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Atomic insights of electronic states engineering of GaN nanowires by Cu cation substitution for highly efficient lithium ion battery

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摘要 Electronic engineering of gallium nitride(Ga N) is critical for enhancement of its electrode performance.In this work, copper(Cu) cation substituted Ga N(Cu-Ga N) nanowires were fabricated to understand the electronically engineered electrochemical performance for Li ion storage. Cu cation substitution was revealed at atomic level by combination of X-ray photoelectron spectroscopy(XPS), X-ray absorption fine structure(XAFS), density functional theory(DFT) simulation, and so forth. The Cu-Ga N electrode delivered high capacity of 813.2 m A h g^(-1) at 0.1 A g^(-1) after 200 cycles, increased by 66% relative to the unsubstituted Ga N electrode. After 2000 cycles at 10 A g^(-1),the reversible capacity was still maintained at326.7 m A h g^(-1). The DFT calculations revealed that Cu substitution introduced the impurity electronic states and efficient interatomic electron migration, which can enhance the charge transfer efficiency and reduce the Li ion adsorption energy on the Cu-Ga N electrode. The ex-situ SEM, TEM, HRTEM, and SAED analyses demonstrated the reversible intercalation Li ion storage mechanism and good structural stability. The concept of atomic-arrangement-assisted electronic engineering strategy is anticipated to open up opportunities for advanced energy storage applications.
出处 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第4期46-54,共9页 能源化学(英文版)
基金 supported by the National Natural Science Foundation of China(51672144,51572137,5170218121905152,52072196,52002199,52002200) the Major Basic Research Program of Natural Science Foundation of Shandong Province(ZR2020ZD09) the Shandong Provincial Key Research and Development Program(SPKR&DP)(2019GGX102055) the Natural Science Foundation of Shandong Province(ZR2019BEM042 ZR2020QE063,ZR2020MB045) the Innovation and Technology Program of Shandong Province(2020KJA004) the Innovation Pilot Project of Integration of Science,Education and Industry of Shandong Province(2020KJC-CG04) the Guangdong Basic and Applied Basic Research Foundation(019A15151109332020A1515111086,2020A1515110219) the Shandong Provincial Universities Young Innovative Talent Incubation ProgramInorganic Non-metallic Materials Research and Innovation Team,and Taishan Scholars Program of Shandong Province(ts201511034)。
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