Design and 3D Printing of Interdigitated Electrode Structures for High-performance Full Lithium-ion Battery
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Zhiyuan Liu | Kun Xu | Changyong Liu | Pei Wang | Yide Li | Juncen Shen | Zhangwei Chen | Ning Zhao
[1] Y. Miao,et al. A Universal Spinning‐Coordinating Strategy to Construct Continuous Metal–Nitrogen–Carbon Heterointerface with Boosted Lithium Polysulfides Immobilization for 3D‐Printed Li—S Batteries , 2022, Advanced science.
[2] P. Notten,et al. Porous Electrode Modeling and its Applications to Li‐Ion Batteries , 2022, Advanced Energy Materials.
[3] Kun Xu,et al. High performance LiFePO4 and SiO@C/graphite interdigitated full lithium-ion battery fabricated via low temperature direct write 3D printing , 2022, Materials Today Energy.
[4] Zhiyuan Liu,et al. 3D printing of ultrathick natural graphite anodes for high-performance interdigitated three-dimensional lithium-ion batteries , 2022, Electrochemistry Communications.
[5] Dong Liu,et al. 3D-printed TiO2-Ti3C2Tx heterojunction/rGO/PDMS composites with gradient pore size for electromagnetic interference shielding and thermal management , 2022, Composites Part A: Applied Science and Manufacturing.
[6] Kun Xu,et al. Three-dimensional printed lithium iron phosphate coated with magnesium oxide cathode with improved areal capacity and ultralong cycling stability for high performance lithium-ion batteries. , 2022, Journal of colloid and interface science.
[7] Han Yang,et al. Direct-ink writing 3D printed energy storage devices: From material selectivity, design and optimization strategies to diverse applications , 2022, Materials Today.
[8] A. Todoroki,et al. 3D Printing of Continuous Fiber Reinforced Polymer Composites: Development, Application, and Prospective , 2022, Chinese Journal of Mechanical Engineering: Additive Manufacturing Frontiers.
[9] Liliang Ouyang,et al. Roadmap for Additive Manufacturing: toward Intellectualization and Industrialization , 2022, Chinese Journal of Mechanical Engineering: Additive Manufacturing Frontiers.
[10] Kun Xu,et al. Novel 3D grid porous Li4Ti5O12 thick electrodes fabricated by 3D printing for high performance lithium-ion batteries , 2022, Journal of Advanced Ceramics.
[11] Xiaolong Li,et al. Directional Freezing Assisted 3D Printing to Solve a Flexible Battery Dilemma: Ultrahigh Energy/Power Density and Uncompromised Mechanical Compliance , 2022 .
[12] J. Pérez-Flores,et al. Development of full ceramic electrodes for lithium-ion batteries via desktop-fused filament fabrication and further sintering , 2021, Applied Materials Today.
[13] H. Pang,et al. Synthesis of 3D printing materials and their electrochemical applications , 2021, Chinese Chemical Letters.
[14] C. Liang,et al. 3D Printing of Graphite Electrode for Lithium‐Ion Battery with High Areal Capacity , 2021, Energy Technology.
[15] G. Cao,et al. A universal strategy towards 3D printable nanomaterial inks for superior cellular high-loading battery electrodes , 2021, Journal of Materials Chemistry A.
[16] Anqiang Pan,et al. 3D printing for rechargeable lithium metal batteries , 2021 .
[17] A. Kannan,et al. Additive manufacturing enabled, microarchitected, hierarchically porous polylactic-acid/lithium iron phosphate/carbon nanotube nanocomposite electrodes for high performance Li-Ion batteries , 2021 .
[18] Junjie Zhao,et al. Direct ink writing preparation of LiFePO4/MWCNTs electrodes with high-areal Li-ion capacity , 2021 .
[19] C. Zhi,et al. 3D printing of reduced graphene oxide aerogels for energy storage devices: A paradigm from materials and technologies to applications , 2021 .
[20] K. Pister,et al. Stencil-printed Lithium-ion micro batteries for IoT applications , 2021 .
[21] Hao Lu,et al. Porous network carbon nanotubes/chitosan 3D printed composites based on ball milling for electromagnetic shielding , 2021 .
[22] M. Pumera,et al. 3D Printed Nanocarbon Frameworks for Li‐Ion Battery Cathodes , 2021, Advanced Functional Materials.
[23] Yanli Hu,et al. 3D Printing of Advanced Lithium Batteries: A Designing Strategy of Electrode/Electrolyte Architectures , 2021, Journal of Materials Chemistry A.
[24] Zheng Hu,et al. Design and Manufacture of 3D-Printed Batteries , 2020 .
[25] Mingchang Zhang,et al. Additive Manufacturing of Stable Energy Storage Devices Using a Multinozzle Printing System , 2020, Advanced Functional Materials.
[26] B. Niu,et al. Recent progresses of 3D printing technologies for structural energy storage devices , 2020, Materials Today Nano.
[27] B. Dunn,et al. 3D Architectures for Batteries and Electrodes , 2020, Advanced Energy Materials.
[28] S. Jun,et al. Binder-assisted electrostatic spray deposition of LiCoO2 and graphite films on coplanar interdigitated electrodes for flexible/wearable lithium-ion batteries , 2020 .
[29] Yong Yang,et al. Recent advances and historical developments of high voltage lithium cobalt oxide materials for rechargeable Li-ion batteries , 2020 .
[30] S. Lanceros-Méndez,et al. Recent advances and future challenges in printed batteries , 2020, Energy Storage Materials.
[31] John Wang,et al. Robust pure copper framework by extrusion 3D printing for advanced lithium metal anodes , 2020 .
[32] Martin Pumera,et al. 3D Printing for Electrochemical Energy Applications. , 2020, Chemical reviews.
[33] Jiajie Liang,et al. 3D printing nanocomposite gel-based thick electrode enabling both high areal capacity and rate performance for lithium-ion battery , 2020, Chemical Engineering Journal.
[34] Yong Tang,et al. Overview on the applications of three-dimensional printing for rechargeable lithium-ion batteries , 2020 .
[35] John Wang,et al. 3D-printed electrodes for lithium metal batteries with high areal capacity and high-rate capability , 2020 .
[36] Jun Ma,et al. High mass loading ultrathick porous Li4Ti5O12 electrodes with improved areal capacity fabricated via low temperature direct writing , 2019, Electrochimica Acta.
[37] Feng Xu,et al. Comparative study on the electrochemical performance of LiFePO4 cathodes fabricated by low temperature 3D printing, direct ink writing and conventional roller coating process , 2019, Ceramics International.
[38] Dou Zhang,et al. 3D‐Printed Microelectrodes with a Developed Conductive Network and Hierarchical Pores toward High Areal Capacity for Microbatteries , 2018, Advanced Materials Technologies.
[39] Xueliang Sun,et al. Toward High Areal Energy and Power Density Electrode for Li-Ion Batteries via Optimized 3D Printing Approach. , 2018, ACS applied materials & interfaces.
[40] Sylvie Grugeon,et al. Highly Loaded Graphite–Polylactic Acid Composite-Based Filaments for Lithium-Ion Battery Three-Dimensional Printing , 2018, Chemistry of Materials.
[41] Bingbing Chen,et al. Reviving lithium cobalt oxide-based lithium secondary batteries-toward a higher energy density. , 2018, Chemical Society reviews.
[42] Jianwei Song,et al. 3D printed separator for the thermal management of high-performance Li metal anodes , 2018 .
[43] J. Lewis,et al. 3D Printing of Customized Li‐Ion Batteries with Thick Electrodes , 2018, Advanced materials.
[44] Xiaogang Han,et al. 3D‐Printed All‐Fiber Li‐Ion Battery toward Wearable Energy Storage , 2017 .
[45] Chee Kai Chua,et al. Emerging 3D‐Printed Electrochemical Energy Storage Devices: A Critical Review , 2017 .
[46] Changyong Liu,et al. Fabrication and Characterization of 3D-Printed Highly-Porous 3D LiFePO4 Electrodes by Low Temperature Direct Writing Process , 2017, Materials.
[47] Yan Zhang,et al. 3D Printed Graphene Based Energy Storage Devices , 2017, Scientific Reports.
[48] Jiangtao Hu,et al. 3D‐Printed Cathodes of LiMn1−xFexPO4 Nanocrystals Achieve Both Ultrahigh Rate and High Capacity for Advanced Lithium‐Ion Battery , 2016 .
[49] J. Lewis,et al. 3D Printing of Interdigitated Li‐Ion Microbattery Architectures , 2013, Advanced materials.
[50] Paul V Braun,et al. High-power lithium ion microbatteries from interdigitated three-dimensional bicontinuous nanoporous electrodes , 2013, Nature Communications.
[51] H. Munakata,et al. Fabrication of micro lithium-ion battery with 3D anode and 3D cathode by using polymer wall , 2012 .
[52] Alvo Aabloo,et al. Modelling electrode material utilization in the trench model 3D-microbattery by finite element analysis , 2010 .