A micromechanical frequency reference with parts-per-trillion holdover stability

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Yan, Jie, Kim, Jintark, Islam, Rakibul, Yang, Jiawei, Elmeligy, Karim, Bozkurt, Alkim, Kenny, Thomas W., Hanumolu, Pavan K., Bahl, Gaurav
Formato: Preprint
Publicado: 2026
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866909027907141632
author Yan, Jie
Kim, Jintark
Islam, Rakibul
Yang, Jiawei
Elmeligy, Karim
Bozkurt, Alkim
Kenny, Thomas W.
Hanumolu, Pavan K.
Bahl, Gaurav
author_facet Yan, Jie
Kim, Jintark
Islam, Rakibul
Yang, Jiawei
Elmeligy, Karim
Bozkurt, Alkim
Kenny, Thomas W.
Hanumolu, Pavan K.
Bahl, Gaurav
contents Microelectromechanical (MEMS) resonators are widely used in timekeeping applications, and recent advances in fabrication, materials, and encapsulation technology have advanced their potential as high stability frequency references. However, for holdover applications that require the highest levels of long-term frequency stability, compact vapor atomic clocks remain dominant. In this work, we demonstrate a 268 MHz MEMS clock that achieves record fractional frequency stability of ~8 parts-per-trillion at an averaging time of 8 hours, competitive with chip-scale atomic clocks. We achieved this using a single-crystal silicon electrostatic resonator that has no currently known intrinsic drift mechanism and is protected from the environment with a wafer-level encapsulation. We specifically identify gain variations in the sustaining electronics as the dominant limitation in conventional phase-locked oscillator architectures -- originating from temperature sensitivity and drifts in the electronic components -- and overcome this by implementing a frequency-locked loop architecture based on dual-frequency resonance tracking (DFRT). This novel approach removes the specific gain of the supporting electronics as a frequency determining variable in the oscillator. When combined with dual-mode tracking and ratiometric temperature stabilization of the resonator, this approach enables a dramatic enhancement to long-term frequency stability and establishes gain-insensitive DFRT locking as a general paradigm for high-stability MEMS clocks.
format Preprint
id arxiv_https___arxiv_org_abs_2605_08118
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A micromechanical frequency reference with parts-per-trillion holdover stability
Yan, Jie
Kim, Jintark
Islam, Rakibul
Yang, Jiawei
Elmeligy, Karim
Bozkurt, Alkim
Kenny, Thomas W.
Hanumolu, Pavan K.
Bahl, Gaurav
Applied Physics
Optics
Microelectromechanical (MEMS) resonators are widely used in timekeeping applications, and recent advances in fabrication, materials, and encapsulation technology have advanced their potential as high stability frequency references. However, for holdover applications that require the highest levels of long-term frequency stability, compact vapor atomic clocks remain dominant. In this work, we demonstrate a 268 MHz MEMS clock that achieves record fractional frequency stability of ~8 parts-per-trillion at an averaging time of 8 hours, competitive with chip-scale atomic clocks. We achieved this using a single-crystal silicon electrostatic resonator that has no currently known intrinsic drift mechanism and is protected from the environment with a wafer-level encapsulation. We specifically identify gain variations in the sustaining electronics as the dominant limitation in conventional phase-locked oscillator architectures -- originating from temperature sensitivity and drifts in the electronic components -- and overcome this by implementing a frequency-locked loop architecture based on dual-frequency resonance tracking (DFRT). This novel approach removes the specific gain of the supporting electronics as a frequency determining variable in the oscillator. When combined with dual-mode tracking and ratiometric temperature stabilization of the resonator, this approach enables a dramatic enhancement to long-term frequency stability and establishes gain-insensitive DFRT locking as a general paradigm for high-stability MEMS clocks.
title A micromechanical frequency reference with parts-per-trillion holdover stability
topic Applied Physics
Optics
url https://arxiv.org/abs/2605.08118