Showing 201 - 220 results of 713 for search '"ion', query time: 0.06s Refine Results
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    A facile approach to nanoarchitectured three-dimensional graphene-based Li–Mn–O composite as high-power cathodes for Li-ion batteries by Zhang, Wenyu, Zeng, Yi, Xu, Chen, Xiao, Ni, Gao, Yiben, Li, Lain-Jong, Chen, Xiaodong, Hng, Huey Hoon, Yan, Qingyu

    Published 2013
    “…We report a facile method to prepare a nanoarchitectured lithium manganate/graphene (LMO/G) hybrid as a positive electrode for Li-ion batteries. The Mn2O3/graphene hybrid is synthesized by exfoliation of graphene sheets and deposition of Mn2O3 in a one-step electrochemical process, which is followed by lithiation in a molten salt reaction. …”
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    Journal Article
  6. 206

    In situ cross-linked carboxymethyl cellulose-polyethylene glycol binder for improving the long-term cycle life of silicon anodes in Li ion batteries by Lee, Dongsoo, Park, Hyunjung, Goliaszewski, Alan, Byeun, Yun-ki, Song, Taeseup, Paik, Ungyu

    Published 2021
    “…To increase the energy density of Li-ion batteries (LIBs), silicon has been widely studied due to its relative abundance and high theoretical specific capacity (∼3572 mAh g–1). …”
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    Journal Article
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    Operando investigation on the fast two-phase transition kinetics of LiFePO4/C composite cathodes with carbon additives for lithium-ion batteries by Shih, Jengywan, Lin, Guanyin, James Li, Ying Jeng, Hung, Tai-Feng, Jose, Rajan, Karuppiah, Chelladurai, Yang, Chun–Chen

    Published 2022
    “…It is due to the higher electronic conductivity (ca. 2.36 × 10−4 S cm−1) and Li+ ion diffusion coefficient (ca. 2.56 × 10−13 cm2 s−1) of LFP/C/VGCF cathode than the other electrodes. …”
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    Article
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    Rational design and mechanical understanding of three-dimensional macro-/mesoporous silicon lithium-ion battery anodes with a tunable pore size and wall thickness by Zuo, X, Wen, Y, Qiu, Y, Cheng, Y-J, Yin, S, Ji, Q, You, Z, Zhu, J, Muller-Buschbaum, P, Ma, L, Bruce, PG, Xia, Y

    Published 2020
    “…Silicon is regarded as one of the most promising next generation lithium-ion battery anodes due to its exceptional theoretical capacity, appropriate voltage profile, and vast abundance. …”
    Journal article
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    In situ metal organic framework (ZIF-8) and Mechanofusion-Assisted MWCNT coating of LiFePO4/C composite material for lithium-ion batteries by Mathur, Priyatrisha, Shih, Jengywan, James Li, Ying Jeng, Hung, Tai-Feng, Thirumalraj, Balamurugan, Kannan Ramaraj, Sayee, Jose, Rajan, Karuppiah, Chelladurai, Yang, Chunchen

    Published 2023
    “…LiFePO4 is one of the industrial, scalable cathode materials in lithium-ion battery production, due to its cost-effectiveness and environmental friendliness. …”
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    Article
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    Humic acid-induced formation of tobermorite upon hydrothermal treatment with municipal solid waste incineration bottom ash and its application for efficient removal of Cu(II) ions by Luo, Hongwei, He, Dongqin, Zhu, Weiping, Wu, Yichao, Chen, Zhitao, Yang, En-Hua

    Published 2019
    “…The formation of tobermorite induced by humic acid (HA) and IBA under hydrothermal condition was explored and its potential application for efficient removal of Cu(II) ions was further investigated. After hydrothermal treatment, the morphology and microstructure of IBA remarkably changed from sheet-like to particle-like, thereby resulting in substantial increases of sorption capacity. …”
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    Journal Article
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    A ternary Fe₁₋ₓS@Porous carbon nanowires/reduced graphene oxide hybrid film electrode with superior volumetric and gravimetric capacities for flexible sodium ion batteries by Liu, Yang, Fang, Yongjin, Zhao, Zhiwei, Yuan, Changzhou, Lou, David Xiong Wen

    Published 2021
    “…Smart construction of ultraflexible electrodes with superior gravimetric and volumetric capacities is still challenging yet significant for sodium ion batteries (SIBs) toward wearable electronic devices. …”
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    Journal Article
  17. 217

    Experimental development of fabry-perot fiber-optic metal ion sensor based on layer-by-layer (chitosan/polystyrene sulfonate) substrate and ionophore (carboxymethyl 18-crown-6). by Yu, Feng Jen.

    Published 2013
    “…In order to assess the feasibility of the sensor application upon metal ions, ionic potassium solution chosen to be the target to simulate heavy metal ions in water, while the chelation compound carboxymethyl 18-crown-6 (CMC) was selected as the sensing element. …”
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    Final Year Project (FYP)
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    1D to 3D hierarchical iron selenide hollow nanocubes assembled from FeSe2@C core-shell nanorods for advanced sodium ion batteries by Fan, Haosen, Yu, Hong, Zhang, Yufei, Guo, Jing, Wang, Zhen, Wang, Hao, Zhao, Ning, Zheng, Yun, Du, Chengfeng, Dai, Zhengfei, Yan, Qingyu, Xu, Jian

    Published 2020
    “…When used as anode materials for sodium ion batteries, the hierarchically hollow nanocubes showed excellent rate performance and ultra-stable long-term cycling stability at a high current density of 10 A g−1, suggesting a good sodium-ion storage material. …”
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    Journal Article