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Discharged Titanium Oxide Nanotube Arrays Coated with Ni as a High‐Performance Lithium Battery Electrode Material

Junjun ChenFaculty of Materials Science and Engineering Kunming University of Science and Technology Kunming 650093 ChinaTaofang ZengFaculty of Materials Science and Engineering Kunming University of Science and Technology Kunming 650093 ChinaShiying ChangState Key Laboratory of Advanced Technology for Comprehensive Utilization of Platinum Metals Kunming 650093 ChinaDong FangFaculty of Materials Science and Engineering Kunming University of Science and Technology Kunming 650093 ChinaJianhong YiFaculty of Materials Science and Engineering Kunming University of Science and Technology Kunming 650093 ChinaMing XieState Key Laboratory of Advanced Technology for Comprehensive Utilization of Platinum Metals Kunming 650093 ChinaShavkat MamatkulovDepartment of Natural and Mathematic Sciences Turin Polytechnic University in Tashkent Tashkent 100095 UzbekistanOlim RuzimuradovDepartment of Natural and Mathematic Sciences Turin Polytechnic University in Tashkent Tashkent 100095 UzbekistanTao HanChongqing Key Laboratory of Materials Surface Interface Science Chongqing University of Arts and Sciences Chongqing 402160 China
Energy Technologyjournal2022en
ABI

Аннотация

Transition metal oxides are in high demand as electrode materials for alkali metal‐ion batteries due to high theoretical capacity. However, low electron transfer kinetics and slow ion migration lead to poor cycle stability and rate performance of the transition metal oxide electrode. Herein, TiO 2 nanotube arrays coated with Ni (Ni/TiO 2 NTs) are fabricated by using predischarge‐electrodeposition method and subsequent calcination under H 2 /N 2 . In the Ni/TiO 2 NTs composite, TiO 2 NTs and Ni nanoparticles play the role of framework and coating layer, respectively. The as‐prepared Ni/TiO 2 NTs composites have a high specific surface area and a unique tubular structure, which facilitates the quick penetration of the electrolyte into the tubes and reduces the lithium ions’ diffusion distance. The incorporation of Ti 3+ and metallic nickel in the hydrogenated TiO 2 NTs also increases conductivity. Besides, the spin‐polarized surface capacitance of Ni 0 nanoparticles causes the magnetic changes that generate an extra lithium‐ion storage capacity. The Ni/TiO 2 NTs composite electrode maintains a high capacity of 507 mA h g −1 after 100 cycles at 0.2 A g −1 . Here, the predischarge‐electrodeposition provides a new route for the preparation of composite materials.

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