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A Low-Voltage 1 Mb FRAM in 0.13 µm CMOS Featuring Time-to-Digital Sensing for Expanded Operating Margin.

, , , and . J. Solid-State Circuits, 47 (1): 141-150 (2012)

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A Low-Voltage 1 Mb FRAM in 0.13 µm CMOS Featuring Time-to-Digital Sensing for Expanded Operating Margin., , , and . J. Solid-State Circuits, 47 (1): 141-150 (2012)A low-voltage 1Mb FeRAM in 0.13μm CMOS featuring time-to-digital sensing for expanded operating margin in scaled CMOS., , , and . ISSCC, page 208-210. IEEE, (2011)Energy Efficient Adiabatic FRAM with 0.99 PJ/Bit Write for IoT Applications., , , , , , and . VLSI Circuits, page 85-86. IEEE, (2018)An FRAM-Based Nonvolatile Logic MCU SoC Exhibiting 100% Digital State Retention at $VDD=$ 0 V Achieving Zero Leakage With $<$ 400-ns Wakeup Time for ULP Applications., , , , , and . J. Solid-State Circuits, 49 (1): 95-106 (2014)16MHz FRAM Micro-Controller with a Low-Cost Sub-1μA Embedded Piezo-Electric Strain Sensor for ULP Motion Detection., , , , , , , , , and . ISSCC, page 282-284. IEEE, (2019)An 8MHz 75µA/MHz zero-leakage non-volatile logic-based Cortex-M0 MCU SoC exhibiting 100% digital state retention at VDD=0V with <400ns wakeup and sleep transitions., , , , , and . ISSCC, page 432-433. IEEE, (2013)A digitally-controlled power-aware low-dropout regulator to reduce standby current drain in ultra-low-power MCU., , , and . ISQED, page 98-102. IEEE, (2015)A 1.2µW SIMO energy harvesting and power management unit with constant peak inductor current control achieving 83-92% efficiency across wide input and output voltages., , , , and . VLSIC, page 1-2. IEEE, (2014)FAR: A 4.12μW ferro-electric auto-recovery for battery-less BSN SoCs., , , and . BioCAS, page 1-4. IEEE, (2017)