An integrated micro-chip for cell array positioning, in-situ impedance measurement and electroperation

Author(s):  
Xiaoliang Guo ◽  
Rong Zhu
The Analyst ◽  
2015 ◽  
Vol 140 (19) ◽  
pp. 6571-6578 ◽  
Author(s):  
Xiaoliang Guo ◽  
Rong Zhu ◽  
Xianli Zong

A micro-chip integrating cell positioning with in situ, real-time and long-time impedance measurement on a single cell using nano-modified measuring electrodes.


Author(s):  
Justin Gullotta ◽  
Lakshmi Krishnan ◽  
Dylan Share ◽  
Daniel Walczyk ◽  
Raymond Puffer

The most critical step in high temperature proton exchange membrane (PEM) MEA manufacturing is sealing of the membrane between the two electrodes. This sealing process is typically conducted using a precision hydraulic thermal press. In order to achieve cost-effective high-volume MEA manufacturing, it is important to reduce the variability in MEA performance due to variations in incoming material properties and dimensions, and to reduce the unit process cycle time. This paper explains the application of real time adaptive process controls (APC) combined with effective in-situ diagnostics during the MEA sealing process to achieve greater uniformity and performance of high temperature PEM MEAs. The in-situ impedance measurement is carried out in a precision thermal press using a milliohmmeter by reading the complex impedance of the MEA at 1 kHz as the components of the MEA are sealed. This signal is then used to adjust the pressing process parameters in real time to achieve more uniform MEA performance. An experiment was carried out in an attempt to identify the impedance parameter which correlated most closely with the MEA’s future performance. Using these impedance parameters during pressing, we are able to reliably produce MEAs using the real time APC technique that perform consistently in a single cell test fixture with more than a 50% reduction in pressing time.


Lab on a Chip ◽  
2013 ◽  
Vol 13 (7) ◽  
pp. 1316 ◽  
Author(s):  
Yingru Liu ◽  
Brett Kirkland ◽  
James Shirley ◽  
Zhibin Wang ◽  
Peipei Zhang ◽  
...  

RSC Advances ◽  
2017 ◽  
Vol 7 (20) ◽  
pp. 12098-12102 ◽  
Author(s):  
Xiaoyan Cui ◽  
Tingjing Hu ◽  
Jingshu Wang ◽  
Junkai Zhang ◽  
Rui Zhao ◽  
...  

The charge transport behavior of barium fluoride nanocrystals has been investigated by in situ impedance measurement up to 23 GPa.


2020 ◽  
Vol 117 (45) ◽  
pp. 27906-27915
Author(s):  
Sungbong Kim ◽  
Boram Lee ◽  
Jonathan T. Reeder ◽  
Seon Hee Seo ◽  
Sung-Uk Lee ◽  
...  

Soft microfluidic systems that capture, store, and perform biomarker analysis of microliter volumes of sweat, in situ, as it emerges from the surface of the skin, represent an emerging class of wearable technology with powerful capabilities that complement those of traditional biophysical sensing devices. Recent work establishes applications in the real-time characterization of sweat dynamics and sweat chemistry in the context of sports performance and healthcare diagnostics. This paper presents a collection of advances in biochemical sensors and microfluidic designs that support multimodal operation in the monitoring of physiological signatures directly correlated to physical and mental stresses. These wireless, battery-free, skin-interfaced devices combine lateral flow immunoassays for cortisol, fluorometric assays for glucose and ascorbic acid (vitamin C), and digital tracking of skin galvanic responses. Systematic benchtop evaluations and field studies on human subjects highlight the key features of this platform for the continuous, noninvasive monitoring of biochemical and biophysical correlates of the stress state.


Batteries ◽  
2021 ◽  
Vol 7 (4) ◽  
pp. 76
Author(s):  
Jonghyeon Kim ◽  
Julia Kowal

In this paper, a method for monitoring SoC of a lithium-ion battery cell through continuous impedance measurement during cell operation is introduced. A multi-sine signal is applied to the cell operating current, and the cell SoH and SoC can be simultaneously monitored via impedance at each frequency. Unlike existing studies in which cell impedance measurement is performed ex situ through EIS equipment, cell state estimation is performed in situ. The measured impedance takes into account cell temperature and cell SoH, enabling accurate SoC estimation. The measurement system configured for the experiment and considerations for the selection of measurement parameters are described, and the accuracy of cell SoC estimation is presented.


Talanta ◽  
2021 ◽  
pp. 122401
Author(s):  
Zhen Zhu ◽  
Yingying Wang ◽  
Ruobo Peng ◽  
Pan Chen ◽  
Yangye Geng ◽  
...  

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