• Title/Summary/Keyword: $FePO_4$

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Improved Cycle Performance of Sulfur-Doped LiFePO4 Material at High Temperatures

  • Lee, Seung-Byung;Cho, Seung-Hyun;Aravindan, Vanchiappan;Kim, Hyun-Soo;Lee, Yun-Sung
    • Bulletin of the Korean Chemical Society
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    • v.30 no.10
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    • pp.2223-2226
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    • 2009
  • Pristine and sulfur-doped (LiFe$PO_{3.98}S_{0.03}$) lithium iron phosphates were synthesized by a sol-gel method. The XRD pattern of the prepared materials suggested an orthorhombic structure with a Pnma space group and an absence of impurities. The Li/LiFe$PO_4$ or LiFe$PO_{3.98}S_{0.03}$ cells were employed for cycling studies at various temperatures (25, 50 and $60\;{^{\circ}C}$). In all cases, the Li/LiFe$PO_{3.98}S_{0.03}$ cell showed an improved performance with a stable discharge behavior of ~155 mA$hg^{-1}$. Nevertheless, pristine LiFeP$O_4$ cells presented poor discharge behavior at elevated temperatures, especially $60\;{^{\circ}C}$.

Synthesis of $LiFePO_4$ by solid-state reaction using organic acids as carbon sources (카본소스로서 유기산을 이용한 $LiFePO_4$의 고상 합성법)

  • Kam, Dae-Woong;Kim, Ke-Tack;Kim, Hyun-Soo;Son, Young-Guk
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.11a
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    • pp.279-279
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    • 2009
  • $LiFePO_4$는 낮은 전기전도도로 인하여 전이금속의 도핑과 카본코팅으로 전기화학적 특성을 향상시키려는 연구가 많이 되어 왔다. 또한 다양한 합성법으로 $LiFePO_4$의 입자사이즈를 최적화 하기 위해 많은 연구가 진행중이다. 특히 고상 합성법은 결정의 미세화가 가능하고, 상온에서 쉽고 용이하게 원소간의 합금화 및 화학반응을 유도하는 등의 장점으로 인해 가장 널리 사용하고 있는 합성법중 하나이다. 이번 연구에서도 고상합성법을 사용하여 $LiFePO_4$를 합성했으며, 카본소스로서 카르복시산등의 유기산을 사용하여 코팅을 시도해 보았다. 이렇게 합성된 $LiFePO_4$의 물리적 측정을 통하여 입사의 형상 및 크기를 관찰하였고, 하프셀을 구성하여 전기화학적 특성을 확인하였다.

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Improving Electrochemical Properties of LiFePO4 by Doping with Gallium

  • Nguyen, Van Hiep;Park, Ju-Young;Gu, Hal-Bon
    • Transactions on Electrical and Electronic Materials
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    • v.15 no.6
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    • pp.320-323
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    • 2014
  • Ga-doped $LiFePO_4$ cathode materials were synthesized using a hydrothermal method. The microstructural characteristics and electrochemical performances were systematically investigated using field emission scanning electron microscopy, high-resolution X-ray diffraction, energy dispersive X-ray spectroscopy, charge-discharge cycling, cyclic voltammetry, and electrochemical impedance spectroscopy. Among the as-prepared samples, $LiFe_{0.96}Ga_{0.04}PO_4$ demonstrates the best electrochemical properties in terms of discharge capacity, electrochemical reversibility, and cycling performance with an initial discharge capacity of $125mAh\;g^{-1}$ and high lithium ion diffusion coefficient of $1.38{\times}10^{-14}cm^2s^{-1}$ (whereas for $LiFePO_4$, these were $113mAh\;g^{-1}$ and $8.09{\times}10^{-15}cm^2\;s^{-1}$, respectively). The improved electrochemical performance can be attributed to the facilitation of Li+ ion effective diffusion induced by $Ga^{3+}$ substitution.

Model Prediction and Experiments for the Electrode Design Optimization of LiFePO4/Graphite Electrodes in High Capacity Lithium-ion Batteries

  • Yu, Seungho;Kim, Soo;Kim, Tae Young;Nam, Jin Hyun;Cho, Won Il
    • Bulletin of the Korean Chemical Society
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    • v.34 no.1
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    • pp.79-88
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    • 2013
  • $LiFePO_4$ is a promising active material (AM) suitable for use in high performance lithium-ion batteries used in automotive applications that require high current capabilities and a high degree of safety and reliability. In this study, an optimization of the electrode design parameters was performed to produce high capacity lithium-ion batteries based on $LiFePO_4$/graphite electrodes. The electrode thickness and porosity (AM density) are the two most important design parameters influencing the cell capacity. We quantified the effects of cathode thickness and porosity ($LiFePO_4$ electrode) on cell performance using a detailed one-dimensional electrochemical model. In addition, the effects of those parameters were experimentally studied through various coin cell tests. Based on the numerical and experimental results, the optimal ranges for the electrode thickness and porosity were determined to maximize the cell capacity of the $LiFePO_4$/graphite lithium-ion batteries.

Electrochemical Properties of $LiFePO_4$ Cathode Materials by Hydrothermal Method (수열법을 이용한 $LiFePO_4$의 전기화학적 특성)

  • Jin, En-Mei;Jun, Dea-Gue;Han, Zhen-Ji;Beak, Hyoung-Ryoul;Gu, Hal-Bon;Park, Bok-Kee;Son, Myung-Mo
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2006.06a
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    • pp.384-385
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    • 2006
  • Olivine $LiFePO_4$ cathode materials were synthesized by hydrothermal reaction, and coated by carbon black. The powders were characterized by the X-ray diffraction. $LiFePO_4$/Li cells were characterized electrochemically by charge/discharge experiments and ac impedance spectroscopy. The result showed the discharge capacity of $LiFePO_4$/Li cell was 133 mAh/g at the first cycle, and 128 mAh/g at the 30th cycle, respectively.

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Synthesis and Electrochemical Properties of Li[Fe0.9Mn0.1]PO4 Nanofibers as Cathode Material for Lithium Ion Battery by Electrospinning Method (전기방사를 이용한 리튬 이차전지용 양극활물질 Li[Fe0.9Mn0.1]PO4 나노 섬유의 합성 및 전기화학적 특성)

  • Kim, Cheong;Kang, Chung-Soo;Son, Jong-Tae
    • Journal of the Korean Electrochemical Society
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    • v.15 no.2
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    • pp.95-100
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    • 2012
  • $LiFePO_4$ is an attractive cathode material due to its low cost, good cyclability and safety. But it has low ionic conductivity and working voltage impose a limitation on its application for commercial products. In order to solve these problems, the iron($Fe^{2+}$)site in $LiFePO_4$ can be substituted with other transition metal ions such as $Mn^{2+}$ in pursuance of increase the working voltage. Also, reducing the size of electrode materials to nanometer scale can improve the power density because of a larger electrode-electrolyte contact area and shorter diffusion lengths for Li ions in crystals. Therefore, we chose electrospinning as a general method to prepare $Li[Fe_{0.9}Mn_{0.1}]PO_4$ to increase the surface area. Also, there have been very a few reports on the synthesis of cathode materials by electrospinning method for Lithium ion batteries. The morphology and nanostructure of the obtained $Li[Fe_{0.9}Mn_{0.1}]PO_4$ nanofibers were characterized using scanning electron microscopy(SEM). X-ray diffraction(XRD) measurements were also carried out in order to determine the structure of $Li[Fe_{0.9}Mn_{0.1}]PO_4$ nanofibers. Electrochemical properties of $Li[Fe_{0.9}Mn_{0.1}]PO_4$ were investigated with charge/discharge measurements, electrochemical impedance spectroscopy measurements(EIS).

Preliminary Study on the Regeneration of Spent Electro-decontamination Solution Using Phosphoric Acid and Oxalic Acid

  • Naznin, Marufa;Septian, Ardie;Shin, Won Sik
    • Proceedings of the Korean Radioactive Waste Society Conference
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    • 2015.10a
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    • pp.465-466
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    • 2015
  • In this study, different amount of (fe(0)) were dissolve into different strength of phosphoric ($H_3PO_4$) acid and the optimum solubility was observed at 0.89M Fe(0) into 4M of $H_3PO_4$ acid. Different concentration of oxalic acid was added to determine the optimum precipitated condition. The dissolution kinetics of Fe(0) into $H_3PO_4$ acid was investigated at $40-50^{\circ}C$. The optimum Fe-oxalate precipitate was dried and thermal decomposition using DSC-TG was conducted. Approximately 52 wt(%) of oxalic acid was removed at $300^{\circ}C$. Iron oxides such as magnetite and hematite that may be formed on the surface of nuclear waste were also dissolved into the $H_3PO_4$ acid and the optimum solubility for magnetite is 0.005M while that for hematite is 0.02M in 8M $H_3PO_4$ acid, respectively.

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Li Ion Diffusivity and Rate Performance of the LiFePO4 Modified by Cr Doping

  • Park, Chang-Kyoo;Park, Sung-Bin;Shin, Ho-Chul;Cho, Won-Il;Jang, Ho
    • Bulletin of the Korean Chemical Society
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    • v.32 no.1
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    • pp.191-195
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    • 2011
  • This study reports the root cause of the improved rate performance of $LiFePO_4$ after Cr doping. By measuring the chemical diffusion coefficient of lithium ($D_{Li}$) using cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS), the correlation between the electrochemical performance of $LiFePO_4$ and Li diffusion is acquired. The diffusion constants for $LiFePO_4$/C and $LiFe_{0.97}Cr_{0.03}PO_4$/C measured from CV are $2.48{\times}10^{-15}$ and $4.02{\times}10^{-15}cm^2s^{-1}$, respectively, indicating significant increases in diffusivity after the modification. The difference in diffusivity is also confirmed by EIS and the $D_{Li}$ values obtained as a function of the lithium content in the cathode. These results suggest that Cr doping facilitates Li ion diffusion during the charge-discharge cycles. The low diffusivity of the $LiFePO_4$/C leads to the considerable capacity decline at high discharge rates, while high diffusivity of the $LiFe_{0.97}Cr_{0.03}PO_4$/C maintains the initial capacity, even at high C-rates.

Synthesis and Electrochemical Properties of LiFePO4 Cathode Material obtained by Electrospinning Method (전기방사법을 이용한 LiFePO4 양극 활물질의 합성 및 전기화학적 특성)

  • Lee, Seung-Byung;Cho, Seung-Hyun;Park, Sun-Il;Lee, Wan-Jin;Lee, Yun-Sung
    • Journal of the Korean Electrochemical Society
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    • v.11 no.4
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    • pp.268-272
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    • 2008
  • $LiFePO_4$ material was synthesized by electrospinning method to obtain optimal particle size($50{\sim}100\;nm$) without carbon coating or ball milling. This material showed an orthorthombic structure with Pnma space group without any impurities, such as FeP or $Fe_2P$, in the XRD pattern. The particle morphology and particle shape were observed by SEM analysis. Li/$LiFePO_4$ cell showed a high initial discharge capacity of 135 mAh/g, at current density of $0.1\;mA/cm^2$ with a cut-off voltage of 2.8 to 4.0V. This cell exhibited a perfect cycle performance over 99.9% cycle retention rate up to 50 cycles.

Electrochemical Properties and Thermal Stability of LiNi0.8Co0.15 Al0.05O2-LiFePO4 Mixed Cathode Materials for Lithium Secondary Batteries

  • Kim, Hyun-Ju;Jin, Bong-Soo;Doh, Chil-Hoon;Kim, Hyun-Soo
    • Journal of Electrochemical Science and Technology
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    • v.3 no.2
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    • pp.63-67
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    • 2012
  • We prepared various $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2-LiFePO_4$ mixed-cathode electrodes by changing the content of $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ and $LiFePO_4$ used, and we analyzed the electrochemical characteristics of the cathodes. We found that the reversible specific capacity of the cathodes increased and that the capacity retention ratios of the cathodes decreased during cycling as the content of $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2$ increased. Conversely, we found that although the reversible specific capacity of the cathodes decreased because of the material composition, the cycle property of the cathodes increased when the $LiFePO_4$ content increased. We analyzed the thermal stability of the $LiNi_{0.8}Co_{0.15}Al_{0.05}O_2-LiFePO_4$ mixed-material cathodes by differential scanning calorimetry and found that it increased as the $LiFePO_4$ content increased.