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A coaxial-type pulsed arc plasma doping process for the lithium-ion thin-film electrolyte application

机译:用于锂离子薄膜电解质应用的同轴型脉冲电弧等离子体掺杂工艺

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摘要

A combinatorial lithium-ion thin-film electrolyte deposition process that uses different types of arc plasma sources has been developed for thin-film inorganic complementary electrochromic devices (ECDs). With the coaxial-type pulsed arc plasma doping process, the lithium doping tantalum pentoxide (Ta_2O_5:Li) thin-film electrolyte doped with two different frequencies has been investigated. Although a lower ion conductivity of 9.30 × 10~(-9) S/cm has been obtained with the Ta_2O_5:Li doped with the arc discharge frequency of 1 Hz than the arc discharge frequency of 4 Hz, the ECD has demonstrated a better optical modulation (ΔT) of 58.25%. To analyze the detailed material characteristic, the ion mobility and concentration have also been extracted from the Li drift current by the current-voltage (Ⅰ-Ⅴ) measurement with the isothermal transient ionic current method. The optimal Ta_2O_5:Li doped with the arc discharge frequency of 1 Hz has demonstrated a higher ion mobility of 8.22 × 10~(-10) cm~2/Vs and a lower concentration of 7.07 ⅹ 10~(19)cm~(-3). As a result, the electrolyte with higher ion mobility and lower concentration is more important than the higher ion conductivity for ECD applications.
机译:用于薄膜无机互补电致变色器件(ECDS)开发了使用不同类型电弧等离子体源的组合锂离子薄膜电解质沉积工艺。采用同轴型脉冲电弧等离子体掺杂工艺,研究了掺杂掺杂钽脂肪钽(TA_2O_5:LI)掺杂有两种不同频率的薄膜电解质。尽管使用Ta_2O_5:Li掺杂的较低离子电导率为9.30×10〜(-9)S / cm,但是掺杂的电弧放电频率为1Hz的电弧放电频率,而不是4 Hz的电弧放电频率,因此ECD已经显示出更好的光学调制(ΔT)为58.25%。为了分析详细的材料特性,通过使用等温瞬态离子电流法测量的电流 - 电压(Ⅰ-Ⅴ)测量,也从LI漂移电流提取离子迁移率和浓度。最佳Ta_2O_5:Li掺杂有1 Hz的电弧放电频率,已经显示出8.22×10〜(-10)cm〜2 / vs的更高的离子迁移率和7.07×10〜(19)cm〜( - 3)。结果,具有更高离子迁移率和较低浓度的电解质比ECD应用的更高离子电导率更重要。

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  • 来源
    《Applied Physics Letters》 |2020年第5期|051901.1-051901.4|共4页
  • 作者单位

    Physics Division Institute of Nuclear Energy Research Taoyuan City 32546 Taiwan;

    Physics Division Institute of Nuclear Energy Research Taoyuan City 32546 Taiwan;

    Physics Division Institute of Nuclear Energy Research Taoyuan City 32546 Taiwan;

    Physics Division Institute of Nuclear Energy Research Taoyuan City 32546 Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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