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Dive into the research topics where Takanori Watanabe is active.

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Featured researches published by Takanori Watanabe.


international solid-state circuits conference | 2007

A 1/2.7 inch Low-Noise CMOS Image Sensor for Full HD Camcorders

Hidekazu Takahashi; Tomoyuki Noda; Takashi Matsuda; Takanori Watanabe; Mahito Shinohara; Toshiaki Endo; Shunsuke Takimoto; Ryuuichi Mishima; Shigeru Nishimura; Katuhito Sakurai; Hiroshi Yuzurihara; Shunsuke Inoue

A 1/2.7 inch 1944times1092pixels CMOS image sensor with multi-gain column amplifier and double noise canceller is fabricated in a 0.18mum 1P3M CMOS process. It operates at 48MHz in a progressive scanning mode at 60fps. A 2T/pixel architecture and low optical stack with micro innerlens achieve 14.8ke<sup>-</sup>/1x-s sensitivity, 14ke<sup>-</sup> saturation, 3.7e<sup>-</sup> <sub>rms</sub> noise and 12.2e<sup>-</sup> dark current at 60degC.


international solid state circuits conference | 2007

A 1/2.7-in 2.96 MPixel CMOS Image Sensor With Double CDS Architecture for Full High-Definition Camcorders

Hidekazu Takahashi; Tomoyuki Noda; Takashi Matsuda; Takanori Watanabe; Mahito Shinohara; Toshiaki Endo; Shunsuke Takimoto; Ryuichi Mishima; Shigeru Nishimura; Katsuhito Sakurai; Hiroshi Yuzurihara; Shunsuke Inoue

A 1/2.7-in 1944 times 1484 pixel CMOS image sensor with double CDS architecture fabricated in a 0.18-mum single-poly triple-metal (1P3M) CMOS process is described. It operates at 48 MHz in a progressive scanning mode at 60 frames/s for full high-definition (HD) imaging. Two transistors/pixel architecture and low optical stack with double microlenses achieve 14.6 ke macr/1times ldr s sensitivity and 14 ke macr saturation. Double CDS architecture with a high-gain column amplifier realized a low noise floor of 3.5 e macrrms. Optimized shallow-trench isolation achieved very low dark current of 12.2 e macr/s (60degC). This image sensor also realizes low power consumption of 220 mW.


Archive | 1994

Liquid crystal image display unit and method for fabricating semiconductor optical member

Takao Yonehara; Mamoru Miyawaki; Akira Ishizaki; Junichi Hoshi; Masaru Sakamoto; Shigetoshi Sugawa; Shunsuke Inoue; Toru Koizumi; Tetsunobu Kohchi; Kiyofumi Sakaguchi; Takanori Watanabe


Archive | 1993

Anodization apparatus with supporting device for substrate to be treated

Yasutomo Fujiyama; Mitsuhiro Ishii; Senju Kanbe; Takao Yonehara; Toru Takisawa; Akira Okita; Kiyofumi Sakaguchi; Takanori Watanabe; Kazuo Kokumai


Archive | 2011

Photoelectric conversion device, method for producing photoelectric conversion device, and image pickup system

Takanori Watanabe; Tetsuya Itano; Hidekazu Takahashi; Shunsuke Takimoto; Kotaro Abukawa; Hiroaki Naruse; Shigeru Nishimura; Masatsugu Itahashi


Archive | 1997

Display device having a silicon substrate, a locos film formed on the substrate, a tensile stress film formed on the locos film, and TFTs formed on the tensile stress film

Takanori Watanabe; Mamoru Miyawaki; Shunsuke Inoue; Tetsunobu Kochi


Archive | 2001

Imaging device, driving method thereof, radiation imager using the element, and radiation imaging system using the device

Kazuaki Tashiro; Noriyuki Umibe; Takanori Watanabe; 紀之 海部; 高典 渡邉; 和昭 田代


Archive | 2008

Image sensing apparatus driving method, image sensing apparatus, and image sensing system

Takanori Watanabe; Tetsuya Itano; Hidekazu Takahashi


Archive | 1995

Liquid crystal display device having a capacitator in the peripheral driving circuit

Tetsunobu Kouchi; Mamoru Miyawaki; Shunsuke Inoue; Takanori Watanabe


Archive | 2005

Solid state imaging device, method of manufacturing same, and digital camera

Satoko Iida; Takanori Watanabe

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