Low Voltage Organic Devices with High-k TiOxNy and PMMA Dielectrics for Future Application on Flexible Electronics

2019 ◽  
Vol 39 (1) ◽  
pp. 455-460 ◽  
Author(s):  
Vinicius R. Zanchin ◽  
Marco Roberto Cavallari ◽  
Fernando J. Fonseca ◽  
Katia F. Albertin ◽  
Inés Pereyra ◽  
...  
Author(s):  
Ji Yeon Lee ◽  
Haifeng Zheng ◽  
Kenton M. Sanders ◽  
Sang Don Koh

We characterized the two types of voltage-dependent inward currents in murine antral SMC. The HVA and LVA inward currents were identified when cells were bathed in Ca2+-containing physiological salt solution. We examined whether the LVA inward current was due to: 1) T-type Ca2+ channels, 2) Ca2+-activated Cl- channels, 3) non-selective cation channels (NSCC) or 4) voltage-dependent K+ channels with internal Cs+-rich solution. Replacement of external Ca2+ (2 mM) with equimolar Ba2+ increased the amplitude of the HVA current but blocked the LVA current. Nicardipine blocked the HVA current, and in the presence of nicardipine, T-type Ca2+ blockers failed to block LVA. The Cl- channel antagonist had little effect on LVA. Cation-free external solution completely abolished both HVA and LVA. Addition of Ca2+ in cation-free solution restored only HVA currents. Addition of K+ (5 mM) to cation-free solution induced LVA current that reversed at -20 mV. These data suggest that LVA is not due to T-type Ca2+ channels, Ca2+-activated Cl- channels or NSCC. Antral SMC express A-type K+ currents (KA) and delayed rectifying K+ currents (KV) with dialysis of high K+ (140 mM) solution. When cells were exposed to high K+ external solution with dialysis of Cs+-rich solution in the presence of nicardipine, LVA was evoked and reversed at positive potentials. These HK-induced inward currents were blocked by K+ channel blockers, 4-aminopyridine and TEA. In conclusion, LVA inward currents can be generated by K+ influx via KA and KV channels in murine antral SMC when cells were dialyzed with Cs+-rich solution.


2005 ◽  
Vol 87 (24) ◽  
pp. 242908 ◽  
Author(s):  
KyongTae Kang ◽  
Mi-Hwa Lim ◽  
Ho-Gi Kim ◽  
YongWoo Choi ◽  
Harry L. Tuller ◽  
...  

2017 ◽  
Vol 5 (38) ◽  
pp. 9838-9842 ◽  
Author(s):  
Bo-Yi Jiang ◽  
Sureshraju Vegiraju ◽  
Anthony Shiaw-Tseh Chiang ◽  
Ming-Chou Chen ◽  
Cheng-Liang Liu

Low-voltage-driven organic phototransistors integrate the photodetector and photomemory functions within one single device to precisely sense the brightness and carry out multilevel memory operations.


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