TY - JOUR
T1 - NanoBridge-Based FPGA in High-Temperature Environments
AU - Miyamura, Makoto
AU - Sakamoto, Toshitsugu
AU - Bai, Xu
AU - Tsuji, Yukihide
AU - Morioka, Ayuka
AU - Nebashi, Ryusuke
AU - Tada, Munehiro
AU - Banno, Naoki
AU - Okamoto, Koichiro
AU - Iguchi, Noriyuki
AU - Hada, Hiromitsu
AU - Sugibayashi, Tadahiko
AU - Nagamatsu, Yuya
AU - Ookubo, Soichi
AU - Shirai, Takuma
AU - Sugai, Fumihito
AU - Inaba, Masayuki
N1 - Publisher Copyright:
© 1981-2012 IEEE.
PY - 2017/9/1
Y1 - 2017/9/1
N2 - The authors demonstrate a field-programmable gate array (FPGA) based on NanoBridge, a novel resistive-change switch. NanoBridge, which is integrated in the back end of line (BEOL), features a high on/off conductance ratio, weak temperature dependence of its resistance, nonvolatility, endurance against soft errors, and a small footprint. In place of static RAM (SRAM) and a pass transistor, NanoBridge is utilized as a configuration switch in the FPGA. In this article, the authors evaluate the NanoBridge-based FPGA (NB-FPGA) for applications in harsh environments. Specifically, they implemented NB-FPGA in a humanoid robot and compared its performance with that of the conventional FPGA. Results showed that NB-FPGA exhibits small variation in performance over a wide range of temperature, from-55 to 150 °C, and has high immunity for fluctuations in the power supply voltage.
AB - The authors demonstrate a field-programmable gate array (FPGA) based on NanoBridge, a novel resistive-change switch. NanoBridge, which is integrated in the back end of line (BEOL), features a high on/off conductance ratio, weak temperature dependence of its resistance, nonvolatility, endurance against soft errors, and a small footprint. In place of static RAM (SRAM) and a pass transistor, NanoBridge is utilized as a configuration switch in the FPGA. In this article, the authors evaluate the NanoBridge-based FPGA (NB-FPGA) for applications in harsh environments. Specifically, they implemented NB-FPGA in a humanoid robot and compared its performance with that of the conventional FPGA. Results showed that NB-FPGA exhibits small variation in performance over a wide range of temperature, from-55 to 150 °C, and has high immunity for fluctuations in the power supply voltage.
KW - back end of line
KW - BEOL devices
KW - high temperature
KW - noise
KW - nonvolatile
KW - rad-hard
KW - radiation hardening
KW - reconfigurable
UR - https://www.scopus.com/pages/publications/85032228080
UR - https://www.scopus.com/pages/publications/85032228080#tab=citedBy
U2 - 10.1109/MM.2017.3711648
DO - 10.1109/MM.2017.3711648
M3 - Article
AN - SCOPUS:85032228080
SN - 0272-1732
VL - 37
SP - 32
EP - 42
JO - IEEE Micro
JF - IEEE Micro
IS - 5
M1 - 8064998
ER -