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1 metal anode via a versatile MOF-derived route.Science China Materials,https://doi.org/10.1007/s40843- 2 021-1764-x 322]W.He,S.Zuo,X.Xu,et al.Challenges and strategies of zinc anode for aqueous zinc-ion batteries. 4 Materials Chemistry Frontiers,2021,5:2201 5[23]S.Yao,L.Zeng,J.Liu,et al.Research progress in structure design and interface enhancement of lithium 6 anode for high-performance lithium metal batteries. Materials Reports, 1 https://kns.cnki.net/kcms/detail/50.1078.TB. 8 20211112.1049.002.html 9 (姚诗言,曾立艳,刘军,高性能锂金属电池负极结构设计及界面强化研究进展,材料导报, 10 https://kns.cnki.net/kcms/detail/50.1078.TB.20211112.1049.002.html 11[24]X.Zheng,Z.Gu,X.Liu,et al.Bridging the immiscibility of an all-fluoride fire extinguishant with highly- 12 fluorinated electrolytes toward safe sodium metal batteries.Energy Environmental Science,2020,13:1788 1325]J.J.A.Kreissl,D.Langsdorf,B.A.Tkachenko,et al.Incorporating diamondoids as electrolyte additive in 14 the sodium metal anode to mitigate dendrite growth.ChemSusChem,2020.13:266 1526]Y.Zhao,J.W.Liang.Q.Sun,et al.In situ formation of highly controllable and stable Na;PS as a protective 16 layer for Na metal anode.Journal of Materials Chemistry A,2019,7:4119 17[27]X.Y.Zheng.H.Y.Fu,C.C.Hu,et al.Toward a stable sodium metal anode in carbonate electrolyte:A 18 compact,inorganic alloy interface.The Journal of Physical Chemistry Leters,2019,10:707 19[28]H.Wang.C.L.Wang.E.Matios,et al.Facile stabilization of the sodium metal anode with additives: 20 Unexpected key role of sodium polysulfide and adverse effect/of sodium nitrate.Angewandte Chemie 21 International Edition,2018,57:7734 2229]D.A.Rakov,F.F.Chen,S.A.Ferdousi,et al.Engineering high-energy-density sodium battery anodes for 23 improved cycling with superconcentrated ionic-liquid eleetrolytes.Narre Materials,2020,19:109 24[30]Q.Chen,H.He,Z.Hou,et al.Building an artificial solid electrolyte interphase with high-uniformity and fast 25 ion diffusion for ultralong-life sodium metal anodes.Journal of Materials Chemistry A,2020,8:16232 26[31]W.Luo,C.F.Lin,O.Zhao,et al.Rubloff and L.Hu,Ultrathin surface coating enables the stable sodium 27 metal anode.Advanced Energy Materials,2017,7:1601526 28[32]Y.Xie,J.Hu,Z.Zhang.A stable carbon host engineering surface defects for room-temperature liquid NaK 29 anode.Journal of Electroanalyiteal Chemistry,2020,56:113676 30[33]Z.Ju,J.Nai,Y.Wang .Litet al.Biomacromolecules enabled dendrite-free lithium metal battery and its 31 origin revealed by cryo-electron microscopy.Nature Communications,2020,11:488 3234]M.E.Lee,H.W.Kwak,J.H.Kwak,et al.Catalytic pyroprotein seed layers for sodium metal anodes.ACS 33 Applied Materials Interfaces,2019,11:12401 34[35]Z.Hou W.H.Wang.Y.K.Yu,et al.Poly (vinylidene difluoride)coating on Cu current collector for high- 35 performance Na metal anode.Energy Storage Materials,2020,24:588 36[36]E.Matios,H.Wang,C.Wang,et al.Sodiophilic decoration of a three-dimensional conductive scaffold 37 toward a stable na metal anode.ACS applied materials interfaces,2019,11:5064 38[37]L.Xi,D.Zhang,J.Liu,et al.Research progress of composite solid electrolytes for all-solid-state lithium 39 batteries.Materials China,2021,40:1674 40 (习磊,张德超,刘军.应用于全固态锂电池的复合固态电解质研究进展.中国材料进展,2021, 41 40:1674) 42[38]X.Yu,L.Xue,J.B.Goodenough,et al.All-solid-state sodium batteries with a polyethylene glycol 43 diacrylate-NaZrSiPOcomposite electrolyte.Advanced Energy Sustainability Research,2021,2:2000061metal anode via a versatile MOF-derived route. Science China Materials, https://doi.org/10.1007/s40843- 021-1764-x [22] W. He, S. Zuo, X. Xu, et al. Challenges and strategies of zinc anode for aqueous zinc-ion batteries. Materials Chemistry Frontiers, 2021, 5: 2201 [23] S. Yao, L. Zeng, J. Liu, et al. Research progress in structure design and interface enhancement of lithium anode for high-performance lithium metal batteries. Materials Reports, https://kns.cnki.net/kcms/detail/50.1078.TB. 20211112.1049.002.html (姚诗言,曾立艳,刘军. 高性能锂金属电池负极结构设计及界面强化研究进展 . 材料导报, https://kns.cnki.net/kcms/detail/50.1078.TB.20211112.1049.002.html) [24] X. Zheng, Z. Gu, X. Liu, et al. Bridging the immiscibility of an all-fluoride fire extinguishant with highly￾fluorinated electrolytes toward safe sodium metal batteries. Energy Environmental Science, 2020, 13: 1788 [25] J. J. A. Kreissl, D. Langsdorf, B. A. Tkachenko, et al. Incorporating diamondoids as electrolyte additive in the sodium metal anode to mitigate dendrite growth. 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Building an artificial solid electrolyte interphase with high-uniformity and fast ion diffusion for ultralong-life sodium metal anodes. Journal of Materials Chemistry A, 2020, 8: 16232 [31] W. Luo, C.F. Lin, O. Zhao, et al. Rubloff and L. Hu, Ultrathin surface coating enables the stable sodium metal anode. Advanced Energy Materials, 2017, 7: 1601526 [32] Y. Xie, J. Hu, Z. Zhang. A stable carbon host engineering surface defects for room-temperature liquid NaK anode. Journal of Electroanalytical Chemistry, 2020, 56: 113676 [33] Z. Ju, J. Nai, Y. Wang, T. Liu, et al. Biomacromolecules enabled dendrite-free lithium metal battery and its origin revealed by cryo-electron microscopy. Nature Communications, 2020, 11: 488 [34] M. E. Lee, H. W. Kwak, J. H. Kwak, et al. Catalytic pyroprotein seed layers for sodium metal anodes. ACS Applied Materials Interfaces, 2019, 11: 12401 [35] Z. Hou, W. H. Wang, Y. K. Yu, et al. Poly (vinylidene difluoride) coating on Cu current collector for high￾performance Na metal anode. Energy Storage Materials, 2020, 24: 588 [36] E. Matios, H. Wang, C. Wang, et al. Sodiophilic decoration of a three-dimensional conductive scaffold toward a stable na metal anode. ACS applied materials & interfaces, 2019, 11: 5064 [37] L. Xi, D. Zhang, J. Liu, et al. Research progress of composite solid electrolytes for all-solid-state lithium batteries. Materials China, 2021, 40: 1674 (习磊,张德超,刘军. 应用于全固态锂电池的复合固态电解质研究进展. 中国材料进展, 2021, 40:1674) [38] X. Yu, L. Xue, J. B. Goodenough, et al. All-solid-state sodium batteries with a polyethylene glycol diacrylate-Na3Zr2Si2PO12 composite electrolyte. Advanced Energy Sustainability Research, 2021, 2: 2000061 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 录用稿件,非最终出版稿
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