Metal-organic framework derived MnO@C/CNTs composite for high-rate lithium-based semi-solid flow batteries

Jiegou Huaxue - Tập 42 - Trang 100116 - 2023
Benjian Xin1, Rui Wang2, Lili Liu1, Zhiqiang Niu2
1Tianjin Key Laboratory for Photoelectric Materials and Devices, School of Materials Science and Engineering, Tianjin University of Technology, Tianjin 300384, PR China
2Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Renewable Energy Conversion and Storage Center, Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry, Nankai University, Tianjin, 300071, PR China

Tài liệu tham khảo

Yang, 2022, A low-crossover and fast-kinetics thiolate negolyte for aqueous redox flow batteries, Energy Mater. Adv., 2022, 10.34133/2022/9795675 Hu, 2021, Viologen-decorated TEMPO for neutral aqueous organic redox flow batteries, Energy Mater. Adv., 2021, 10.34133/2021/9795237 Chen, 2019, Selectivity enhancement of quaternized poly(arylene ether ketone) membranes by ion segregation for vanadium redox flow batteries, Sci. China Chem., 62, 479, 10.1007/s11426-018-9390-6 Lou, 2022, Cost-effective membrane and advanced electrode for stable polysulfide-ferricyanide flow batter, Energy Mater. Adv., 2022, 10.34133/2022/9865618 Guo, 2022, Solid-state lithium batteries: safety and prospects, eScience, 2, 138, 10.1016/j.esci.2022.02.008 Huang, 2021, Tailoring the structure of silicon-based materials for lithium-ion batteries via electrospinning technology, eScience, 1, 141, 10.1016/j.esci.2021.11.006 Ma, 2018, High electro-catalytic graphite felt/MnO2 composite electrodes for vanadium redox flow batteries, Sci. China Chem., 61, 732, 10.1007/s11426-017-9235-6 Cong, 2022, Strategies to improve the energy density of non-aqueous organic redox flow batteries, Acta Phys. Chim. Sin., 38, 2106008 Yang, 2019, Ultra-high proton/vanadium selectivity of polybenzimidazole membrane by incorporating phosphotungstic acid functionalized nanofibers for vanadium redox flow battery, Acta Phys. Chim. Sin., 35, 1372, 10.3866/PKU.WHXB201905011 Duduta, 2011, Semi-solid lithium rechargeable flow battery, Adv. Energy Mater., 1, 511, 10.1002/aenm.201100152 Huang, 2013, Reversible chemical delithiation/lithiation of LiFePO4: towards a redox flow lithium-ion battery, Phys. Chem. Chem. Phys., 15, 1793, 10.1039/C2CP44466F Madec, 2014, Electronic vs ionic limitations to electrochemical performance in Li4Ti5O12-based organic suspensions for lithium-redox flow batteries, J. Electrochem. Soc., 161, A693, 10.1149/2.035405jes Madec, 2015, Surfactant for enhanced rheological, electrical, and electrochemical performance of suspensions for semisolid redox flow batteries and supercapacitors, ChemPlusChem, 80, 396, 10.1002/cplu.201402042 Ventosa, 2015, Solid electrolyte interphase in semi-solid flow batteries: a wolf in sheep's clothing, Chem. Commun., 51, 14973, 10.1039/C5CC04767F Hatzell, 2014, Composite manganese oxide percolating networks as a suspension electrode for an asymmetric flow capacitor, ACS Appl. Mater. Interfaces, 6, 8886, 10.1021/am501650q Yazami, 1999, Surface chemistry and lithium storage capability of the graphite-lithium electrode, Electrochim. Acta, 45, 87, 10.1016/S0013-4686(99)00195-4 Chen, 2017, Silicon-carbon nanocomposite semi-solid negolyte and its application in redox flow batteries, Chem. Mater., 29, 7533, 10.1021/acs.chemmater.7b02561 Pan, 2021, Ultrahigh-capacity semi-solid SiOx anolytes enabled by robust nanotube conductive networks for Li-ion flow batteries, J. Power Sources, 508, 10.1016/j.jpowsour.2021.230341 Pan, 2022, Robust multiscale electron/Ion transport and enhanced structural stability in SiOx semi-solid anolytes enabled by trifunctional artificial interfaces for high-performance Li-ion slurry flow batteries, Small, 18, 10.1002/smll.202202139 Yang, 2022, Preparation and lithium storage properties of low cost silicon nanotube/carbon composites, J. Chin. Ceram. Soc., 50, 1875 Tang, 2022, Fabrication of a highly stable Nb2O5@C/CNTs based anolyte for lithium slurry flow batteries, J. Mater. Chem. A, 10, 5620, 10.1039/D1TA10883B Liu, 2021, Multi-yolk-shell MnO@carbon nanopomegranates with internal buffer space as a lithium ion battery anode, Langmuir, 37, 2195, 10.1021/acs.langmuir.0c03523 Sun, 2017, Reduction-controlled synthesis of high-performance MnO@Ni anode materials for Li-ion batteries, J. Chin. Ceram. Soc., 45, 898 Wu, 2023, Removing the intrinsic NiO phase and residual lithium for high-performance nickel-rich materials, Energy Mater. Adv., 4, 10.34133/energymatadv.0007 Rao, 2022, Preparation and lithium/sodium storage of sulfur doped V2O3/C nanowires, J. Chin. Ceram. Soc., 50, 9 Deng, 2020, Electrochemically induced metal-organic-framework-derived amorphous V2O5 for superior rate aqueous zinc-ion batteries, Angew. Chem. Int. Ed., 59, 22002, 10.1002/anie.202010287 Li, 2021, Rational design and general synthesis of multimetallic metal-organic framework nano-octahedra for enhanced Li–S battery, Adv. Mater., 33, 10.1002/adma.202105163 Yang, 2023, Metal-organic frameworks meet MXene: new opportunities for electrochemical application, Energy Mater. Adv., 4, 10.34133/energymatadv.0033 Zeng, 2022, Nitrogen-doped carbon fibers embedded with zincophilic Cu nanoboxes for stable Zn-metal anodes, Adv. Mater., 34, 10.1002/adma.202200342 Li, 2019, Ultra-fast transfer and high storage of Li+/Na+ in MnO quantum dots@carbon hetero-nanotubes: appropriate quantum dots to improve the rate, Energy Storage Mater., 17, 157, 10.1016/j.ensm.2018.07.021 Deng, 2022, Rational design of ZnMn2O4 quantum dots in a carbon framework for durable aqueous zinc-ion batteries, Angew. Chem. Int. Ed., 61, 10.1002/anie.202115877 Sun, 2022, One-pot synthesis of nanosized MnO incorporated into N-doped carbon nanosheets for high performance lithium storage, J. Alloys Compd., 902, 10.1016/j.jallcom.2022.163827 Su, 2022, Effects of conductive additives on the percolation networks and rheological properties of LiMn0.7Fe0.3PO4 suspensions for lithium slurry battery, Chem. Eng. J., 433, 10.1016/j.cej.2021.133203 Choo, 2017, Electrochemical analysis of slurry electrodes for flow-electrode capacitive deionization, J. Electroanal. Chem., 806, 50, 10.1016/j.jelechem.2017.10.040 Meslam, 2022, Promising aqueous dispersions of carbon black for semisolid flow battery application, Colloids Surface A, 648, 10.1016/j.colsurfa.2022.129376 Milián, 2022, Rheological behavior of gel polymer electrolytes: yield stress and viscoelasticity, Rheol. Acta, 61, 401, 10.1007/s00397-022-01338-z Youssry, 2018, Aqueous dispersions of carbon black and its hybrid with carbon nanofibers, RSC Adv., 8, 32119, 10.1039/C8RA05446K Jia, 2018, Robust 3D network architectures of MnO nanoparticles bridged by ultrathin graphitic carbon for high-performance lithium-ion battery anodes, Nano Res., 11, 1135, 10.1007/s12274-017-1732-y Zhang, 2020, An energy-dense, flowable suspension of hollow carbon nanoshell-hosted sulfur as an electroactive material for flow batteries, J. Power Sources, 478, 10.1016/j.jpowsour.2020.228750 Qi, 2017, Carbon-free solid dispersion LiCoO2 redox couple characterization and electrochemical evaluation for all solid dispersion redox flow batteries, Electrochim. Acta, 228, 91, 10.1016/j.electacta.2017.01.061 Richards, 2017, Clustering and percolation in suspensions of carbon black, Langmuir, 33, 12260, 10.1021/acs.langmuir.7b02538 Shukla, 2017, Self-organization of electroactive suspensions in discharging slurry batteries: a mesoscale modeling investigation, ACS Appl. Mater. Interfaces, 9, 17882, 10.1021/acsami.7b02567 Du, 2022, A universal spray printing strategy to prepare gradient hybrid architectures, Carbon Energy, 4, 517, 10.1002/cey2.181