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Lithium intercalation/de-intercalation behavior of a composite Sn/C thin film fabricated by magnetron sputtering 被引量:8
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作者 ZHAO Lingzhi HU Shejun +2 位作者 LI Weishan LI Liming HOU Xianhua 《Rare Metals》 SCIE EI CAS CSCD 2008年第5期507-512,共6页
A tin film of 320 nm in thickness on Cu foil and its composite film with graphite of-50 nm in thickness on it were fabricated by magnetron sputtering. The surface morphology, composition, surface distributions of allo... A tin film of 320 nm in thickness on Cu foil and its composite film with graphite of-50 nm in thickness on it were fabricated by magnetron sputtering. The surface morphology, composition, surface distributions of alloy elements, and lithium intercalation/de-intercalation behaviors of the fabricated films were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), electron probe microanalyzer (EPMA), X-ray photoelectron spectroscopy (XPS), inductively coupled plasma atomic emission spectrometry (ICP), cyclic voltammetry (CV), and galvanostatic charge/discharge (GC) measurements. It is found that the lithium intercalation/de-intercalation behavior of the Sn film can be significantly improved by its composite with graphite. With cycling, the discharge capacity of the Sn film without composite changes from 570 mAh/g of the 2nd cycle to 270 mAh/g of the 20th cycle, and its efficiency for the discharge and charge is between 90% and 95%. Nevertheless, the discharge capacity of the composite Sn/C film changes from 575 mAh/g of the 2nd cycle to 515 mAh/g of the 20th cycle, and its efficiency for the discharge and charge is between 95% and 100%. The performance improvement of tin by its composite with graphite is ascribed to the retardation of the bulk tin cracking from volume change during lithium intercalation and de-intercalation, which leads to the pulverization of tin. 展开更多
关键词 lithium-ion battery ANODE magnetron sputtering composite film lithium intercalation/de-intercalation
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Non-stoichiometric CoS_(1.097) nanoparticles prepared from CoAl-layered double hydroxide and MOF template as cathode materials for aluminum-ion batteries 被引量:2
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作者 Ruiyuan Zhuang Guo Miao +3 位作者 Zengliang Huang Qianqian Zhang Jian-Chun Wu Jianhong Yang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第3期639-643,共5页
As a main force in the energy evolution,lithium-ion batteries(LIBs)have been extensively studied in recent decades and are widely used in energy storage and portable electronic products as a result of their advantages... As a main force in the energy evolution,lithium-ion batteries(LIBs)have been extensively studied in recent decades and are widely used in energy storage and portable electronic products as a result of their advantages of high working voltage and long cycle performance. 展开更多
关键词 Aluminum ion batteries Cathode Defects de-intercalation Electrochemical performance
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Electrochemical and structural evolution of structured V_(2)O_(5) microspheres during Li-ion intercalation
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作者 Sul Ki Park Puritut Nakhanivej +6 位作者 Jeong Seok Yeon Kang Ho Shin Wesley M.Dose Michael De Voider Jin Bae Lee Hae Jin Kim Ho Seok Park 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第4期108-113,共6页
With the development of stable alkali metal anodes,V_(2)O_(5) is gaining traction as a cathode material due to its high theoretical capacity and the ability to intercalate Li,Na and K ions.Herein,we report a method fo... With the development of stable alkali metal anodes,V_(2)O_(5) is gaining traction as a cathode material due to its high theoretical capacity and the ability to intercalate Li,Na and K ions.Herein,we report a method for synthesizing structured orthorhombic V_(2)O_(5) microspheres and investigate Li intercalation/deintercalation into this material.For industry adoption,the electrochemical behavior of V_(2)O_(5) as well as structural and phase transformation attributing to Li intercalation reaction must be further investigated.Our synthesized V_(2)O_(5) microspheres consisted of small primary particles that were strongly joined together and exhibited good cycle stability and rate capability,triggered by reversible volume change and rapid Li ion diffusion.In addition,the reversibility of phase transformation(a,e,d,c and xLixV_(2)O_(5))and valence state evolution(5+,4+,and 3.5+)during intercalation/de-intercalation were studied via in-situ X-ray powder diffraction and X-ray absorption near edge structure analyses. 展开更多
关键词 Lithium ion batteries Vanadium pentoxide(V2O5) In-situ analysis Phase transformation Intercalation/de-intercalation
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