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  4. A ± 20-ppm -50°C-105°C 1-μA 32.768-kHz Clock Generator with a System-HFXO-Assisted Background Calibration
 
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A ± 20-ppm -50°C-105°C 1-μA 32.768-kHz Clock Generator with a System-HFXO-Assisted Background Calibration

Journal
Proceedings - A-SSCC 2021: IEEE Asian Solid-State Circuits Conference
Date Issued
2021
Author(s)
Lin C.-Y
Huang Y.-W
TSUNG-HSIEN LIN  
DOI
10.1109/A-SSCC53895.2021.9634827
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85124031901&doi=10.1109%2fA-SSCC53895.2021.9634827&partnerID=40&md5=4f0a9156542fbdecc1d7514f2a04c78a
https://scholars.lib.ntu.edu.tw/handle/123456789/632312
Abstract
A kHz-range clock is required in many applications. For example, an IoT device is in the sleep mode most of the time and often needs a kHz clock for the timer or time-stamp purposes [1]. For compact device size, implementing a kHz clock using a low-frequency crystal oscillator (LFXO) is not preferred because an extra kHz crystal (Xtal) is required [2]. Alternatively, the kHz clock can be generated by dividing a high-frequency XO (HFXO) signal through dividers. (An MHz-range HFXO is usually available to serve as the system clock for computation and communication purposes in an SOC.) However, the division approach requires the HFXO and dividers remain active even in the sleep mode, which consumes large power [3]. Some works exploit on-chip oscillators to produce a kHz clock. Such oscillators are PVT sensitive and prone to inferior frequency stability [4], [5]. MEMS-based clock generator achieves excellent performance [6]. However, this is at the cost of complex temperature trimming and an additional MEMS resonator. © 2021 IEEE.
SDGs

[SDGs]SDG7

Other Subjects
Crystal resonators; Electric clocks; Microelectromechanical devices; Programmable logic controllers; System-on-chip; Background calibrations; Clock generator; Compact devices; Device sizes; High frequency HF; Large power; Lower frequencies; SLEEP mode; System clock; Time-stamp; Crystal oscillators
Type
conference paper

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