Artemis參數代號對照表
| 定義參數名字 參數代號 擬合代號 |
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Artemis參數代號對照表
| 定義參數名字 參數代號 擬合代號 |
|
首先進入Endnote output style網頁
https://endnote.com/downloads/styles/?wpv_aux_current_post_id=12829&wpv_view_count=12764-TCPID12829
下載全部的style (Download all styles) 或是挑選想要的期刊style
下載好後解壓縮至endnote 的style資料夾,
以EndNote X8為例,style資料夾路徑如下: OS (C:)> Program Files(x86)> EndNote X8>Styles
經EC-Lab EIS成功擬合結果可得下表
藍色框框為deviation (dev)
紅色框框為 error ratio ( X2/ I Z I )
一般來說,dev偏差值要<1,但超過5個elements的fitting, 後面elements 的dev都可以容許比較大一點,以這範例來說R2與R3 略大於1是OK的。
而 error ratio ( X2/ I Z I ) <0.1。
一般在擬合時,會先看dev值是否<1,在查核 error ratio。
官方Youtube頻道參考影片:(影片標題及連結)
Description of the fitting window – ZFit tutorial, part.4 - BioLogic
Tips and tricks - ZFit tutorial, part.5 - BioLogic
ZSim and ZFit as learning tools. Part V – How to choose the proper equivalent circuit?
ZSim and ZFit as learning tools. Part VII – Equivalent circuits identifiability
1.基礎知識篇:
The rechargeable aluminum-ion battery (AIB) is a promising candidate for next-generation high-performance batteries, but its cathode materials require more development to improve their capacity and cycling life. We have demonstrated the growth of MoSe2 three-dimensional helical nanorod arrays on a polyimide substrate by the deposition of Mo helical nanorod arrays followed by a low-temperature plasma-assisted selenization process to form novel cathodes for AIBs. The binder-free 3D MoSe2-based AIB shows a high specific capacity of 753 mAh g–1 at a current density of 0.3 A g–1 and can maintain a high specific capacity of 138 mAh g–1 at a current density of 5 A g–1 with 10 000 cycles. Ex situ Raman, XPS, and TEM characterization results of the electrodes under different states confirm the reversible alloying conversion and intercalation hybrid mechanism during the discharge and charge cycles. All possible chemical reactions were proposed by the electrochemical curves and characterization. Further exploratory works on interdigital flexible AIBs and stretchable AIBs were demonstrated, exhibiting a steady output capacity under different bending and stretching states. This method provides a controllable strategy for selenide nanostructure-based AIBs for use in future applications of energy-storage devices in flexible and wearable electronics.
https://doi.org/10.1021/acsnano.0c02831