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2025, 08, v.53 2166-2183
废旧锂电池电极材料超快精准修复
基金项目(Foundation): 国家自然科学基金项目(52272215)
邮箱(Email): wanjy@sjtu.edu.cn;
DOI: 10.14062/j.issn.0454-5648.20240825
投稿时间: 2024-12-25
投稿日期(年): 2024
修回时间: 2025-06-30
终审时间: 2025-02-07
终审日期(年): 2025
审稿周期(年): 1
发布时间: 2025-03-26
出版时间: 2025-03-26
网络发布时间: 2025-03-26
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摘要:

在全球能源转型和碳中和目标的推动下,绿色储能技术的高效开发与资源循环利用已成为应对能源与环境挑战的重要途径。作为核心储能器件,电池及其技术的快速发展与广泛应用伴生了对其资源化利用的迫切需求,因此电池的高效回收与修复对资源节约、环境保护及新能源产业的可持续发展具有举足轻重的意义。超快合成技术凭借其极高的合成效率和能量利用率,能够在极短时间内完成材料修复、缺陷消除与性能优化,已成为电池材料修复领域的重要创新方法。相较于传统方法,超快合成技术显著提升了修复效率和经济性,同时有效避免了长期热处理可能导致的材料退化和高能耗问题。本文综述了电池修复技术与超快合成技术的研究现状及其技术进展,深入探讨了二者的结合潜力,突出超快合成技术在未来能源与环境领域的广阔应用前景。通过与人工智能的深度融合,超快合成技术有望实现从实验室到工业化的高效转化,为新能源材料的循环利用与产业升级提供强大支撑。

Abstract:

The pursuit of carbon neutrality has become one of global priorities, requiring the widespread adoption of electrification technologies across various sectors, including transportation, industrial processes, and residential applications. A critical factor in this transition is the integration of distributed energy systems that harness renewable energy sources, such as solar, wind, and hydroelectric power. These intermittent energy sources necessitate advanced energy storage systems to ensure a continuous and efficient energy supply. Among the various energy storage technologies under investigation, lithium-ion batteries(LIBs) have emerged as the most widely applied due to their high energy density, long cycle life, and scalability. However, the rapid growth in LIB ownership and demand has led to concerns about resource scarcity and the environmental pollution caused by spent batteries. Traditional recycling methods, such as pyrometallurgy and hydrometallurgy, although mature and widely used, suffer from several disadvantages, including high energy consumption, substantial pollution, lengthy processing times, and high costs. These limitations make them unsuitable for meeting the modern industry's demands for efficiency, economic viability, and environmental sustainability. Therefore, there is an urgent need to develop rapid, efficient, and environmentally friendly direct repair methods for battery materials. This review begins by examining the failure mechanisms of electrode materials and extends to the current advancements in electrode material repair methods. The failure mechanisms can be broadly categorized into active material degradation and interface reaction failures. Cathode materials, due to their higher recovery value, have attracted significant attention and research. The main recovery methods for cathode materials include solid-state sintering regeneration(SSR), hydrothermal regeneration(HTR), electrochemical regeneration(ECR), eutectic salt regeneration(ESR), and chemical lithiation regeneration(CLR). Among these, solid-state sintering and hydrothermal regeneration are the most technologically mature, with the highest industrial potential. However, both methods still require prolonged high-energy input, raising concerns regarding their economic and environmental sustainability. On the other hand, anode material recycling, driven more by the need to extract valuable metals than by economic incentives, primarily focuses on upgrading waste materials. Compared to traditional synthesis techniques, which suffer from high energy consumption and inefficiency, ultra-fast synthesis technology can instantaneously release large amounts of energy to quickly initiate chemical reactions. After the reaction is completed, energy input can be rapidly withdrawn to facilitate efficient cooling. This technology has attracted increasing attention in the materials synthesis field due to its efficiency and low energy consumption. The review then summarizes representative methods, including Joule heating, laser-assisted techniques, and microwave-assisted techniques, discussing their advantages, disadvantages, and applicability. It also analyzes the thermodynamic and kinetic differences between ultra-fast and traditional synthesis methods, emphasizing how ultra-fast synthesis breaks through conventional limitations by combining ultra-high temperatures with instantaneous reaction times. This approach provides new pathways for the novel synthesis of advanced functional materials, such as energy materials, high-performance catalysts and high-strength metal materials. Ultra-fast synthesis, with its low energy consumption and high efficiency, is rapidly becoming a critical breakthrough in the field of electrode material repair and regeneration. This review comprehensively outlines recent advancements in ultra-fast synthesis for both cathode and anode materials. Ultra-fast synthesis has successfully facilitated the regeneration of electrode materials such as LiCoO2(LCO), LiFePO4(LFP), LiNi_xCo_yMn1–x–yO2(NCM), graphite anodes, and silicon-based anodes. Despite the promising progress, challenges remain in scaling up ultra-fast synthesis for industrial applications. Precise control over energy input and product quality uniformity is crucial for industrial implementation. Moreover, the adaptation of ultra-fast synthesis to various material systems and a deeper understanding of the reaction mechanisms are ongoing research topics. The rapid development of artificial intelligence(AI) offers new opportunities for integrating AI into ultra-fast synthesis, enabling better process optimization and outcome prediction. In conclusion, ultra-fast synthesis represents a revolutionary approach in battery material repair and regeneration, offering a promising alternative to traditional recycling methods and supporting the transition towards a more sustainable energy future. Summary and prospects This review comprehensively summarizes the development background, application progress, and challenges faced in the recycling and repair of battery materials, with a focus on ultra-fast synthesis technology. Compared to traditional methods, ultra-fast synthesis has made significant advancements in the field of battery materials due to its speed, efficiency, and environmental sustainability. It has increasingly become the focal point of research. Meanwhile, the rapid development of artificial intelligence technology has provided strong support for deepening the understanding of the mechanisms behind ultra-fast synthesis, guiding its research direction, and improving its adaptability for industrial applications. Looking ahead, with the continued advancement of green low-carbon technologies and the growing demand for efficient recycling techniques, ultra-fast synthesis is expected to play a crucial role in promoting the recycling and utilization of battery materials, driving industrial upgrades, and providing key momentum for the sustainable development of the new energy industry through continuous innovation and optimization.

参考文献

[1] SCHREYER F, LUDERER G, RODRIGUES R, et al. Common but differentiated leadership:Strategies and challenges for carbon neutrality by 2050 across industrialized economies[J]. Environ Res Lett, 2020,15(11):114016.

[2] JIANG J J, YE B, LIU J G. Research on the peak of CO2 emissions in the developing world:Current progress and future prospect[J]. Appl Energy, 2019, 235:186–203.

[3] WANG R, WANG Q Z, YAO S L. Evaluation and difference analysis of regional energy efficiency in China under the carbon neutrality targets:Insights from DEA and Theil models[J]. J Environ Manage, 2021, 293:112958.

[4] WILLIAMS J H, DEBENEDICTIS A, GHANADAN R, et al. The technology path to deep greenhouse gas emissions cuts by 2050:The pivotal role of electricity[J]. Science, 2012, 335(6064):53–59.

[5] HOLECHEK J L, GELI H M E, SAWALHAH M N, et al. A global assessment:Can renewable energy replace fossil fuels by 2050?[J].Sustainability, 2022, 14(8):4792.

[6] ALANNE K, SAARI A. Distributed energy generation and sustainable development[J]. Renew Sustain Energy Rev, 2006, 10(6):539–558.

[7] CHOUDHURY S. Review of energy storage system technologies integration to microgrid:Types, control strategies, issues, and future prospects[J]. J Energy Storage, 2022, 48:103966.

[8] DUNN B, KAMATH H, TARASCON J M. Electrical energy storage for the grid:A battery of choices[J]. Science, 2011, 334(6058):928–935.

[9] ZHU Z X, JIANG T L, ALI M, et al. Rechargeable batteries for grid scale energy storage[J]. Chem Rev, 2022, 122(22):16610–16751.

[10] WU F X, MAIER J, YU Y. Guidelines and trends for next-generation rechargeable lithium and lithium-ion batteries[J]. Chem Soc Rev, 2020,49(5):1569–1614.

[11] DUAN J, TANG X, DAI H F, et al. Building safe lithium-ion batteries for electric vehicles:A review[J]. Electrochem Energy Rev, 2020, 3(1):1–42.

[12] QU X, ZHANG B L, ZHAO J J, et al. Salt-thermal methods for recycling and regenerating spent lithium-ion batteries:A review[J].Green Chem, 2023, 25(8):2992–3015.

[13] MA X T, CHEN M Y, ZHENG Z F, et al. Recycled cathode materials enabled superior performance for lithium-ion batteries[J]. Joule, 2021,5(11):2955–2970.

[14] HARPER G, SOMMERVILLE R, KENDRICK E, et al. Recycling lithium-ion batteries from electric vehicles[J]. Nature, 2019, 575(7781):75–86.

[15] ZHOU J H, ZHOU X, YU W H, et al. Towards greener recycling:Direct repair of cathode materials in spent lithium-ion batteries[J].Electrochem Energy Rev, 2024, 7(1):13.

[16] WANG J X, MA J, ZHUANG Z F, et al. Toward direct regeneration of spent lithium-ion batteries:A next-generation recycling method[J].Chem Rev, 2024, 124(5):2839–2887.

[17] FAN E S, LI L, WANG Z P, et al. Sustainable recycling technology for Li-ion batteries and beyond:Challenges and future prospects[J]. Chem Rev, 2020, 120(14):7020–7063.

[18] JENA K K, ALFANTAZI A, MAYYAS A T. Comprehensive review on concept and recycling evolution of lithium-ion batteries(LIBs)[J].Energy Fuels, 2021, 35(22):18257–18284.

[19] XU P P, TAN D H S, JIAO B L, et al. A materials perspective on direct recycling of lithium-ion batteries:Principles, challenges and opportunities[J]. Adv Funct Materials, 2023, 33(14):2213168.

[20] YU L, BAI Y C, BELHAROUAK I. Recycling of lithium-ion batteries via electrochemical recovery:A mini-review[J]. Batteries,2024, 10(10):337.

[21] WU X X, JI G J, WANG J X, et al. Toward sustainable all solid-state Li-metal batteries:Perspectives on battery technology and recycling processes[J]. Adv Mater, 2023, 35(51):e2301540.

[22] HUANG G H, LENG Y, YIN Y C, et al. Perspectives on ultrafast,precise synthesis and regeneration of advanced battery materials[J].Energy Fuels, 2024, 38(15):13722–13736.

[23] WANG C W, PING W W, BAI Q, et al. A general method to synthesize and sinter bulk ceramics in seconds[J]. Science, 2020, 368(6490):521–526.

[24] SONG J Y, KIM C, KIM M, et al. Generation of high-density nanoparticles in the carbothermal shock method[J]. Sci Adv, 2021,7(48):eabk2984.

[25] ZHU W, ZHANG J C, LUO J W, et al. Ultrafast non-equilibrium synthesis of cathode materials for Li-ion batteries[J]. Adv Mater, 2023,35(2):e2208974.

[26] HU X S, ZUO D X, CHENG S R, et al. Ultrafast materials synthesis and manufacturing techniques for emerging energy and environmental applications[J]. Chem Soc Rev, 2023, 52(3):1103–1128.

[27] VETTER J, NOVáK P, WAGNER M R, et al. Ageing mechanisms in lithium-ion batteries[J]. J Power Sources, 2005, 147(1–2):269–281.

[28] HAN X B, LU L G, ZHENG Y J, et al. A review on the key issues of the lithium ion battery degradation among the whole life cycle[J].eTransportation, 2019, 1:100005.

[29] EDGE J S, O’KANE S, PROSSER R, et al. Lithium ion battery degradation:What you need to know[J]. Phys Chem Chem Phys, 2021,23(14):8200–8221.

[30] YE H, ZHANG Y, YIN Y X, et al. An outlook on low-volume-change lithium metal anodes for long-life batteries[J]. ACS Cent Sci, 2020,6(5):661–671.

[31] JIANG M, DANILOV D L, EICHEL R A, et al. A review of degradation mechanisms and recent achievements for Ni-rich cathode-based Li-ion batteries[J]. Adv Energy Mater, 2021, 11(48):2103005.

[32] BIRKL C R, ROBERTS M R, MCTURK E, et al. Degradation diagnostics for lithium ion cells[J]. J Power Sources, 2017, 341:373–386.

[33] KIM J H, WOO S C, PARK M S, et al. Capacity fading mechanism of LiFePO4-based lithium secondary batteries for stationary energy storage[J]. J Power Sources, 2013, 229:190–197.

[34] NIE H H, XU L, SONG D W, et al. LiCoO2:Recycling from spent batteries and regeneration with solid state synthesis[J]. Green Chem,2015, 17(2):1276–1280.

[35] SHI Y, CHEN G, CHEN Z. Effective regeneration of LiCoO2 from spent lithium-ion batteries:A direct approach towards highperformance active particles[J]. Green Chem, 2018, 20(4):851–862.

[36] LIANG Q, YUE H F, WANG S F, et al. Recycling and crystal regeneration of commercial used LiFePO4 cathode materials[J].Electrochim Acta, 2020, 330:135323.

[37] JI G J, WANG J X, LIANG Z, et al. Direct regeneration of degraded lithium-ion battery cathodes with a multifunctional organic lithium salt[J]. Nat Commun, 2023, 14(1):584.

[38] YANG X, ZHANG Y J, XIAO J, et al. Restoring surface defect crystal of Li-lacking LiNi0.6Co0.2Mn0.2O2 material particles toward more efficient recycling of lithium-ion batteries[J]. ACS Sustainable Chem Eng, 2021, 9(50):16997–17006.

[39] FAN M, CHANG X, GUO Y J, et al. Increased residual lithium compounds guided design for green recycling of spent lithium-ion cathodes[J]. Energy Environ Sci, 2021, 14(3):1461–1468.

[40] HUO H Y, LUO J, THANGADURAI V, et al. Li2CO3:A critical issue for developing solid garnet batteries[J]. ACS Energy Lett, 2020, 5(1):252–262.

[41] CHI Z X, LI J, WANG L H, et al. Direct regeneration method of spent LiNi1/3Co1/3Mn1/3O2 cathode materials via surface lithium residues[J].Green Chem, 2021, 23(22):9099–9108.

[42] WU J W, LIN J, FAN E S, et al. Sustainable regeneration of high-performance Li1–xNaxCo O2 from cathode materials in spent lithium-ion batteries[J]. ACS Appl Energy Mater, 2021, 4(3):2607–2615.

[43] ZHOU S Y, FEI Z T, MENG Q, et al. Collaborative regeneration of structural evolution for high-performance of LiCoO2 materials from spent lithium-ion batteries[J]. ACS Appl Energy Mater, 2021, 4(11):12677–12687.

[44] XU P P, YANG Z Z, YU X L, et al. Design and optimization of the direct recycling of spent Li-ion battery cathode materials[J]. ACS Sustainable Chem Eng, 2021, 9(12):4543–4553.

[45] XU P P, DAI Q, GAO H P, et al. Efficient direct recycling of lithium-ion battery cathodes by targeted healing[J]. Joule, 2020, 4(12):2609–2626.

[46] JING Q K, ZHANG J L, LIU Y B, et al. Direct regeneration of spent LiFePO4 cathode material by a green and efficient one-step hydrothermal method[J]. ACS Sustainable Chem Eng, 2020, 8(48):17622–17628.

[47] ZHANG L G, XU Z M, HE Z. Electrochemical relithiation for direct regeneration of LiCoO2 materials from spent lithium-ion battery electrodes[J]. ACS Sustainable Chem Eng, 2020, 8(31):11596–11605.

[48] WANG T, YU X S, FAN M, et al. Direct regeneration of spent LiFePO4via a graphite prelithiation strategy[J]. Chem Commun, 2019, 56(2):245–248.

[49] YANG H M, DENG B W, JING X Y, et al. Direct recovery of degraded LiCoO2 cathode material from spent lithium-ion batteries:Efficient impurity removal toward practical applications[J]. Waste Manag, 2021,129:85–94.

[50] YANG J, WANG W Y, YANG H M, et al. One-pot compositional and structural regeneration of degraded LiCoO2 for directly reusing it as a high-performance lithium-ion battery cathode[J]. Green Chem, 2020,22(19):6489–6496.

[51] QIN Z Y, WEN Z X, XU Y F, et al. A ternary molten salt approach for direct regeneration of LiNi0.5Co0.2Mn0.3O2 cathode[J]. Small, 2022,18(43):e2106719.

[52] MA J, WANG J X, JIA K, et al. Adaptable eutectic salt for the direct recycling of highly degraded layer cathodes[J]. J Am Chem Soc, 2022,144(44):20306–20314.

[53] JI H C, WANG J X, QU H T, et al. Closed-loop direct upcycling of spent Ni-rich layered cathodes into high-voltage cathode materials[J].Adv Mater, 2024, 36(36):e2407029.

[54] GANTER M J, LANDI B J, BABBITT C W, et al. Cathode refunctionalization as a lithium ion battery recycling alternative[J]. J Power Sources, 2014, 256:274–280.

[55] YANG D, FANG Z, JI Y S, et al. A room-temperature lithiumrestocking strategy for the direct reuse of degraded LiFePO4electrodes[J]. Angew Chem Int Ed, 2024, 63(49):e202409929.

[56] WANG J X, JI H C, LI J F, et al. Direct recycling of spent cathode material at ambient conditions via spontaneous lithiation[J]. Nat Sustain,2024, 7:1283–1293.

[57] XU M L, WU C, YE L, et al. Direct regeneration of spent LiCoO2 black mass based on fluorenone-mediated lithium supplementation and energy-saving structural restoration[J]. Adv Energy Mater, 2024, 14(26):2401197.

[58] SHI R Y, ZHENG N Z, JI H C, et al. Homogeneous repair of highly degraded Ni-rich cathode material with spent lithium anode[J]. Adv Mater, 2024, 36(13):e2311553.

[59] WANG T, LUO H M, BAI Y C, et al. Direct recycling of spent NCM cathodes through ionothermal lithiation[J]. Adv Energy Mater, 2020,10(30):2001204.

[60] SU X, WU Q L, LI J C, et al. Silicon-based nanomaterials for lithium-ion batteries:A review[J]. Adv Energy Mater, 2014, 4(1):1300882.

[61] XIAO X C, ZHOU W D, KIM Y, et al. Regulated breathing effect of silicon negative electrode for dramatically enhanced performance of Li-ion battery[J]. Adv Funct Mater, 2015, 25(9):1426–1433.

[62] LIU W, LI H J, JIN J L, et al. Synergy of epoxy chemical tethers and defect-free graphene in enabling stable lithium cycling of silicon nanoparticles[J]. Angew Chem Int Ed, 2019, 58(46):16590–16600.

[63] QIAO Y, ZHAO H P, SHEN Y L, et al. Recycling of graphite anode from spent lithium-ion batteries:Advances and perspectives[J]. EcoMat,2023, 5(4):e12321.

[64] AGUBRA V, FERGUS J. Lithium ion battery anode aging mechanisms[J]. Materials, 2013, 6(4):1310–1325.

[65] LI C, LIANG Z Y, LI Z Z, et al. Self-assembly monolayer inspired stable artificial solid electrolyte interphase design for next-generation lithium metal batteries[J]. Nano Lett, 2023, 23(9):4014–4022.

[66] YANG L, MU Y B, ZOU L F, et al. In situ formation of stable dual-layer solid electrolyte interphase for enhanced stability and cycle life in all-solid-state lithium metal batteries[J]. Nano Lett, 2024, 24(42):13162–13171.

[67] PALACíN M R, DE GUIBERT A. Why do batteries fail?[J]. Science,2016, 351(6273):1253292.

[68] KOLESNIKOV A, KOLEK M, DOHMANN J F, et al. Galvanic corrosion of lithium-powder-based electrodes[J]. Adv Energy Mater,2020, 10(15):2000017.

[69] GUO Y, LI F, ZHU H C, et al. Leaching lithium from the anode electrode materials of spent lithium-ion batteries by hydrochloric acid(HCl)[J]. Waste Manag, 2016, 51:227–233.

[70] SABISCH J E C, ANAPOLSKY A, LIU G, et al. Evaluation of using pre-lithiated graphite from recycled Li-ion batteries for new LiB anodes[J]. Resour Conserv Recycl, 2018, 129:129–134.

[71] DONG Q, YAO Y G, CHENG S C, et al. Programmable heating and quenching for efficient thermochemical synthesis[J]. Nature, 2022, 605:470–476.

[72] YAO Y G, HUANG Z N, XIE P F, et al. Carbothermal shock synthesis of high-entropy-alloy nanoparticles[J]. Science, 2018, 359(6383):1489–1494.

[73] ZUO D X, YANG L, ZOU Z Y, et al. Ultrafast synthesis of NASICON solid electrolytes for sodium-metal batteries[J]. Adv Energy Mater,2023, 13(37):2301540.

[74] QIAO Y, CHEN C J, LIU Y, et al. Continuous fly-through high-temperature synthesis of nanocatalysts[J]. Nano Lett, 2021, 21(11):4517–4523.

[75] MALINAUSKAS M,?UKAUSKAS A, HASEGAWA S, et al. Ultrafast laser processing of materials:From science to industry[J]. Light Sci Appl, 2016, 5(8):e16133.

[76] ZENG H B, DU X W, SINGH S C, et al. Nanomaterials via laser ablation/irradiation in liquid:A review[J]. Adv Funct Mater, 2012,22(7):1333–1353.

[77] PENG Y D, CAO J Y, SHA Y, et al. Laser solid-phase synthesis of single-atom catalysts[J]. Light Sci Appl, 2021, 10(1):168.

[78] CHEN W Y, SALVATIERRA R V, REN M Q, et al. Laser-induced silicon oxide for anode-free lithium metal batteries[J]. Adv Mater, 2020,32(33):e2002850.

[79] KUMAR A, KUANG Y, LIANG Z, et al. Microwave chemistry, recent advancements, and eco-friendly microwave-assisted synthesis of nanoarchitectures and their applications:A review[J]. Mater Today Nano, 2020, 11:100076.

[80] QIAO H Y, SARAY M T, WANG X Z, et al. Scalable synthesis of high entropy alloy nanoparticles by microwave heating[J]. ACS Nano, 2021,15(9):14928–14937.

[81] CHEN S J, NIE L, HU X C, et al. Ultrafast sintering for ceramic-based all-solid-state lithium-metal batteries[J]. Adv Mater, 2022, 34(33):2200430.

[82] CHEN Q, MA T T, WANG F F, et al. Rapid microwave-annealing process of hybrid perovskites to eliminate miscellaneous phase for high performance photovoltaics[J]. Adv Sci, 2020, 7(12):2000480.

[83] MEIERHOFER F, FRITSCHING U. Synthesis of metal oxide nanoparticles in flame sprays:Review on process technology, modeling,and diagnostics[J]. Energy Fuels, 2021, 35(7):5495–5537.

[84] ZHANG J N, MULDOON V L, DENG S L. Accelerated synthesis of Li(Ni0.8Co0.1Mn0.1)O2 cathode materials using flame-assisted spray pyrolysis and additives[J]. J Power Sources, 2022, 528:231244.

[85] SELLMANN J, WOLLNY P, BAIK S J, et al. LES of nanoparticle synthesis in the spraysyn burner:A comparison against experiments[J].Powder Technol, 2022, 404:117466.

[86] CHEN G J, CHEN Z T, WEN D, et al. Transdermal cold atmospheric plasma-mediated immune checkpoint blockade therapy[J]. Proc Natl Acad Sci USA, 2020, 117(7):3687–3692.

[87] SáNCHEZ S, HUA X, GüNZLER A, et al. Flash infrared pulse time control of perovskite crystal nucleation and growth from solution[J].Cryst Growth Des, 2020, 20(2):670–679.

[88] NIETHER C, FAURE S, BORDET A, et al. Improved water electrolysis using magnetic heating of Fe C–Ni core–shell nanoparticles[J]. Nat Energy, 2018, 3:476–483.

[89] KIM D H, CHA J H, SHIM G, et al. Flash-thermochemical engineering of phase and surface activity on metal oxides[J]. Chem, 2022, 8(4):1014–1033.

[90] CHUNG W H, PARK S H, JOO S J, et al. UV-assisted flash light welding process to fabricate silver nanowire/graphene on a PET substrate for transparent electrodes[J]. Nano Res, 2018, 11(4):2190–2203.

[91] CHOI C H', SHIN J, EDDY L, et al. Flash-within-flash synthesis of gram-scale solid-state materials[J]. Nat Chem, 2024, 16(11):1831–1837.

[92] DENG B, WANG Z, CHEN W Y, et al. Phase controlled synthesis of transition metal carbide nanocrystals by ultrafast flash Joule heating[J].Nat Commun, 2022, 13(1):262.

[93] FENG Y T, YANG L, YAN Z H, et al. Discovery of high entropy garnet solid-state electrolytes via ultrafast synthesis[J]. Energy Storage Mater,2023, 63:103053.

[94] ZHENG X L, GAO X, VILáR A, et al. Hydrogen-substituted graphdiyne-assisted ultrafast sparking synthesis of metastable nanomaterials[J]. Nat Nanotechnol, 2023, 18(2):153–159.

[95] SONG Z J, LIU Y H, GUO Z X, et al. Ultrafast synthesis of large-sized and conductive Na3V2(PO4)2F3 simultaneously approaches high tap density, rate and cycling capability[J]. Adv Funct Mater, 2024, 34(18):2313998.

[96] BAI J M, SUN W H, ZHAO J Q, et al. Kinetic pathways templated by low-temperature intermediates during solid-state synthesis of layered oxides[J]. Chem Mater, 2020, 32(23):9906–9913.

[97] YIN Y C, LI C, HU X S, et al. Rapid, direct regeneration of spent LiCoO2 cathodes for Li-ion batteries[J]. ACS Energy Lett, 2023, 8(7):3005–3012.

[98] HU X S, YIN Y C, LI C, et al. Microwave-accelerated direct regeneration of LiCoO2 cathodes for Li-ion batteries[J]. Sci China Chem, 2024, 67(7):2181–2189.

[99] ZHENG S H, WANG X T, GU Z Y, et al. Direct and rapid regeneration of spent LiFePO4 cathodes via a high-temperature shock strategy[J]. J Power Sources, 2023, 587:233697.

[100] CHEN W Y, CHENG Y, CHEN J H, et al. Nondestructive flash cathode recycling[J]. Nat Commun, 2024, 15(1):6250.

[101] GUO Y Q, YAO Y G, GUO C, et al. Atomistic observation and transient reordering of antisite Li/Fe defects toward sustainable LiFePO4[J]. Energy Environ Sci, 2024, 17(20):7749–7761.

[102] LI T Y, TAO L, XU L, et al. Direct and rapid high-temperature upcycling of degraded graphite[J]. Adv Funct Mater, 2023, 33(43):2302951.

[103] JI Y S, ZHANG H, YANG D, et al. Regenerated graphite electrodes with reconstructed solid electrolyte interface and enclosed active lithium toward>100%initial coulombic efficiency[J]. Adv Mater,2024, 36(19):e2312548.

[104] SHAN M H, XU S C, CAO Y T, et al. Rapid regeneration of graphite anodes via self-induced microwave plasma[J]. Adv Funct Mater,2024, 34(48):2411834.

[105] CHEN W Y, SALVATIERRA R V, LI J T, et al. Flash recycling of graphite anodes[J]. Adv Mater, 2023, 35(8):e2207303.

[106] CHEN Y N, LI Y J, WANG Y B, et al. Rapid, in situ synthesis of high capacity battery anodes through high temperature radiationbased thermal shock[J]. Nano Lett, 2016, 16(9):5553–5558.

[107] EDDY L, LUONG D X, BECKHAM J L, et al. Automated laboratory kilogram-scale graphene production from coal[J]. Small Methods, 2024, 8(3):e2301144.

[108] YIN Y C, LI Y, HU X S, et al. Ultrafast, in situ transformation of a protective layer on lithium-rich manganese-based layered oxides for high-performance Li-ion batteries[J]. Green Chem, 2024, 26(17):9346–9356.

[109] SHEN Z H, LIU H X, SHEN Y, et al. Machine learning in energy storage materials[J]. Interdiscip Mater, 2022, 1(2):175–195.

[110] XU L, TANG S, CHENG Y, et al. Interfaces in solid-state lithium batteries[J]. Joule, 2018, 2(10):1991–2015.

[111] LI J, ZHOU M S, WU H H, et al. Machine learning-assisted property prediction of solid-state electrolyte[J]. Adv Energy Mater, 2024,14(20):2304480.

[112] GUO N L, CHEN S H, TAO J, et al. Semi-supervised learning for explainable few-shot battery lifetime prediction[J]. Joule, 2024, 8(6):1820–1836.

[113] ZHAO S, CHEN S H, ZHOU J Y, et al. Potential to transform words to Watts with large language models in battery research[J]. Cell Rep Phys Sci, 2024, 5(3):101844.

[114] ZHANG Q, SOHAM D, LIANG Z, et al. Advances in wearable energy storage and harvesting systems[J]. Med-X, 2025, 3(1):3.

基本信息:

DOI:10.14062/j.issn.0454-5648.20240825

中图分类号:X705;TM912

引用信息:

[1]刘航,李博约,胡雪山,等.废旧锂电池电极材料超快精准修复[J].硅酸盐学报,2025,53(08):2166-2183.DOI:10.14062/j.issn.0454-5648.20240825.

基金信息:

国家自然科学基金项目(52272215)

投稿时间:

2024-12-25

投稿日期(年):

2024

修回时间:

2025-06-30

终审时间:

2025-02-07

终审日期(年):

2025

审稿周期(年):

1

发布时间:

2025-03-26

出版时间:

2025-03-26

网络发布时间:

2025-03-26

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引用

GB/T 7714-2015 格式引文
MLA格式引文
APA格式引文