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    • 61. 发明申请
    • PHOTONIC BASED CROSS-CORRELATION HOMODYNE DETECTION WITH LOW PHASE NOISE
    • 低相位噪声的光子相关异相同步检测
    • WO2009064478A3
    • 2009-07-09
    • PCT/US2008012815
    • 2008-11-13
    • OEWAVES INCELIYAHU DANNYMOROZOV NIKOLAIMALEKI LUTFOLLAH
    • ELIYAHU DANNYMOROZOV NIKOLAIMALEKI LUTFOLLAH
    • H04B10/02H04B10/13
    • H04B10/63G01R31/2824H04B10/61
    • In one aspect, this document provides an implementation of a system for characterizing an oscillator. This system includes an input port that receives an oscillation signal from an oscillator under test; an input port signal splitter that splits the received oscillation signal into a first oscillation signal and a second oscillation signal; a first photonic signal processing branch circuit that processes the first oscillation signal to produce a first branch output signal; a second photonic signal processing branch circuit that processes the second oscillation signal to produce a second branch output signal; a dual channel signal analyzer that receives the first and second branch output signals to measure noise in the received oscillation signal; and a computer controller that controls the first and second photonic signal processing branch circuits and the dual channel signal analyzer to control measurements of the noise in the received oscillation signal.
    • 在一个方面,该文件提供了用于表征振荡器的系统的实现。 该系统包括一个输入端口,用于接收来自被测振荡器的振荡信号; 输入端口信号分离器,将接收到的振荡信号分离为第一振荡信号和第二振荡信号; 第一光子信号处理分支电路,其处理第一振荡信号以产生第一分支输出信号; 第二光子信号处理分支电路,其处理第二振荡信号以产生第二分支输出信号; 双通道信号分析器,其接收第一和第二分支输出信号以测量所接收的振荡信号中的噪声; 以及计算机控制器,其控制所述第一和第二光子信号处理分支电路以及所述双通道信号分析器来控制所接收的振荡信号中的噪声的测量。
    • 69. 发明申请
    • COMPACT LIDAR SYSTEM
    • 紧凑激光系统
    • WO2016164435A1
    • 2016-10-13
    • PCT/US2016/026178
    • 2016-04-06
    • OEWAVES, INC.
    • MALEKI, LutfollahMATSKO, Andrey B.
    • G01S17/10G01S17/93G01S7/483
    • G01S17/325G01S7/4911G01S17/42G01S17/89G01S17/936G02B6/29341H01S5/0085H01S5/021H01S5/0656H01S5/1032H01S5/142
    • An FM LIDAR system is described that includes a frequency modulated LIDAR system that incorporates a laser source that is optically coupled to a whispering gallery mode optical resonator. Light from the laser that is coupled into the whispering gallery mode optical resonator is coupled back out as a returning counterpropagating wave having a frequency characteristic of a whispering gallery mode of the optical resonator. This returning wave is used to reduce the linewidth of the source laser by optical injection. Modulation of the optical properties of the whispering gallery mode optical resonator results in modulation of the frequency of the frequencies supported by whispering gallery modes of the resonator, and provides a method for producing highly linear and reproducible optical chirps that are highly suited for use in a LIDAR system. Methods of using such an FM LIDAR system and vehicle assisting systems that incorporate such FM LIDAR systems are also described.
    • 描述了一种FM激光雷达系统,其包括频率调制的LIDAR系统,其包括光学耦合到耳语画廊模式光学谐振器的激光源。 耦合到耳语画廊模式光学谐振器的激光的光被耦合回作为具有光谐振器的耳语画廊模式的频率特性的返回反向传播波。 该返回波用于通过光学注入来减少源激光器的线宽。 对于耳语画廊模式光学谐振器的光学特性的调制,可以调节由谐振器的语音画廊模式所支持的频率的频率,并且提供了一种制造高度线性且可再生的光啁啾的方法,该方法非常适用于 激光雷达系统。 还描述了使用这样的FM激光雷达系统和结合这样的FM激光雷达系统的车辆辅助系统的方法。
    • 70. 发明申请
    • OPTICAL ATOMIC CLOCK
    • 光学原子钟
    • WO2015143048A1
    • 2015-09-24
    • PCT/US2015/021274
    • 2015-03-18
    • OEWAVES, INC.
    • LIANG, WeiMATSKO, AndreyMALEKI, LuteELIYAHU, DannyILCHENKO, VladimirSAVCHENKOV, Anatoliy
    • G04F5/14
    • G04F5/14G02F1/0356
    • An optical atomic clock utilizing two different laser light sources is described. A source laser is locked to a first optical resonator, which supports a whispering gallery mode for the source laser and generates optical hyperparametric sidebands from the source laser output by multi-wave mixing. A reference laser is locked to an atomic reference via a second optical resonator, and the first optical resonator is locked to the reference laser. Optical parametric sidebands, which are locked to an atomic reference but are generated from a wavelength unrelated to the clock transition of the atomic reference, are coupled out of the first optical resonator to generate an RF signal useful in atomic timekeeping.
    • 描述了利用两种不同激光光源的光学原子钟。 源激光器被锁定到第一光学谐振器,其支持用于源激光器的耳语画廊模式,并且通过多波混频从源激光器输出产生光学超参数边带。 参考激光器通过第二光学谐振器被锁定到原子参考,并且第一光学谐振器被锁定到参考激光器。 锁定到原子参考但是从与原子参考的时钟转变无关的波长产生的光学参数边带被耦合到第一光学谐振器外,以产生可用于原子计时的RF信号。