalytic activity for oxygen reduction. Angew Chem Int Ed. 2010; 49 (14): 2565- 2569.
|
[31] |
Guo L, Xu L, Ren Y, et al. Research on a two-step pyrolysisoxidation process of carbon fiber-reinforced epoxy resin-based composites and analysis of product properties. J Environ Chem Eng. 2022; 10 (3): 107510.
|
[32] |
Zeng J, Ji X, Ma Y, et al. 3D graphene fibers grown by thermal chemical vapor deposition. Adv Mater. 2018; 30 (12): 1705380.
|
[33] |
Han M, Li J, Yu J. Microspheres integrating Ti2O3 nanocrystals, carbon matrix, and vertical graphene enable fast ion transport for fast-charging lithium-ion batteries. J Energy Storage. 2021; 43: 103179.
|
[34] |
Han M, Lin Z, Yu J. Ultrathin MoS2 nanosheets homogenously embedded in a N,O-codoped carbon matrix for high-performance lithium and sodium storage. J Mater Chem A. 2019; 7 (9): 4804- 4812.
|
[35] |
Kim H, Choi W, Yoon J, et al. Exploring anomalous charge storage in anode materials for next-generation Li rechargeable batteries. Chem Rev. 2020; 120 (14): 6934- 6976.
|
[36] |
Wu J, Cao Y, Zhao H, Mao J, Guo Z. The critical role of carbon in marrying silicon and graphite anodes for high-energy lithium-ion batteries. Carbon Energy. 2019; 1 (1): 57- 76.
|
[37] |
Xie F, Zhao S, Bo X, et al. A robust solvothermal-driven solid-to-solid transition route from micron SnC2O4 to tartaric acid-capped nano-SnO2 anchored on graphene for superior lithium and sodium storage. J Mater Chem A. 2023; 11 (1): 53- 67.
|
[38] |
Wang F, Chen G, Zhang N, Liu X, Ma R. Engineering of carbon and other protective coating layers for stabilizing silicon anode materials. Carbon Energy. 2019; 1 (2): 219- 245.
|
[39] |
Mu Y, Han M, Wu B, et al. Nitrogen, oxygen-codoped vertical graphene arrays coated 3D flexible carbon nanofibers with high silicon content as an ultrastable anode for superior lithium storage. Adv Sci. 2022; 9 (6): 2104685.
|
[40] |
Zhao S, Wang Z, He Y, et al. A robust route to Co2(OH)2CO3 ultrathin nanosheets with superior lithium storage capability templated by aspartic acid-functionalized graphene oxide. Adv Energy Mater. 2019; 9 (26): 1901093.
|
[41] |
Han M, Yu J. Pressure-induced vapor synthesis of carbonencapsulated SiOx/C composite spheres with optimized composition for long-life, high-rate, and high-areal-capacity lithiumion battery anodes. Energy Technol. 2019; 7 (6): 1900084.
|
[42] |
Zhao S, Sewell CD, Liu R, et al. SnO2 as advanced anode of alkali-ion batteries: inhibiting Sn coarsening by crafting robust physical barriers, void boundaries, and heterophase interfaces for superior electrochemical reaction reversibility. Adv Energy Mater. 2020; 10 (6): 1902657.
|
[43] |
Zhao S, He Y, Wang Z, et al. Advancing performance and unfolding mechanism of lithium and sodium storage in SnO2 via precision synthesis of monodisperse PEG-ligated nanoparticles. Adv Energy Mater. 2022; 12 (26): 2201015.
|
[44] |
El-Khodary SA, Subburam G, Zou BB, et al. Mesoporous silica anchored on reduced graphene oxide nanocomposite as anode for superior lithium-ion capacitor. Rare Met. 2022; 41 (2): 368- 377.
|
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