研究目的
To develop an ultra-stable time-keeping device that locks its output clock frequency to the rotational-mode transition of polar gaseous molecules, enabling miniaturization, low power consumption, and low cost using CMOS technology.
研究成果
The CMOS molecular clock achieves an Allan deviation of 3.8 × 10^{-10} at τ = 1000 s with 66 mW power consumption, demonstrating competitive stability with atomic clocks while offering advantages in size, cost, and power. Future improvements can enhance stability further by reducing coupler loss and hermetically sealing the gas cell.
研究不足
The current prototype has excessive insertion loss in chip-to-waveguide couplers, leading to degraded signal-to-noise ratio. The gas cell requires connection to a vacuum system, and there is pressure-induced frequency drift. Temperature dependency and other factors like Zeeman and Stark effects also contribute to long-term drift.
1:Experimental Design and Method Selection:
The clock uses a sub-terahertz spectrometer based on CMOS technology to probe the rotational transition of carbonyl sulfide (OCS) molecules at
2:061 GHz. It employs a phase-locked loop (PLL) with frequency-shift keying (FSK) modulation and a lock-in detector for frequency locking. Sample Selection and Data Sources:
2 OCS gas is used as the molecular sample, contained in a custom-designed waveguide gas cell.
3:List of Experimental Equipment and Materials:
Includes a 65-nm CMOS chip, OCS gas, waveguide gas cell, vacuum system, and various measurement instruments like power meters and frequency counters.
4:Experimental Procedures and Operational Workflow:
The TX chip generates a sub-THz signal modulated by FSK, which probes the OCS gas. The RX chip detects the absorption and generates an error signal to adjust a voltage-controlled crystal oscillator (VCXO). The loop is closed to lock the output frequency.
5:Data Analysis Methods:
Allan deviation is measured to assess frequency stability, using instruments like frequency counters and lock-in amplifiers.
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Spectrum Analyzer
N9020A
Keysight
Measures the spectrum of the down-converted signal.
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Frequency Counter
53230A
Keysight
Measures the output frequency of the VCXO and clock stability.
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Lock-In Amplifier
SR865A
Stanford Research Systems
Performs lock-in detection to measure the dispersion curve and error signals.
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Rubidium Atomic Clock
PRS10
Stanford Research Systems
Provides a stable reference for frequency measurements.
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Power Meter
PM-5
Virginia Diode Inc. (VDI)
Measures the power of the sub-THz output from the transmitter chip.
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Even-Harmonic Mixer
EHM
Virginia Diode Inc. (VDI)
Down-converts the TX signal to an intermediate frequency for spectrum analysis.
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CMOS Chip
65-nm LP
TSMC
Implements the transmitter and receiver circuits for the molecular clock.
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Waveguide
WR-4.3
Serves as the gas cell for containing OCS gas and guiding the sub-THz signal.
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Vacuum System
Maintains low pressure (~10 Pa) for the OCS gas in the gas cell.
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