{"id":13721,"date":"2023-07-26T16:54:51","date_gmt":"2023-07-26T16:54:51","guid":{"rendered":"https:\/\/liquidinstruments.com\/?p=13721"},"modified":"2025-10-02T15:48:11","modified_gmt":"2025-10-02T15:48:11","slug":"pdh-laser-locking","status":"publish","type":"post","link":"https:\/\/liquidinstruments.com\/application-notes\/pdh-laser-locking\/","title":{"rendered":"Optimize PDH laser locking with the Moku Laser Lock Box","gt_translate_keys":[{"key":"rendered","format":"text"}]},"content":{"rendered":"<div>\n<p class=\"FooterText\"><a name=\"OLE_LINK2\"><\/a>The Moku:Pro <a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/laser-lock-box\/\">Laser Lock Box<\/a> integrates multiple crucial electronic components of the Pound-Drever-Hall laser locking technique into one instrument, making the laser locking process easier than ever without compromising performance. This app note will cover the principles of PDH locking, outline the procedure for locking a laser to a high-finesse cavity using the Moku:Pro Laser Lock Box, and present results showing the dramatic improvement in laser frequency stability when using this locking technique. To learn more, <a class=\"hs-inline-web-interactive-185741598834 \" href=\"https:\/\/cta-service-cms2.hubspot.com\/web-interactives\/public\/v1\/track\/click?encryptedPayload=AVxigLJY7OabkkKQmSwxvNd%2FykQWRROEmmok%2FUty96TW%2FJEN8ngEbRK%2BIRiDrnt7vMp%2Bs9cP0iX3w4c55qeiwBviKFuJEEN%2FtfgXUIFwaAgVy%2F94lIrPFmkPMuHRJaUHxGsv5Y2QGg1mUFwy%2Fg7s7HuNvAY%2BeihQD7%2Fssrt%2F5S1Lrc6bLncZDSghcnR1dWf1PkNQ%2F%2B4bURq8CvPgjHzKNEY4V6BcM%2FLTjkWo1OtssyzxN3TCOv9weQWsDkvD43LQnHHsvqHekKDxO3J3FHXzCGmmMHkYRHqjCFQ%3D&amp;portalId=3954510\" target=\"_blank\" rel=\"noopener\" data-hubspot-cta-id=\"185741598834\">download the ebook on the ultimate guide to Pound-Drever-Hall (PDH) laser locking.<\/a><\/p>\n<\/div>\n<h2><span class=\"TextRun SCXW77183090 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW77183090 BCX0\" data-ccp-parastyle=\"heading 1\">Pound-Drever-Hall laser locking technique<\/span><\/span><span class=\"EOP SCXW77183090 BCX0\" data-ccp-props=\"{&quot;134245418&quot;:true,&quot;134245529&quot;:true,&quot;201341983&quot;:0,&quot;335559737&quot;:-20,&quot;335559738&quot;:240,&quot;335559739&quot;:120,&quot;335559740&quot;:240}\">&nbsp;<\/span><\/h2>\n<p><span data-contrast=\"none\">In a standard lab environment, a laser\u2019s frequency can drift due to a range of factors, such as ambient temperature, injected current, and quantum fluctuations. Laser frequency stabilization is therefore a necessary process in applications that utilize lasers to conduct precise measurements, such as gravitational wave detection, atomic physics, and molecular trace gas detection. There are multiple methods available to perform laser frequency stabilization \u2014 one of the most common methods is to lock the laser frequency to an optical reference cavity with a\u202fstable mechanical setup. The <a href=\"https:\/\/liquidinstruments.com\/streamline-the-pound-drever-hall-technique-with-mokupro\/\" target=\"_blank\" rel=\"noopener\">Pound-Drever-Hall (PDH)<\/a> method is one of these methods. It uses the derivative of the reflected laser intensity as an error signal to lock the laser frequency to the cavity resonance and suppress frequency fluctuations<\/span><span aria-label=\"Rich text content control\"><span data-contrast=\"none\">\u200b<\/span><strong> [1]\u200b<\/strong><\/span><span data-contrast=\"none\">.<\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><span data-contrast=\"none\">When locking a laser to a cavity, the light from the laser can only pass through the cavity when an integer number of its wavelength matches the round-trip length of the cavity. This is also the point when the reflected light from the cavity is at a minimum. <\/span>Figure 1<span data-contrast=\"none\"> shows the correlation between the reflected intensity and the frequency of the laser relative to the cavity resonance. However, it can be hard to use this signal as an error signal in a feedback system since the reflected light intensity is symmetric around the resonance, and it is positive both above and below the cavity resonance. If the laser frequency drifts away from the cavity resonance, it is impossible to know if the laser frequency needs to be increased or decreased. However, due to the minimum of the reflected signal intensity, the derivative of the reflected light will have a zero crossing with different polarity on either side of the resonance. It is negative when the frequency is below the resonance and positive when the laser frequency is above the resonance. The derivative of the reflected intensity can be measured by introducing small modulations to the laser frequency, also known as dithering. The PDH technique utilizes this derivative of the reflected intensity with respect to laser frequency as the error signal to dynamically adjust the frequency of the laser to match the resonance of the cavity.<\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13800 size-full\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig1.png\" alt=\"The reflected light intensity from an optical cavity as a function of laser frequency\" width=\"513\" height=\"363\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig1.png 513w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig1-300x212.png 300w\" sizes=\"(max-width: 513px) 100vw, 513px\" \/><\/p>\n<p style=\"text-align: center;\"><strong><i>Figure <\/i><i>1<\/i><\/strong><i><span data-contrast=\"none\">: The reflected light intensity from an optical cavity as a function of laser frequency <\/span><\/i><span aria-label=\"Rich text content control\"><i><span data-contrast=\"none\">\u200b<\/span><\/i><strong><i> [2]<\/i><i>\u200b<\/i><\/strong><\/span><strong>&nbsp;<\/strong><\/p>\n<p>Figure 2<span data-contrast=\"none\"> illustrates the components and layout of a PDH laser locking system. Here, the frequency is modulated with an electro-optical modulator (EOM) driven by the local oscillator. A photodetector captures the reflected light, and its output is demodulated with the local oscillator via a mixer. The mixed signal is then passed through a low-pass filter to separate out the DC, or very low frequency, component from the second harmonic of the modulation frequency. This DC component is used as the error signal, which provides an unambiguous indication of not only how far the system is from resonance but in which direction adjustments must be made to restore resonance. The error signal is then sent into a servo amplifier or proportional-integral-derivative (PID) controllers and into the tuning port on the laser, locking the laser to the cavity.<\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13801 size-large\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-1024x615.png\" alt=\"A block diagram of the PDH laser locking technique\u200b\" width=\"1024\" height=\"615\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-1024x615.png 1024w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-300x180.png 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-768x462.png 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-1536x923.png 1536w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2-600x361.png 600w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig2.png 1649w\" sizes=\"(max-width: 1024px) 100vw, 1024px\" \/><\/p>\n<p style=\"text-align: center;\"><em><strong><span class=\"TextRun SCXW19715405 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\" data-ccp-parastyle-defn=\"{&quot;ObjectId&quot;:&quot;2f327977-6dae-407e-a3a8-8a576ce38a7a|231&quot;,&quot;ClassId&quot;:1073872969,&quot;Properties&quot;:[469775450,&quot;Normal Light&quot;,201340122,&quot;2&quot;,134234082,&quot;true&quot;,134233614,&quot;true&quot;,469778129,&quot;NormalLight&quot;,335572020,&quot;1&quot;,469777841,&quot;Proxima Nova Light&quot;,469777842,&quot;Arial&quot;,469777843,&quot;Calibri&quot;,469777844,&quot;Proxima Nova Light&quot;,469769226,&quot;Proxima Nova Light,Arial,Calibri&quot;,335551500,&quot;15921906&quot;,268442635,&quot;20&quot;,335551547,&quot;1033&quot;,335559740,&quot;276&quot;,201341983,&quot;0&quot;,335559739,&quot;120&quot;,469778324,&quot;Normal&quot;]}\">Figure <\/span><\/span><span class=\"FieldRange SCXW19715405 BCX0\"><span class=\"TextRun SCXW19715405 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">2<\/span><\/span><\/span><\/strong><span class=\"TextRun SCXW19715405 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">:<\/span> <span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">A block diagram<\/span> <span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">of <\/span><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">the <\/span><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">PDH laser locking technique<\/span><\/span><span class=\"ContentControl SCXW19715405 BCX0\" role=\"group\" aria-label=\"Rich text content control\"><span class=\"ContentControlBoundarySink SCXW19715405 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\">\u200b<\/span><strong><span class=\"FieldRange SCXW19715405 BCX0\"> <span class=\"TextRun SCXW19715405 BCX0\" lang=\"EN-AU\" xml:lang=\"EN-AU\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW19715405 BCX0\" data-ccp-parastyle=\"Normal Light\">[3]<\/span><\/span><\/span><span class=\"ContentControlBoundarySink SCXW19715405 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\">\u200b<\/span><\/strong><\/span><strong><span class=\"EOP SCXW19715405 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:2,&quot;335551620&quot;:2,&quot;335559738&quot;:120,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/strong><\/em><\/p>\n<h2><span class=\"TextRun SCXW130351457 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"SpellingError SCXW130351457 BCX0\" data-ccp-parastyle=\"heading 1\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW130351457 BCX0\" data-ccp-parastyle=\"heading 1\"> Laser Lock Box<\/span><\/span><span class=\"EOP SCXW130351457 BCX0\" data-ccp-props=\"{&quot;134245418&quot;:true,&quot;134245529&quot;:true,&quot;201341983&quot;:0,&quot;335559737&quot;:2176,&quot;335559738&quot;:240,&quot;335559739&quot;:120,&quot;335559740&quot;:240}\">&nbsp;<\/span><\/h2>\n<div>\n<p style=\"font-weight: 400;\"><span class=\"TextRun SCXW219318555 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW219318555 BCX0\">The traditional PDH laser locking process requires several dedicated, custom-made electronic instruments including signal generators, mixers, low-pass filters, servo systems, and oscilloscopes. The <\/span><span class=\"SpellingError SCXW219318555 BCX0\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW219318555 BCX0\"><a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/laser-lock-box\/\"> Laser Lock Box<\/a> integrates most of the PDH electronics into one compact, easy-to-use instrument that provides high-precision laser frequency locking. It includes a <a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/waveform-generator\/\">Waveform Generator<\/a> for scanning and modulating the laser frequency, a mixer and low-pass filter for demodulating the error signal, and two cascaded <a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/pid-controller\/\">PID Controllers<\/a> to provide the fast and slow control signals back to the laser\u2019s actuators, such as piezo or temperature controllers. Using the built-in <a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/oscilloscope\/\">Oscilloscope<\/a>, users can also monitor the scanning response of the reflected light and display the PDH signals in real time (Figure 3).<\/span><\/span><span class=\"EOP SCXW219318555 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<\/div>\n<div>\n<p><a href=\"https:\/\/liquidinstruments.com\/streamline-the-pound-drever-hall-technique-with-mokupro\/\"><img decoding=\"async\" class=\"aligncenter wp-image-13802 size-full\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig3.png\" alt=\"Main user interface of the Moku:Pro Laser Lock Box&nbsp;\" width=\"965\" height=\"656\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig3.png 965w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig3-300x204.png 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig3-768x522.png 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig3-600x408.png 600w\" sizes=\"(max-width: 965px) 100vw, 965px\" \/><\/a><\/p>\n<p style=\"text-align: center;\"><em><strong><span class=\"TextRun SCXW91069162 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW91069162 BCX0\" data-ccp-parastyle=\"Normal Light\" data-ccp-parastyle-defn=\"{&quot;ObjectId&quot;:&quot;2f327977-6dae-407e-a3a8-8a576ce38a7a|231&quot;,&quot;ClassId&quot;:1073872969,&quot;Properties&quot;:[469775450,&quot;Normal Light&quot;,201340122,&quot;2&quot;,134234082,&quot;true&quot;,134233614,&quot;true&quot;,469778129,&quot;NormalLight&quot;,335572020,&quot;1&quot;,469777841,&quot;Proxima Nova Light&quot;,469777842,&quot;Arial&quot;,469777843,&quot;Calibri&quot;,469777844,&quot;Proxima Nova Light&quot;,469769226,&quot;Proxima Nova Light,Arial,Calibri&quot;,335551500,&quot;15921906&quot;,268442635,&quot;20&quot;,335551547,&quot;1033&quot;,335559740,&quot;276&quot;,201341983,&quot;0&quot;,335559739,&quot;120&quot;,469778324,&quot;Normal&quot;]}\">Figure <\/span><\/span><span class=\"FieldRange SCXW91069162 BCX0\"><span class=\"TextRun SCXW91069162 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW91069162 BCX0\" data-ccp-parastyle=\"Normal Light\">3<\/span><\/span><\/span><\/strong><span class=\"TextRun SCXW91069162 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW91069162 BCX0\" data-ccp-parastyle=\"Normal Light\">: Main user interface of the <\/span><span class=\"SpellingError SCXW91069162 BCX0\" data-ccp-parastyle=\"Normal Light\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW91069162 BCX0\" data-ccp-parastyle=\"Normal Light\"> Laser Lock Box<\/span><\/span><span class=\"EOP SCXW91069162 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:2,&quot;335551620&quot;:2,&quot;335559738&quot;:120,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/em><\/p>\n<p>&nbsp;<\/p>\n<\/div>\n<h2><span class=\"TextRun SCXW208558917 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW208558917 BCX0\" data-ccp-parastyle=\"heading 1\">Experimental setup<\/span><\/span><span class=\"EOP SCXW208558917 BCX0\" data-ccp-props=\"{&quot;134245418&quot;:true,&quot;134245529&quot;:true,&quot;201341983&quot;:0,&quot;335559737&quot;:2176,&quot;335559738&quot;:240,&quot;335559739&quot;:120,&quot;335559740&quot;:240}\"> for PDH laser locking<\/span><\/h2>\n<div>\n<div>\n<p class=\"FooterText\"><span class=\"TextRun SCXW194005268 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW194005268 BCX0\">In this experiment, we used the <\/span><span class=\"SpellingError SCXW194005268 BCX0\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW194005268 BCX0\"> Laser Lock Box for locking a laser to a high-finesse cavity. Figure 4 illustrates the PDH laser stabilizing system with <\/span><a href=\"https:\/\/liquidinstruments.com\/products\/hardware-platforms\/mokupro\/\"><span class=\"SpellingError SCXW194005268 BCX0\">Moku:Pro<\/span><\/a><span class=\"NormalTextRun SCXW194005268 BCX0\">.&nbsp;<\/span><\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13804 size-large\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4-1024x635.png\" alt=\"Experimental setup illustration of PDH technique with the Moku:Pro Laser Lock Box\" width=\"1024\" height=\"635\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4-1024x635.png 1024w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4-300x186.png 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4-768x476.png 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4-600x372.png 600w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig4.png 1118w\" sizes=\"(max-width: 1024px) 100vw, 1024px\" \/><\/p>\n<\/div>\n<p style=\"text-align: center;\"><em><strong><span class=\"TextRun SCXW119505744 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\" data-ccp-parastyle-defn=\"{&quot;ObjectId&quot;:&quot;2f327977-6dae-407e-a3a8-8a576ce38a7a|231&quot;,&quot;ClassId&quot;:1073872969,&quot;Properties&quot;:[469775450,&quot;Normal Light&quot;,201340122,&quot;2&quot;,134234082,&quot;true&quot;,134233614,&quot;true&quot;,469778129,&quot;NormalLight&quot;,335572020,&quot;1&quot;,469777841,&quot;Proxima Nova Light&quot;,469777842,&quot;Arial&quot;,469777843,&quot;Calibri&quot;,469777844,&quot;Proxima Nova Light&quot;,469769226,&quot;Proxima Nova Light,Arial,Calibri&quot;,335551500,&quot;15921906&quot;,268442635,&quot;20&quot;,335551547,&quot;1033&quot;,335559740,&quot;276&quot;,201341983,&quot;0&quot;,335559739,&quot;120&quot;,469778324,&quot;Normal&quot;]}\">Figure <\/span><\/span><span class=\"FieldRange SCXW119505744 BCX0\"><span class=\"TextRun SCXW119505744 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\">4<\/span><\/span><\/span><\/strong><span class=\"TextRun SCXW119505744 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\">: Experimental setup illustration of PDH <\/span><span class=\"NormalTextRun CommentStart SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\">technique<\/span><span class=\"NormalTextRun SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\"> with the <\/span><span class=\"SpellingError SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW119505744 BCX0\" data-ccp-parastyle=\"Normal Light\"> Laser Lock Box<\/span><\/span><\/em><\/p>\n<p><span data-contrast=\"none\">A Coherent Mephisto S fiber laser (1064 nm) was modulated by an electro-optical modulator (EOM) and redirected into a 10 cm linear plano-concave cavity (finesse 100,000). Two photodetectors (PDs) were placed to detect the transmitted and reflected light from the cavity. The signals detected on the PDs were fed into Moku:Pro Input 1 for the reflected signal (mixer input) and Input 2 for the transmitted signal (monitor). Output 1 of the fast PID was then connected directly to the laser\u2019s piezo to actuate laser frequency, and Output 2 of the slow PID was connected to the temperature control of the laser.<\/span><\/p>\n<p><span data-contrast=\"none\">Figure 5 depicts the configuration and settings of the Laser Lock Box. A local oscillator (LO) with an amplitude of 500 mV<sub>pp<\/sub>&nbsp;at approximately 2.885 MHz was generated with the Moku:Pro Laser Lock Box Waveform Generator. The LO signal was then sent from Moku Output 3 to drive the EOM. The same LO signal was also used to demodulate the cavity reflection using a digitally-implemented mixer followed by a digital 4th-order Butterworth low-pass filter with a corner frequency of 300.0 kHz. Using the integrated scanning feature of the Moku:Pro Laser Lock Box, we set the scan generator to output a signal to the PZT actuator (Output 1) at a frequency of 10 Hz. With the scanning signal enabled, we could view the PDH error signal using the built-in Oscilloscope probe point at the output of the filter. Then, we adjusted the offsets applied to the temperature controller and centered the resonance in the middle of the scan. To further optimize the error signal, we also adjusted the phase of the local oscillator until the error signal was symmetric and with a maximized linear range around the resonance for locking. In this example, a phase shift of approximately 113.6 degrees gave us the best error signal. We configured the fast PID Controller with a proportional gain of -27 dB, integrator crossover frequency of 7.5 kHz, and a double integrator crossover frequency of 70.60 Hz. We configured the slow PID Controller to have an integrator crossover frequency of 4.883 mHz.&nbsp;<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13805 size-large\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5-1024x679.jpg\" alt=\"Fast PID Controller configuration&nbsp;with Moku\" width=\"1024\" height=\"679\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5-1024x679.jpg 1024w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5-300x199.jpg 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5-768x509.jpg 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5-600x398.jpg 600w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig5.jpg 1298w\" sizes=\"(max-width: 1024px) 100vw, 1024px\" \/><\/p>\n<\/div>\n<p style=\"text-align: center;\"><strong><i>Figure <\/i><i>5<\/i><\/strong><i><span data-contrast=\"none\">: Fast PID Controller configuration<\/span><\/i><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:2,&quot;335551620&quot;:2,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><span data-contrast=\"none\">To engage the PDH lock, we gradually reduced the scanning amplitude, then enabled the fast and slow PID Controllers in sequence. As an advanced feature, users can also engage the lock by configuring locking stages or by using the Lock Assist feature. This feature allows user to select a zero-crossing of the demodulated error signal as the locking point, which will automatically engage the fast PID Controller and lock the laser frequency to the cavity resonance. We then disabled the integrator saturation to align the laser frequency to the DC frequency of the cavity. <\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<h2><span class=\"TextRun SCXW137799464 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW137799464 BCX0\" data-ccp-parastyle=\"heading 1\">Results and discussion<\/span><\/span><span class=\"EOP SCXW137799464 BCX0\" data-ccp-props=\"{&quot;134245418&quot;:true,&quot;134245529&quot;:true,&quot;201341983&quot;:0,&quot;335559737&quot;:2176,&quot;335559738&quot;:240,&quot;335559739&quot;:120,&quot;335559740&quot;:240}\">&nbsp;<\/span><\/h2>\n<p style=\"font-weight: 400;\"><span class=\"TextRun SCXW4954400 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW4954400 BCX0\">Using the built-in Oscilloscope probe points, we could measure the error signal RMS and optimize the overall loop gain, as shown in <\/span><\/span><span class=\"FieldRange SCXW4954400 BCX0\"><span class=\"TextRun SCXW4954400 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW4954400 BCX0\">Figure 6<\/span><\/span><\/span><span class=\"TextRun SCXW4954400 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW4954400 BCX0\">. Increasing gain would potentially minimize the RMS of the error signal, <\/span><span class=\"NormalTextRun SCXW4954400 BCX0\">but too<\/span><span class=\"NormalTextRun SCXW4954400 BCX0\"> much gain can cause oscillations, while too little gain meant that laser frequency perturbations remained insufficiently suppressed.<\/span><\/span><span class=\"EOP SCXW4954400 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13806 size-large\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6-1024x721.png\" alt=\"Moku interface of the Measured RMS of the error signal&nbsp;\" width=\"1024\" height=\"721\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6-1024x721.png 1024w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6-300x211.png 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6-768x541.png 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6-600x423.png 600w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig6.png 1066w\" sizes=\"(max-width: 1024px) 100vw, 1024px\" \/><\/p>\n<p style=\"text-align: center;\"><strong><i>Figure <\/i><i>6<\/i><\/strong><i><span data-contrast=\"none\">: Measured RMS of the error signal<\/span><\/i><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:2,&quot;335551620&quot;:2,&quot;335559738&quot;:120,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><span data-contrast=\"none\">Users can further optimize loop performance by verifying the closed-loop response using the Multi-Instrument Mode feature for Moku:Pro. Moku:Pro can inject a swept sine disturbance with the Frequency Response Analyzer between Moku:Pro Output 1 and the laser piezo using a summing pre-amplifier and measure the suppression of this injected perturbation within the loop. Find further details on frequency-domain optimization in this <\/span><a href=\"https:\/\/liquidinstruments.com\/blog\/2023\/03\/15\/laser-locking-with-closed-loop-transfer-function-measurement\/\" target=\"_blank\" rel=\"noopener\"><span data-contrast=\"none\">app note<\/span><\/a><span data-contrast=\"none\">.<\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><span data-contrast=\"none\">We verified the optimized control loop performance using a one-cavity-two-lasers test. A second laser was locked to the cavity one Free Spectral Range (FSR) above the first laser\u2019s lock with a second identical Moku:Pro Laser Lock Box setup.&nbsp; With a lock at two independent frequencies, the two lasers were compared with identical common cavity noise but independent electronic noise and uncorrelated laser frequency noise. The residual frequency variation between these two locked lasers was independent of cavity spacer noise, thermal noise of the cavity coatings, and common vibrations from the laboratory environment. This noise, due only to the control loop and sensors, was measured by combining light from both laser paths into a high-speed photodetector, mixing down with a stable GHz function generator and using a Moku:Lab running the <a href=\"https:\/\/liquidinstruments.com\/products\/integrated-instruments\/phasemeter\/\">Phasemeter<\/a> instrument to track the frequency deviations. <\/span>Figure 7<span data-contrast=\"none\"> compares the frequency noise before and after the laser was locked to the cavity with Moku:Pro.&nbsp; The system stability improved by approximately six orders of magnitude at 0.001 Hz. The frequency noise also reduced to 10<sup>-2<\/sup><\/span><span data-contrast=\"none\">Hz\/\u221a<\/span><span data-contrast=\"none\">Hz.<\/span><span data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p><img decoding=\"async\" class=\"aligncenter wp-image-13807 size-full\" src=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig7.jpg\" alt=\"Frequency noise of the beat note before (blue) and after (orange) the lock was engaged&nbsp;with Moku Pro\" width=\"800\" height=\"432\" srcset=\"https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig7.jpg 800w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig7-300x162.jpg 300w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig7-768x415.jpg 768w, https:\/\/liquidinstruments.com\/wp-content\/uploads\/2023\/06\/PDHFig7-600x324.jpg 600w\" sizes=\"(max-width: 800px) 100vw, 800px\" \/><\/p>\n<p style=\"font-weight: 400; text-align: center;\"><em><strong><span class=\"TextRun SCXW183341442 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW183341442 BCX0\" data-ccp-parastyle=\"Normal Light\" data-ccp-parastyle-defn=\"{&quot;ObjectId&quot;:&quot;2f327977-6dae-407e-a3a8-8a576ce38a7a|231&quot;,&quot;ClassId&quot;:1073872969,&quot;Properties&quot;:[469775450,&quot;Normal Light&quot;,201340122,&quot;2&quot;,134234082,&quot;true&quot;,134233614,&quot;true&quot;,469778129,&quot;NormalLight&quot;,335572020,&quot;1&quot;,469777841,&quot;Proxima Nova Light&quot;,469777842,&quot;Arial&quot;,469777843,&quot;Calibri&quot;,469777844,&quot;Proxima Nova Light&quot;,469769226,&quot;Proxima Nova Light,Arial,Calibri&quot;,335551500,&quot;15921906&quot;,268442635,&quot;20&quot;,335551547,&quot;1033&quot;,335559740,&quot;276&quot;,201341983,&quot;0&quot;,335559739,&quot;120&quot;,469778324,&quot;Normal&quot;]}\">Figure <\/span><\/span><span class=\"FieldRange SCXW183341442 BCX0\"><span class=\"TextRun SCXW183341442 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW183341442 BCX0\" data-ccp-parastyle=\"Normal Light\">7<\/span><\/span><\/span><\/strong><span class=\"TextRun SCXW183341442 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW183341442 BCX0\" data-ccp-parastyle=\"Normal Light\">: Frequency noise of the beat note before (blue) and after (orange) the lock was engaged<\/span><\/span><span class=\"EOP SCXW183341442 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335551550&quot;:2,&quot;335551620&quot;:2,&quot;335559738&quot;:120,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/em><\/p>\n<div>\n<div>\n<p class=\"NormalLight\">&nbsp;<\/p>\n<\/div>\n<\/div>\n<hr style=\"margin: 50px 0 50px 0 !important;\" \/>\n<h2>Acknowledgements<\/h2>\n<p style=\"font-weight: 400;\"><span class=\"TextRun SCXW49456453 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW49456453 BCX0\">We would like to thank Andrew Wade, Kirk McKenzie, Emily Rees, <\/span><span class=\"NormalTextRun SCXW49456453 BCX0\">Namisha<\/span> <span class=\"SpellingError SCXW49456453 BCX0\">Chabbra<\/span><span class=\"NormalTextRun SCXW49456453 BCX0\">, <\/span><span class=\"NormalTextRun SCXW49456453 BCX0\">Jue<\/span><span class=\"NormalTextRun SCXW49456453 BCX0\"> Zhang, and The Australian National University for providing us with details about their experiment, an explanation of how they used <\/span><span class=\"SpellingError SCXW49456453 BCX0\">Moku:Pro<\/span><span class=\"NormalTextRun SCXW49456453 BCX0\">, and feedback on this app note.&nbsp;<\/span><\/span><span class=\"EOP SCXW49456453 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335559739&quot;:0,&quot;335559740&quot;:240}\">&nbsp;<\/span><\/p>\n<hr style=\"margin: 50px 0 50px 0 !important;\" \/>\n<h2>References<\/h2>\n<p style=\"font-weight: 400;\">[1] <span class=\"ContentControl SCXW172203005 BCX0\"><span class=\"ContentControlBoundarySink SCXW172203005 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\">\u200b<\/span><span class=\"TextRun SCXW172203005 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW172203005 BCX0\" data-ccp-parastyle=\"Bibliography\">P. Drever <em>et al.<\/em>, Laser Phase and Frequency Stabilization Using an Optical Resonator, vol. 31, Appl. Phys.B., I983, pp. 97-105.<\/span><\/span><\/span><span class=\"EOP SCXW172203005 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p style=\"font-weight: 400;\">[2] <span class=\"ContentControl SCXW266764900 BCX0\"><span class=\"ContentControlBoundarySink SCXW266764900 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\">\u200b<\/span><span class=\"TextRun SCXW266764900 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW266764900 BCX0\" data-ccp-parastyle=\"Bibliography\">E. D. Black, An introduction to Pound\u2013Drever\u2013Hall laser frequency stabilization, vol. 69, American Association of Physics Teachers., 2000, pp. 79-87.<\/span><\/span><\/span><span class=\"EOP SCXW266764900 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<p>[3]<span class=\"ContentControl SCXW63644391 BCX0\"><span class=\"ContentControlBoundarySink SCXW63644391 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\">\u200b&nbsp;<\/span><span class=\"TextRun SCXW63644391 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW63644391 BCX0\" data-ccp-parastyle=\"Bibliography\">Z. Chang Liu <span class=\"ContentControl SCXW172203005 BCX0\"><span class=\"TextRun SCXW172203005 BCX0\" lang=\"EN-US\" xml:lang=\"EN-US\" data-contrast=\"none\"><span class=\"NormalTextRun SCXW172203005 BCX0\" data-ccp-parastyle=\"Bibliography\"><em>et al.<\/em><\/span><\/span><\/span>, Far Off-Resonance Laser Frequency Stabilization Technology, Appl. Sci., 2020. <\/span><\/span><\/span><span class=\"EOP SCXW63644391 BCX0\" data-ccp-props=\"{&quot;201341983&quot;:0,&quot;335559739&quot;:120,&quot;335559740&quot;:276}\">&nbsp;<\/span><\/p>\n<hr style=\"margin: 50px 0 50px 0 !important;\" \/>\n<p><!--HubSpot Call-to-Action Code --><span id=\"hs-cta-wrapper-9ecbb9ec-bf08-4413-b433-60afe6078a77\" class=\"hs-cta-wrapper\"><span id=\"hs-cta-9ecbb9ec-bf08-4413-b433-60afe6078a77\" class=\"hs-cta-node hs-cta-9ecbb9ec-bf08-4413-b433-60afe6078a77\"><!-- [if lte IE 8]&gt;--><\/span><\/span><\/p>\n<div id=\"hs-cta-ie-element\">&nbsp;<\/div>\n<p><a href=\"https:\/\/cta-redirect.hubspot.com\/cta\/redirect\/3954510\/9ecbb9ec-bf08-4413-b433-60afe6078a77\" target=\"_blank\" rel=\"noopener\"><img decoding=\"async\" id=\"hs-cta-img-9ecbb9ec-bf08-4413-b433-60afe6078a77\" class=\"hs-cta-img aligncenter\" style=\"border-width: 0px;\" src=\"https:\/\/no-cache.hubspot.com\/cta\/default\/3954510\/9ecbb9ec-bf08-4413-b433-60afe6078a77.png\" alt=\"Learn more about our ebook: The ultimate guide to PDH locking\" \/><\/a><!-- end HubSpot Call-to-Action Code --><\/p>\n<hr style=\"margin: 50px 0 50px 0 !important;\" \/>\n<h2>Questions or comments?<\/h2>\n<p>Contact us at <a href=\"mailto:support@liquidinstruments.com\">support@liquidinstruments.com<\/a>.<\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"excerpt":{"rendered":"<p>The Moku:Pro Laser Lock Box integrates multiple crucial electronic components of the Pound-Drever-Hall laser locking technique into one instrument, making the laser locking process easier than ever without compromising performance. This app note will cover the principles of PDH locking, outline the procedure for locking a laser to a high-finesse cavity using the Moku:Pro Laser [&hellip;]<\/p>\n","protected":false,"gt_translate_keys":[{"key":"rendered","format":"html"}]},"author":40,"featured_media":13802,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"content-type":"","footnotes":""},"categories":[5],"tags":[],"class_list":["post-13721","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-application-notes","site-category-laser-lock-box","site-category-mokupro"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v27.0 (Yoast SEO v27.0) - https:\/\/yoast.com\/product\/yoast-seo-premium-wordpress\/ -->\n<title>PDH laser locking with Moku&#039;s Laser Lock Box | Liquid Instruments<\/title>\n<meta name=\"description\" content=\"Learn to streamline the Pound-Drever-Hall laser locking technique using Moku:Pro&#039;s Laser Lock Box function.\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/liquidinstruments.com\/application-notes\/pdh-laser-locking\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Optimize PDH laser locking with the Moku Laser Lock Box\" \/>\n<meta property=\"og:description\" content=\"Learn to streamline the Pound-Drever-Hall laser locking technique using Moku:Pro&#039;s Laser Lock Box function.\" \/>\n<meta property=\"og:url\" content=\"https:\/\/liquidinstruments.com\/application-notes\/pdh-laser-locking\/\" \/>\n<meta property=\"og:site_name\" content=\"Liquid Instruments\" \/>\n<meta property=\"article:publisher\" content=\"https:\/\/www.facebook.com\/LiquidInstruments\/\" \/>\n<meta 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