[1] T. Li, Y.L. Bai, Y. Wang, H. Xu, H. Jin, Advances in transition-metal (Zn, Mn, Cu)-based MOFs and their derivatives for anode of lithium-ion batteries, Coord. Chem. Rev. 410 (2020) 213221. [2] Y.C. Liang, J.H. Lu, Y.L. Zhao, R.T. Chen, X.T. Guo, M.T. Wang, S.J. Wang, Q. Huang, W.J. Zhao, C.C. Xu, T. Wei, PMoO12@NH2-MIL-53(Fe)-derived iron molybdate/iron oxide with nitrogen-doped carbon nanocomposites as anodes for lithium-ion batteries, Ionics 30 (2) (2024) 709-717. [3] Q. Wang, C.K. Yang, J.J. Yang, K. Wu, C.J. Hu, J. Lu, W. Liu, X.M. Sun, J.Y. Qiu, H.H. Zhou, Dendrite-free lithium deposition via a superfilling mechanism for high-performance Li-metal batteries, Adv. Mater. 31 (41) (2019) 1903248. [4] Q.M. Xiong, X.Z. Li, M.L. Zhou, R.T. Chen, C. Sun, Y.Y. Zhou, S.J. Wang, X.Y. Qiu, M.J. Song, T. Wei, One-pot hydrothermal synthesis of flower-shaped Zif-67@NiCo-LDH heterostructure as anode materials for lithium-ion batteries, Ionics 29 (5) (2023) 1741-1749. [5] Q. Wang, C.K. Yang, J.J. Yang, K. Wu, L.Y. Qi, H. Tang, Z.Y. Zhang, W. Liu, H.H. Zhou, Stable Li metal anode with protected interface for high-performance Li metal batteries, Energy Storage Mater. 15 (2018) 249-256. [6] T. Wei, Y.L. Zhao, R.T. Chen, S.J. Wang, Y.Y. Zhou, C. Sun, X.Y. Qiu, S.D. Xu, S. Maltsev, Z.D. Yu, Metal organic framework (MOF)-derived iron oxide@nitrogen-doped carbon nanocomposites as anode materials for lithium-ion batteries, Ionics 28 (9) (2022) 4185-4194. [7] Q. Wang, J. Wan, X. Cao, R. Wen, Y.G. Guo, W. Liu, H.H. Zhou, Organophosphorus hybrid solid electrolyte interphase layer based on LixPO4 enables uniform lithium deposition for high-performance lithium metal batteries, Adv. Funct. Mater. 32 (2) (2022) 2107923. [8] G.X. Huang, P.M. Guo, J. Wang, S.R. Chen, J.Y. Liang, R.M. Tao, S. Tang, X.F. Zhang, S.J. Cheng, Y.C. Cao, S. Dai, Lithiophilic V2O5 nanobelt arrays decorated 3D framework hosts for highly stable composite lithium metal anodes, Chem. Eng. J. 384 (2020) 123313. [9] T. Wei, J.H. Lu, P. Zhang, G. Yang, C. Sun, Y.Y. Zhou, Q.C. Zhuang, Y.F. Tang, Metal-organic framework-derived Co3O4 modified nickel foam-based dendrite-free anode for robust lithium metal batteries, Chin. Chemical Lett. 34 (8) (2023) 107947. [10] X. Han, L.H. Gu, Z.F. Sun, M.F. Chen, Y.G. Zhang, L.S. Luo, M. Xu, S.Y. Chen, H.D. Liu, J.Y. Wan, Y.B. He, J.Z. Chen, Q.B. Zhang, Manipulating charge-transfer kinetics and a flow-domain LiF-rich interphase to enable high-performance microsized silicon-silver-carbon composite anodes for solid-state batteries, Energy Environ. Sci. 16 (11) (2023) 5395-5408. [11] J. Qian, Y. Li, M.L. Zhang, R. Luo, F.J. Wang, Y.S. Ye, Y. Xing, W.L. Li, W.J. Qu, L.L. Wang, L. Li, Y.J. Li, F. Wu, R.J. Chen, Protecting lithium/sodium metal anode with metal-organic framework based compact and robust shield, Nano Energy 60 (2019) 866-874. [12] Z.F. Sun, J.H. Pan, W.W. Chen, H.Y. Chen, S.H. Zhou, X.Y. Wu, Y.S. Wang, K. Kim, J. Li, H.D. Liu, Y.F. Yuan, J.W. Wang, D. Su, D.L. Peng, Q.B. Zhang, Electrochemical processes and reactions in rechargeable battery materials revealed via in situ transmission electron microscopy, Adv. Energy Mater. 14 (2) (2024) 2303165. [13] B. Huang, Z.F. Pan, X.Y. Su, L. An, Recycling of lithium-ion batteries: Recent advances and perspectives, J. Power Sources 399 (2018) 274-286. [14] K.C. Lau, N.L.D. Rago, C. Liao, Lipophilic additives for highly concentrated electrolytes in lithium-sulfur batteries, J. Electrochem. Soc. 166 (12) (2019) A2570-A2573. [15] Z.W. Wang, L.L. Feng, C. Deng, S.P. Wang, 2,5-Dimercapto-1,3,4-thiadiazole/acetylene black@polypropylene separator for inhibiting the shuttle effect and electrocatalyzing electrode reactions in Li-S batteries, Chem. Eng. J. 446 (2022) 137153. [16] C. Jiang, C. Ma, F. Yang, X.H. Cai, Y.J. Liu, X.Y. Tao, Materials chemistry among the artificial solid electrolyte interphases of metallic lithium anodes, Mater. Chem. Front. 5 (14) (2021) 5194-5210. [17] Q.J. Sun, Z. Cao, Z. Ma, J.L. Zhang, W. Wahyudi, T. Cai, H.R. Cheng, Q. Li, H. Kim, E.Q. Xie, L. Cavallo, Y.K. Sun, J. Ming, Discerning roles of interfacial model and solid electrolyte interphase layer for stabilizing antimony anode in lithium-ion batteries, ACS Mater. Lett. 4 (11) (2022) 2233-2243. [18] N.J. Taylor, S. Stangeland-Molo, C.G. Haslam, A. Sharafi, T. Thompson, M. Wang, R. Garcia-Mendez, J. Sakamoto, Demonstration of high current densities and extended cycling in the garnet Li7La3Zr2O12 solid electrolyte, J. Power Sources 396 (2018) 314-318. [19] H. Lu, Y. Zhu, Y. Yuan, L. He, B. Zheng, X.Z. Zheng, C.C. Liu, H.L. Du, LiFSI as a functional additive of the fluorinated electrolyte for rechargeable Li-S batteries, J. Mater. Sci. Mater. Electron. 32 (5) (2021) 5898-5906. [20] W. Tang, X.S. Yin, S.J. Kang, Z.X. Chen, B.B. Tian, S.L. Teo, X.W. Wang, X. Chi, K.P. Loh, H.W. Lee, G.W. Zheng, Lithium silicide surface enrichment: A solution to lithium metal battery, Adv. Mater. 30 (34) (2018) 1801745. [21] J.Q. Cao, Y.H. Xie, Y. Yang, X.H. Wang, W.Y. Li, Q.L. Zhang, S. Ma, S.Y. Cheng, B.G. Lu, Achieving uniform Li plating/stripping at ultrahigh currents and capacities by optimizing 3D nucleation sites and Li2Se-enriched SEI, Adv. Sci. 9 (9) (2022) e2104689. [22] Y.H. Xie, J. Ao, L. Zhang, Y.Q. Shao, H. Zhang, S.Y. Cheng, X.H. Wang, Multi-functional bilayer carbon structures with micrometer-level physical encapsulation as a flexible cathode host for high-performance lithium-sulfur batteries, Chem. Eng. J. 451 (2023) 139017. [23] Y.H. Xie, W.R. Zheng, J. Ao, Y.Q. Shao, X. Huang, H. Li, S.Y. Cheng, X.H. Wang, Multifunctional Ni-doped CoSe2 nanoparticles decorated bilayer carbon structures for polysulfide conversion and dendrite-free lithium toward high-performance Li-S full cell, Energy Storage Mater. 62 (2023) 102925. [24] Y. Liu, X.T. Guo, Y.Y. Zhou, M.T. Wang, C. Sun, S.D. Xu, X.Y. Qiu, Q. Huang, T. Wei, Prestoring lithium in a 3D carbon fiber cloth coated with MOF-derived MnO for composite lithium anodes with high areal capacity and current density, CrystEngComm 26 (5) (2024) 681-690. [25] K. Huang, S.P. Song, Y. Xiang, Lithiophilic coating layer modify three-dimensional Cu foam for stable and dendrite-free lithium metal anode, J. Phys.: Conf. Ser. 2009 (1) (2021) 012080. [26] G.Y. Jiang, N. Jiang, N. Zheng, X. Chen, J.Y. Mao, G.Y. Ding, Y.H. Li, F.G. Sun, Y.S. Li, MOF-derived porous Co3O4-NC nanoflake arrays on carbon fiber cloth as stable hosts for dendrite-free Li metal anodes, Energy Storage Mater. 23 (2019) 181-189. [27] T. Wei, J.H. Lu, P. Zhang, Q. Zhang, G. Yang, R.Z. Yang, D.F. Chen, Q. Wang, Y.F. Tang, An intermittent lithium deposition model based on bimetallic MOFs derivatives for dendrite-free lithium anode with ultrahigh areal capacity, Chin. Chemical Lett. (2023) 109122. [28] T. Wei, J.H. Lu, M.T. Wang, C. Sun, Q. Zhang, S.J. Wang, Y.Y. Zhou, D.F. Chen, Y.Q. Lan, MOF-derived materials enabled lithiophilic 3D hosts for lithium metal anode-a review, Chin. J. Chem. 41 (15) (2023) 1861-1874. [29] X.C. Zhao, M. Sun, G. Ai, T. Zhang, J.J. Wei, W.F. Mao, Ant-nest-like lithiophilic host for long-life lithium metal anodes, ACS Appl. Mater. Interfaces 15 (31) (2023) 37381-37389. [30] L.Y. Wang, X.Y. Zhu, Y.P. Guan, J.L. Zhang, F. Ai, W.F. Zhang, Y. Xiang, S. Vijayan, G.D. Li, Y.Q. Huang, G.P. Cao, Y.S. Yang, H. Zhang, ZnO/carbon framework derived from metal-organic frameworks as a stable host for lithium metal anodes, Energy Storage Mater. 11 (2018) 191-196. [31] T. Wei, Y.Y. Zhou, C. Sun, X.T. Guo, S.D. Xu, D.F. Chen, Y.F. Tang, An intermittent lithium deposition model based on CuMn-bimetallic MOF derivatives for composite lithium anode with ultrahigh areal capacity and current densities, Nano Res. 17 (4) (2024) 2763-2769. [32] R.M. Deng, B.Y. Ke, Y.H. Xie, S.L. Cheng, C.C. Zhang, H. Zhang, B.G. Lu, X.H. Wang, All-solid-state thin-film lithium-sulfur batteries, Nano Micro Lett. 15 (1) (2023) 73. [33] T. Wei, Z.H. Zhang, Q. Zhang, J.H. Lu, Q.M. Xiong, F.Y. Wang, X.P. Zhou, W.J. Zhao, X.Y. Qiu, Anion-immobilized solid composite electrolytes based on metal-organic frameworks and superacid ZrO2 fillers for high-performance all solid-state lithium metal batteries, Int. J. Miner. Metall. Mater. 28 (10) (2021) 1636-1646. [34] Q. Zhang, S.J. Wang, Y. Liu, M.T. Wang, R.T. Chen, Z.Y. Zhu, X.Y. Qiu, S.D. Xu, T. Wei, UiO-66-NH2@67 core-shell metal-organic framework as fillers in solid composite electrolytes for high-performance all-solid-state lithium metal batteries, Energy Technol. 11 (4) (2023) 2201438. [35] J.H. Lu, Z.M. Wang, Q. Zhang, C. Sun, Y.Y. Zhou, S.J. Wang, X.Y. Qiu, S.D. Xu, R.T. Chen, T. Wei, The effects of amino groups and open metal sites of MOFs on polymer-based electrolytes for all-solid-state lithium metal batteries, Chin. J. Chem. Eng. 60 (2023) 80-89. [36] Q. Zhang, T. Wei, J.H. Lu, C. Sun, Y.Y. Zhou, M.T. Wang, Y. Liu, B.B. Xiao, X.Y. Qiu, S.D. Xu, The effects of PVB additives in MOFs-based solid composite electrolytes for all-solid-state lithium metal batteries, J. Electroanal. Chem. 926 (2022) 116935. [37] T. Wei, Z.M. Wang, M. Zhang, Q. Zhang, J.H. Lu, Y.Y. Zhou, C. Sun, Z.D. Yu, Y. Wang, M. Qiao, S. Qin, Activated metal-organic frameworks (a-MIL-100 (Fe)) as fillers in polymer electrolyte for high-performance all-solid-state lithium metal batteries, Mater. Today Commun. 31 (2022) 103518. [38] X.M. Liu, L.H. Xie, Y.F. Wu, Recent advances in the shaping of metal-organic frameworks, Inorg. Chem. Front. 7 (15) (2020) 2840-2866. [39] R.B. Wu, X.K. Qian, K. Zhou, J. Wei, J. Lou, P.M. Ajayan, Porous spinel ZnxCo3-xO4 hollow polyhedra templated for high-rate lithium-ion batteries, ACS Nano 8 (6) (2014) 6297-6303. [40] T.Q. Chen, X.J. Liu, L.Y. Niu, Y.Y. Gong, C. Li, S.Q. Xu, L.K. Pan, Recent progress on metal-organic framework-derived materials for sodium-ion battery anodes, Inorg. Chem. Front. 7 (3) (2020) 567-582. [41] X. Zhang, J. Qiao, C. Liu, F.L. Wang, Y.Y. Jiang, P. Cui, Q. Wang, Z. Wang, L.L. Wu, J.R. Liu, A MOF-derived ZrO2/C nanocomposite for efficient electromagnetic wave absorption, Inorg. Chem. Front. 7 (2) (2020) 385-393. [42] F. Zhao, X.F. Zhou, W. Deng, Z.P. Liu, Entrapping lithium deposition in lithiophilic reservoir constructed by vertically aligned ZnO nanosheets for dendrite-free Li metal anodes, Nano Energy 62 (2019) 55-63. [43] J. Lin, C.H. Zeng, X.M. Lin, R.C.K. Reddy, J.L. Niu, J.C. Liu, Y.P. Cai, Trimetallic MOF-derived Cu0.39Zn0.14Co2.47O4-CuO interwoven with carbon nanotubes on copper foam for superior lithium storage with boosted kinetics, ACS Sustainable Chem. Eng. 7 (18) (2019) 15684-15695. [44] Y.H. Zhao, R. Xu, Y.Y. Zhou, F.Z. Wang, C. Tong, M.H. Shao, M. Wang, C.P. Li, Z.D. Wei, Lattice-matching Ni-based scaffold with a spongy cover for uniform electric field against lithium dendrites, Chem. Commun. 57 (74) (2021) 9442-9445. [45] E. Cha, J.H. Yun, R. Ponraj, D.K. Kim, A mechanistic review of lithiophilic materials: Resolving lithium dendrites and advancing lithium metal-based batteries, Mater. Chem. Front. 5 (17) (2021) 6294-6314. [46] L.Y. Du, H.J. Lin, Z.Y. Ma, Q.Q. Wang, D.S. Li, Y. Shen, W.N. Zhang, K. Rui, J.X. Zhu, W. Huang, Using and recycling V2O5 as high performance anode materials for sustainable lithium ion battery, J. Power Sources 424 (2019) 158-164. [47] P. Hu, M.Y. Yan, T. Zhu, X.P. Wang, X.J. Wei, J.T. Li, L. Zhou, Z.H. Li, L.N. Chen, L.Q. Mai, Zn/V2O5 aqueous hybrid-ion battery with high voltage platform and long cycle life, ACS Appl. Mater. Interfaces 9 (49) (2017) 42717-42722. [48] D.L. Chao, X.H. Xia, J.L. Liu, Z.X. Fan, C.F. Ng, J.Y. Lin, H. Zhang, Z.X. Shen, H.J. Fan, A V2O5/conductive-polymer core/shell nanobelt array on three-dimensional graphite foam: A high-rate, ultrastable, and freestanding cathode for lithium-ion batteries, Adv. Mater. 26 (33) (2014) 5794-5800. [49] T. Wei, Y.Y. Zhou, C. Sun, L.S. Liu, S.J. Wang, M.T. Wang, Y. Liu, Q. Huang, Q.C. Zhuang, Y.F. Tang, Prestoring lithium into SnO2 coated 3D carbon fiber cloth framework as dendrite-free lithium metal anode, Particuology 84 (2024) 89-97. [50] M.M. Li, X.Y. Qiu, Y.X. Yin, T. Wei, Z.Q. Dai, O3-Type Ni-Rich NaNi2/3Mn1/6Fe1/6O2: A high-performance cathode material for sodium-ion batteries, J. Alloys Compd. 969 (2023) 172406. [51] B.Z. Yu, T. Tao, S. Mateti, S.G. Lu, Y. Chen, Nanoflake arrays of lithiophilic metal oxides for the ultra-stable anodes of lithium-metal batteries, Adv. Funct. Mater. 28 (36) (2018) 1803023. [52] Y. Jiang, G.F. Liu, J.L. Jiang, X.F. Hu, L.B. Hu, W.Z. Li, X.Y. Liu, B. Zhao, Cu foam-loaded Cu2Mg alloy with high electrochemical stability to regulate the nucleation of lithium for dendrite-free lithium metal batteries, ACS Sustainable Chem. Eng. 10 (21) (2022) 7149-7157. [53] L. Gong, Y. Zhang, Z. Li, V-MOF@graphene derived two-dimensional hierarchical V2O5@graphene as high-performance cathode for aqueous zinc-ion batteries, Mater. Today Chem. 23 (2022) 100731. [54] Y.C. Ding, Y.Q. Peng, W.Y. Chen, Y.J. Niu, S.G. Wu, X.X. Zhang, L.H. Hu, V-MOF derived porous V2O5 nanoplates for high performance aqueous zinc ion battery, Appl. Surf. Sci. 493 (2019) 368-374. [55] A.M. Cao, J.S. Hu, H.P. Liang, L.J. Wan, Self-assembled vanadium pentoxide (V2O5) hollow microspheres from nanorods and their application in lithium-ion batteries, Angew. Chem. Int. Ed. 44 (28) (2005) 4391-4395. [56] F. Liu, Z.X. Chen, G.Z. Fang, Z.Q. Wang, Y.S. Cai, B.Y. Tang, J. Zhou, S.Q. Liang, V2O5 nanospheres with mixed vanadium valences as high electrochemically active aqueous zinc-ion battery cathode, Nano Micro Lett. 11 (1) (2019) 25. [57] C.B. Jin, O.W. Sheng, J.M. Luo, H.D. Yuan, C. Fang, W.K. Zhang, H. Huang, Y.P. Gan, Y. Xia, C. Liang, J. Zhang, X.Y. Tao, 3D lithium metal embedded within lithiophilic porous matrix for stable lithium metal batteries, Nano Energy 37 (2017) 177-186. [58] T. Wei, Q. Zhang, S.J. Wang, M.T. Wang, Y. Liu, C. Sun, Y.Y. Zhou, Q. Huang, X.Y. Qiu, F. Tian, A gel polymer electrolyte with IL@UiO-66-NH2 as fillers for high-performance all-solid-state lithium metal batteries, Int. J. Miner. Metall. Mater. 30 (10) (2023) 1897-1905. [59] Z.L. Yang, Y. Dang, P.B. Zhai, Y. Wei, Q. Chen, J.H. Zuo, X.K. Gu, Y. Yao, X.G. Wang, F.F. Zhao, J.L. Wang, S.B. Yang, P.Z. Tang, Y.J. Gong, Single-atom reversible lithiophilic sites toward stable lithium anodes, Adv. Energy Mater. 12 (8) (2022) 2103368. [60] Z. Cui, Q. Liu, C.T. Xu, R.J. Zou, J.H. Zhang, W.L. Zhang, G.Q. Guan, J.Q. Hu, Y.G. Sun, A new strategy to effectively alleviate volume expansion and enhance the conductivity of hierarchical MnO@C nanocomposites for lithium ion batteries, J. Mater. Chem. A 5 (41) (2017) 21699-21708. [61] J.Y. Wu, T.Y. Zhou, B. Zhong, Q. Wang, W. Liu, H.H. Zhou, Designing anion-derived solid electrolyte interphase in a siloxane-based electrolyte for lithium-metal batteries, ACS Appl. Mater. Interfaces 14 (24) (2022) 27873-27881. [62] H.C. Wang, Q. Wang, X. Cao, Y.Y. He, K. Wu, J.J. Yang, H.H. Zhou, W. Liu, X.M. Sun, Thiol-branched solid polymer electrolyte featuring high strength, toughness, and lithium ionic conductivity for lithium-metal batteries, Adv. Mater. 32 (37) (2020) 2001259. [63] H. Huang, D.H. Li, L.F. Hou, H.Y. Du, H. Wei, X.D. Liu, Q. Wang, Y.H. Wei, Advanced protective layer design on the surface of Mg-based metal and application in batteries: Challenges and progress, J. Power Sources 542 (2022) 231755. |