Transparent flexible energy storage devices are considered as important chains in the next‐generation, which are able to store and supply energy for electronic devices. Here, aluminum‐doped zinc oxide (AZO) nanorods (NRs) and nickel oxide (NiO)‐coated AZO NRs on muscovites are fabricated by a radio frequency (RF) magnetron sputtering deposition method. Interestingly, AZO NRs and AZO/NiO NRs are excellent electrodes for energy storage application with high optical transparency, high conductivity, large surface area, stability under compressive and tensile strain down to a bending radius of 5 mm with 1000 bending cycles. The obtained symmetric solid‐state supercapacitors based on these electrodes exhibit good performance with a large areal specific capacitance of 3.4 mF cm−2, long cycle life 1000 times, robust mechanical properties, and high chemical stability. Furthermore, an AZO/NiO//Zn battery based on these electrodes is demonstrated, yielding a discharge capacity of 195 mAh g−1 at a current rate of 8 A g−1 and a discharge capacity of over 1000 cycles with coulombic efficiency to 92%. These results deliver a concept of opening a new opportunity for future applications in transparent flexible energy storage.
https://doi.org/10.1002/smll.202000020
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2020年6月30日 星期二
2020年5月4日 星期一
High-Performance Rechargeable Aluminum–Selenium Battery with a New Deep Eutectic Solvent Electrolyte: Thiourea-AlCl3
Aluminum–sulfur batteries (ASBs) have attracted substantial interest due to their high theoretical specific energy density, low cost, and environmental friendliness, while the traditional sulfur cathode and ionic liquid have very fast capacity decay, limiting cycling performance because of the sluggishly electrochemical reaction and side reactions with the electrolyte. Herein, we demonstrate, for the first time, excellent rechargeable aluminum–selenium batteries (ASeBs) using a new deep eutectic solvent, thiourea-AlCl3, as an electrolyte and Se nanowires grown directly on a flexible carbon cloth substrate (Se NWs@CC) by a low-temperature selenization process as a cathode. Selenium (Se) is a chemical analogue of sulfur with higher electronic conductivity and lower ionization potential that can improve the battery kinetics on the sluggishly electrochemical reaction and the reduction of the polarization where the thiourea-AlCl3 electrolyte can stabilize the side reaction during the reversible conversion reaction of Al–Se alloying processes during the charge–discharge process, yielding a high specific capacity of 260 mAh g–1 at 50 mA g–1 and a long cycling life of 100 times with a high Coulombic efficiency of nearly 93% at 100 mA g–1. The working mechanism based on the reversible conversion reaction of the Al–Se alloying processes, confirmed by the ex situ Raman, XRD, and XPS measurements, was proposed. This work provides new insights into the development of rechargeable aluminum–chalcogenide (S, Se, and Te) batteries
2020年4月16日 星期四
Randles–Sevcik equation 計算離子擴散係數
在循環伏安法中,Randles–Sevcik方程描述了掃描速率對峰值電流ip的影響。對於簡單的氧化還原反應,ip不僅取決於電活性物質的濃度和擴散特性,還取決於掃描速率。[1]
i p = 0.4463 n FAC(nFvD / RT)1/2
或者,如果溶液溫度為25°C:[2]
ip = 268600 n 3/2 AD 1/2 Cv 1/2
ip =曲線鋒上最大電流(安培)
n =氧化還原中轉移的電子數
A =電極面積,單位為cm2
F = C mol-1中的法拉第常數
D =擴散係數,單位為cm2 / s
C =濃度(摩爾/立方厘米)
ν=掃描速率,單位V / s (計算時切記不要使用mV)
R = VC K-1 mol-1中的氣體常數
T =以K為單位的溫度
ip以更快的電壓掃描速率增加。重要的是要記住,電流i是每單位時間的電荷(或通過的電子)。因此,在更快的電壓掃描速率下,每單位時間傳遞的電荷會更大,因此ip會增加,而電荷的總量是相同的。
用途
使用由該方程式定義的關係,可以確定電化學活性物質的擴散係數。對於已知(或可以估計)擴散係數的物種,ip相對於ν1/ 2的圖的斜率可用於計算其他參數 如電極面積
2020年3月7日 星期六
如何將word中的Endnote Citations與 Bibliography複製進另一個word檔?
首先要先複製該段內文(複製的操作需建立在word有安裝endnote情況下)
然後再貼上至另一個word檔(貼上需保留功能變數)
點選Update Citations and Bibliography
如此內文中的Citations 和 尾端的Bibliography (Reference) 會自動更新。
2020年2月7日 星期五
新材料電池理論容量/理論能量密度計算
以鎂碘電池為例
The Gibbs formation energy of MgI2 at standard conditions (298 K, 1 atm) can be calculated (data from NIST webbook)




The Gibbs formation energy of MgI2 at standard conditions (298 K, 1 atm) can be calculated (data from NIST webbook)

Complete I2 reduction is accompanied by 2 e− transfer per
. Therefore, the theoretical capacity of I2 is
. Therefore, the theoretical capacity of I2 is
The electromotive force (e.m.f.) of the Mg/I2 battery is

The theoretical energy density of I2 cathode is

The theoretical energy density of the Mg/I2 battery based on the total electrode mass is
2020年1月1日 星期三
2019年12月6日 星期五
Energy Storage in Nanomaterials – Capacitive, Pseudocapacitive, or Battery-like? (ACS Nano 如何區分電池還是電容行為?)
Energy Storage in Nanomaterials – Capacitive, Pseudocapacitive, or Battery-like?
原文連結https://pubs.acs.org/doi/full/10.1021/acsnano.8b01914
原文連結https://pubs.acs.org/doi/full/10.1021/acsnano.8b01914
2019年11月21日 星期四
Biologic VSP系列校正方法
1.前置步驟
確認全部頻道上的實驗都停止
拔掉全部頻道線
2.Tools > channels calibration
3.這時候會出現警告視窗,點擊是(Y)
4.點擊calibrate
5.確認全部頻道線都有拔掉,就點擊是(Y)
6.全部程序跑完所有訊號應該都是綠色,如果有別的顏色請聯繫廠商工程師
2019年10月30日 星期三
[分享] Orgin / 3D 作圖系列匯總
該匯總分享了科學研究常用的 Orgin 軟體與 3D 作圖等方法訣竅
連結網址: https://mp.weixin.qq.com/s/z7YvOzGyAbMQK6_y8eSBIg?fbclid=IwAR2sKVbUyVDgNDcSAO5UFSE7iOXwAxFQoalGF68--CMB8L8rEkF76Jn_qfA
連結網址: https://mp.weixin.qq.com/s/z7YvOzGyAbMQK6_y8eSBIg?fbclid=IwAR2sKVbUyVDgNDcSAO5UFSE7iOXwAxFQoalGF68--CMB8L8rEkF76Jn_qfA
2019年9月30日 星期一
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