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Theoretical and Experimental Sets of Choice Anode/Cathode Architectonics for High-Performance Full-Scale LIB Built-up Models

Overview
Journal Nanomicro Lett
Publisher Springer
Date 2021 Jun 17
PMID 34138059
Citations 4
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Abstract

To control the power hierarchy design of lithium-ion battery (LIB) built-up sets for electric vehicles (EVs), we offer intensive theoretical and experimental sets of choice anode/cathode architectonics that can be modulated in full-scale LIB built-up models. As primary structural tectonics, heterogeneous composite superstructures of full-cell-LIB (anode//cathode) electrodes were designed in closely packed flower agave rosettes TiO@C (FRTO@C anode) and vertical-star-tower LiFePO@C (VST@C cathode) building blocks to regulate the electron/ion movement in the three-dimensional axes and orientation pathways. The superpower hierarchy surfaces and multi-directional orientation components may create isosurface potential electrodes with mobile electron movements, in-to-out interplay electron dominances, and electron/charge cloud distributions. This study is the first to evaluate the hotkeys of choice anode/cathode architectonics to assemble different LIB-electrode platforms with high-mobility electron/ion flows and high-performance capacity functionalities. Density functional theory calculation revealed that the FRTO@C anode and VST-(i)@C cathode architectonics are a superior choice for the configuration of full-scale LIB built-up models. The integrated FRTO@C//VST-(i)@C full-scale LIB retains a huge discharge capacity (~ 94.2%), an average Coulombic efficiency of 99.85% after 2000 cycles at 1 C, and a high energy density of 127 Wh kg, thereby satisfying scale-up commercial EV requirements.

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References
1.
Yang S, Feng X, Zhi L, Cao Q, Maier J, Mullen K . Nanographene-constructed hollow carbon spheres and their favorable electroactivity with respect to lithium storage. Adv Mater. 2010; 22(7):838-42. DOI: 10.1002/adma.200902795. View

2.
Wu X, Jiang L, Cao F, Guo Y, Wan L . LiFePO Nanoparticles Embedded in a Nanoporous Carbon Matrix: Superior Cathode Material for Electrochemical Energy-Storage Devices. Adv Mater. 2023; 21(25-26):2710-2714. DOI: 10.1002/adma.200802998. View

3.
Kobayashi S, Kuwabara A, Fisher C, Ukyo Y, Ikuhara Y . Microscopic mechanism of biphasic interface relaxation in lithium iron phosphate after delithiation. Nat Commun. 2018; 9(1):2863. PMC: 6054635. DOI: 10.1038/s41467-018-05241-1. View

4.
Lee D, Lee B, Sinha A, Park J, Kim M, Park J . Engineering Titanium Dioxide Nanostructures for Enhanced Lithium-Ion Storage. J Am Chem Soc. 2018; 140(48):16676-16684. DOI: 10.1021/jacs.8b09487. View

5.
Poizot P, Laruelle S, Grugeon S, Dupont L, Tarascon J . Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries. Nature. 2000; 407(6803):496-9. DOI: 10.1038/35035045. View