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Fabrication of Ultra-Thin Printed Organic TFT CMOS Logic Circuits Optimized for Low-Voltage Wearable Sensor Applications.


ABSTRACT: Ultrathin electronic circuits that can be manufactured by using conventional printing technologies are key elements necessary to realize wearable health sensors and next-generation flexible electronic devices. Due to their low level of power consumption, complementary (CMOS) circuits using both types of semiconductors can be easily employed in wireless devices. Here, we describe ultrathin CMOS logic circuits, for which not only the source/drain electrodes but also the semiconductor layers were printed. Both p-type and n-type organic thin film transistor devices were employed in a D-flip flop circuit in the newly developed stacked structure and exhibited excellent electrical characteristics, including good carrier mobilities of 0.34 and 0.21?cm(2) V(-1) sec(-1), and threshold voltages of nearly 0?V with low operating voltages. These printed organic CMOS D-flip flop circuits exhibit operating frequencies of 75?Hz and demonstrate great potential for flexible and printed electronics technology, particularly for wearable sensor applications with wireless connectivity.

SUBMITTER: Takeda Y 

PROVIDER: S-EPMC4860580 | biostudies-literature | 2016 May

REPOSITORIES: biostudies-literature

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Fabrication of Ultra-Thin Printed Organic TFT CMOS Logic Circuits Optimized for Low-Voltage Wearable Sensor Applications.

Takeda Yasunori Y   Hayasaka Kazuma K   Shiwaku Rei R   Yokosawa Koji K   Shiba Takeo T   Mamada Masashi M   Kumaki Daisuke D   Fukuda Kenjiro K   Tokito Shizuo S  

Scientific reports 20160509


Ultrathin electronic circuits that can be manufactured by using conventional printing technologies are key elements necessary to realize wearable health sensors and next-generation flexible electronic devices. Due to their low level of power consumption, complementary (CMOS) circuits using both types of semiconductors can be easily employed in wireless devices. Here, we describe ultrathin CMOS logic circuits, for which not only the source/drain electrodes but also the semiconductor layers were p  ...[more]

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