[1] |
Zheng W,Bi W,Gao X,et al. A nickel and cobalt bimetal organic framework with high capacity as an anode material for lithium-ion batteries[J]. Sustainable Energy & Fuels,2020,4(11):5757−5764
|
[2] |
Hao J,Yang F,Zhang S,et al. Designing a hybrid electrode toward high energy density with a staged Li+ and PF6- deintercalation/intercalation mechanism[J]. Proceedings of the National Academy of Sciences of the United States of America,2020,117(6):2815−2823 doi: 10.1073/pnas.1918442117
|
[3] |
Huang Y, Ding S, Xu S, et al. Binder-free SnS2 sheet array with high sulfur vacancy concentration for enhanced lithium storage performance. Electrochimica Acta, 2022, 409
|
[4] |
Huang S,Cai Y,Jin J,et al. Hierarchical mesoporous urchin-like Mn3O4/carbon microspheres with highly enhanced lithium battery performance by in-situ carbonization of new lamellar manganese alkoxide (Mn-DEG)[J]. Nano Energy,2015,12:833−844 doi: 10.1016/j.nanoen.2015.01.040
|
[5] |
Li C,Lou X,Shen M,et al. High Anodic Performance of Co 1, 3, 5-benzenetricarboxylate coordination polymers for li-ion battery[J]. Acs Applied Materials & Interfaces,2016,8(24):15352−15360
|
[6] |
Yao L, Gu Q, Yu X, Three-dimensional MOFs@MXene aerogel composite derived MXene threaded hollow carbon confined CoS nanoparticles toward advanced alkali-ion batteries. Acs Nano, 2021, 15(2): 3228-3240
|
[7] |
Skoda D,Kazda T,Munster L,et al. Microwave-assisted synthesis of platelet-like cobalt metal-organic framework, its transformation to porous layered cobalt-carbon nanocomposite discs and their utilization as anode materials in sodium-ion batteries[J]. Journal of Energy Storage,2020,27:101113 doi: 10.1016/j.est.2019.101113
|
[8] |
Maiti S,Pramanik A,Manju U,et al. Reversible lithium storage in manganese 1, 3, 5-benzenetricarboxylate metal-organic framework with high capacity and rate performance[J]. Acs Applied Materials & Interfaces,2015,7(30):16357−16363
|
[9] |
Zhang Y,Cheng T,Wang Y,et al. A simple approach to boost capacitance: flexible supercapacitors based on manganese oxides@MOFs via chemically induced in situ self-transformation[J]. Advanced Materials,2016,28(26):5242 doi: 10.1002/adma.201600319
|
[10] |
Tang X,Wang H,Fan J,et al. CNT boosted two-dimensional flaky metal-organic nanosheets for superior lithium and potassium storage[J]. Chemical Engineering Journal,2022,430:133023 doi: 10.1016/j.cej.2021.133023
|
[11] |
Chen L,Yang W,Wang J,et al. Hierarchical cobalt-based metal-organic framework for high-performance lithium-ion batteries[J]. Chemistry-a European Journal,2018,24(50):13362−13367 doi: 10.1002/chem.201802629
|
[12] |
Yin X,Chen X,Sun W,et al. Revealing the effect of cobalt-doping on Ni/Mn-based coordination polymers towards boosted li-storage performances[J]. Energy Storage Materials,2020,25:846−857 doi: 10.1016/j.ensm.2019.09.005
|
[13] |
He S, Li Z, Wang J, Bimetallic MOFs with tunable morphology: Synthesis and enhanced lithium storage properties. Journal of Solid State Chemistry, 2022, 307: 122726
|
[14] |
Hong J, Park S, Kim S, Synthesis and electrochemical characterization of nanostructured Ni-Co-MOF/graphene oxide composites as capacitor electrodes. Electrochimica Acta, 2019, 311: 62-71
|
[15] |
Gao C,Jiang Z,Wang P,et al. Optimized assembling of MOF/SnO2/Graphene leads to superior anode for lithium ion batteries[J]. Nano Energy,2020,74:104868 doi: 10.1016/j.nanoen.2020.104868
|
[16] |
Jin Y,Zhao C,Sun Z,et al. Facile synthesis of Fe-MOF/RGO and its application as a high performance anode in lithium-ion batteries[J]. Rsc Advances,2016,6(36):30763−30768 doi: 10.1039/C6RA01645F
|
[17] |
Banerjee P,Lobo D,Middag R et al. Electrochemical capacitance of Ni-doped metal organic framework and reduced graphene oxide composites: more than the sum of its parts[J]. Acs Applied Materials & Interfaces,2015,7(6):3655−3664
|
[18] |
Yin X,Yin Y,Wang N,et al. Co-induced performance optimization of Fe-based coordination polymers for lithium storage[J]. Microporous and Mesoporous Materials,2022,333:111719 doi: 10.1016/j.micromeso.2022.111719
|