{"id":10880,"date":"2024-05-07T12:02:52","date_gmt":"2024-05-07T16:02:52","guid":{"rendered":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/breaking-the-scaling-limits-new-ultralow-noise-superconducting-camera-for-exoplanet-searches\/"},"modified":"2024-05-07T12:02:52","modified_gmt":"2024-05-07T16:02:52","slug":"breaking-the-scaling-limits-new-ultralow-noise-superconducting-camera-for-exoplanet-searches","status":"publish","type":"post","link":"https:\/\/zobi.alcowep.com\/bourtagshdrevxnls658739\/breaking-the-scaling-limits-new-ultralow-noise-superconducting-camera-for-exoplanet-searches\/","title":{"rendered":"Breaking the Scaling Limits: New Ultralow-noise Superconducting Camera for Exoplanet Searches"},"content":{"rendered":"<h2 style=\"text-align: center;\">Breaking the Scaling Limits: New Ultralow-noise Superconducting Camera for Exoplanet Searches<\/h2>\n<p><!-- no image --><\/p>\n<div class=\"hds-article-hero-header nasa-gb-align-full bg-carbon-90 width-full maxw-full color-mode-dark hds-module hds-module-full wp-block-nasa-blocks-article-hero-header\">\n<div class=\"hds-cover-wrapper width-full maxw-full minh-tablet grid-container minh-tablet flex-column padding-0\">\n<div class=\"hds-foreground-wrapper display-flex flex-direction-column\">\n<div class=\"grid-container grid-container-block margin-top-auto width-full maxw-desktop-lg padding-y-9 padding-x-3 desktop:padding-x-0 z-400\">\n<div class=\"z-400 grid-col-12 tablet:grid-col-12 desktop:grid-col-7 z-400\">\n<div class=\"margin-0\">\n<div class=\"label color-spacesuit-white margin-bottom-2\">6 Min Read<\/div>\n<h1 class=\"heading-41 line-height-md color-spacesuit-white-important\">\n\t\t\t\t\t\t\t\tBreaking the Scaling Limits: New Ultralow-noise Superconducting Camera for Exoplanet Searches\t\t\t\t\t\t\t<\/h1>\n<\/div>\n<\/div>\n<div class=\"grid-col-12 tablet:grid-col-12 desktop:grid-col-5\"><\/div>\n<div class=\"skrim-overlay skrim-left mobile-skrim-top z-200\"><\/div>\n<figure class=\"hds-media-background  \"><img fetchpriority=\"high\" decoding=\"async\" width=\"1536\" height=\"1152\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?w=1536\" class=\"attachment-1536x1536 size-1536x1536\" alt=\"A microscope image of a rectangular chip, showing the different parts of the superconducting camera, including imaging area and ancillary electronics. The chip has a colorful patina, with hues of yellow on the left, red in the center, and blue on the right.\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=300,225 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=768,576 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1024,768 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1536,1152 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=400,300 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=600,450 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=900,675 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1200,900 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=2000,1500 2000w\" sizes=\"(max-width: 1536px) 100vw, 1536px\" loading=\"eager\"><\/figure>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"padding-y-3 padding-x-3\">\n<div class=\"grid-container grid-container-block padding-x-0\">\n\t\t\t\t\t\t\t<\/div>\n<\/div>\n<\/div>\n<p>When imaging faint objects such as distant stars or exoplanets, capturing every last bit of light is crucial to get the most out of a scientific mission. These cameras must be extremely low-noise, and be able to detect the smallest quantities of light\u2014single photons.\u00a0 Superconducting cameras excel in both of these criteria, but have historically not been widely applicable because their camera sizes have been small, rarely exceeding a few thousand pixels, which limits their ability to capture high-resolution images.\u00a0 However, a team of researchers has recently shattered that barrier, developing a superconducting camera with 400,000 pixels, which could be used to detect faint astronomical signals in a wide range of wavelengths\u2014from the ultraviolet to the infrared.<\/p>\n<div class=\"hds-media hds-module wp-block-image\">\n<div class=\"margin-left-auto margin-right-auto nasa-block-align-inline\">\n<div class=\"hds-media-wrapper margin-left-auto margin-right-auto\">\n<figure class=\"hds-media-inner hds-cover-wrapper hds-media-ratio-cover \"><a href=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg\" rel=\"noopener\"><img loading=\"lazy\" decoding=\"async\" width=\"2048\" height=\"1536\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?w=2048\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"A microscope image of a rectangular chip, showing the different parts of the superconducting camera, including imaging area and ancillary electronics. The chip has a colorful patina, with hues of yellow on the left, red in the center, and blue on the right.\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=300,225 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=768,576 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1024,768 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1536,1152 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=400,300 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=600,450 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=900,675 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=1200,900 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/20220808-131853.jpg?resize=2000,1500 2000w\" sizes=\"auto, (max-width: 2048px) 100vw, 2048px\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">The 400,000 pixel superconducting camera based on superconducting-nanowire single photon detectors <\/div>\n<div class=\"hds-credits\">Credit: Adam McCaughan\/NIST<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>While plenty of other camera technologies exist, cameras using superconducting detectors are very appealing for use in astronomical missions due to their extremely low-noise operation.\u00a0 When imaging faint sources, it is crucial that a camera report the quantity of received light faithfully, and not skew the amount of light received or inject its own false signals.\u00a0\u00a0 Superconducting detectors are more than capable of this task, owing to their low-temperature operation and unique composition. As described by project lead Dr. Adam McCaughan, \u201cwith these detectors you could take data all day long, capturing billions of photons, and fewer than ten of those photons would be the result of noise.\u201d<\/p>\n<div class=\"hds-media hds-module wp-block-image\">\n<div class=\"margin-left-auto margin-right-auto nasa-block-align-inline\">\n<div class=\"hds-media-wrapper margin-left-auto margin-right-auto\">\n<figure class=\"hds-media-inner hds-cover-wrapper hds-media-ratio-cover \"><a href=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg\" rel=\"noopener\"><img loading=\"lazy\" decoding=\"async\" width=\"2048\" height=\"1538\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?w=2048\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"Two NIST team members stand beside an exposed cryogenic refrigerator, wearing gloves while affixing an aluminum sample box with wires coming out of it to a copper sample stage\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg 4624w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=300,225 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=768,577 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=1024,769 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=1536,1153 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=2048,1538 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=400,300 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=600,451 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=900,676 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=1200,901 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/pxl-20231109-212035127.jpg?resize=2000,1502 2000w\" sizes=\"auto, (max-width: 2048px) 100vw, 2048px\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">NIST team members Bakhrom Oripov (left) and Ryan Morgenstern (right) mount the superconducting camera to a specialized cryogenic stage <\/div>\n<div class=\"hds-credits\">Credit: Adam McCaughan\/NIST<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>But while superconducting detectors hold great promise for astronomical applications, their usage in that field has been stymied by small camera sizes that permit relatively few pixels.\u00a0 Because these detectors are so sensitive, it is difficult to pack a lot of them into a small area without them interfering with each other.\u00a0 In addition, since these detectors need to be kept cold in a cryogenic refrigerator, only a handful of wires can be used to carry the signals from the camera to the warmer readout electronics.<\/p>\n<p>To overcome these limitations, researchers at the National Institute of Standards and Technology (NIST), the NASA Jet Propulsion Laboratory (JPL), and the University of Colorado Boulder applied time-domain multiplexing technology to the interrogation of two-dimensional superconducting-nanowire single photon detector (SNSPD) arrays. The individual SNSPD nanowires are arranged as intersecting rows and columns. When a photon arrives, the times it takes to trigger a row detector and a column detector are measured to ascertain which pixel sent the signal. This method allows the camera to efficiently encode its many rows and columns onto just a few readout wires instead of thousands of wires.\u00a0<\/p>\n<div class=\"width-full maxw-full margin-left-auto margin-right-auto hds-media-align-inline hds-module wp-block-nasa-blocks-video\">\n<div class=\"hds-cover-wrapper width-full maxw-full flex-column\">\n<div class=\"hds-video-container width-full embed-container\"><video title=\"single-photon-superconducting-camera-video-download\" class=\"video-js video-player vjs-fluid width-full\" data-setup='{\"controls\":true,\"preload\":\"auto\",\"plugins\":{\"mux\":{\"debug\":false,\"data\":{\"env_key\":\"91nns8oppqdfqc44lgo4b1gni\",\"player_name\":\"www.nasa.gov Player\",\"video_name\":\"single-photon-superconducting-camera-video-download\"}}}}' preload=\"none\"><source src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/single-photon-superconducting-camera-video-download.mp4\" type=\"video\/mp4\"><p class=\"vjs-no-js\">To view this video please enable JavaScript, and consider upgrading to a web browser that<br \/>\n\t\t\t\t\t<a href=\"https:\/\/videojs.com\/html5-video-support\/\" target=\"_blank\" rel=\"noopener\">supports HTML5 video<\/a><\/p>\n<p><\/source><\/video><\/div>\n<\/div>\n<div class=\"hds-media-caption hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">\n<div>This animation depicts the newly developed readout system that made it possible for researchers to build a 400,000 single-wire superconducting camera, the highest resolution camera of its type.<\/div>\n<\/div>\n<div class=\"hds-credits\">\n<div>Credit: S. Kelley\/NIST<\/div>\n<\/div>\n<\/div>\n<\/div>\n<p>SNSPDs are one type of detector in a collection of many such superconducting detector technologies, including microwave kinetic inductance detectors (MKID), transition-edge sensors (TES), and quantum capacitance detectors (QCD).\u00a0 SNSPDs are unique in that they are able to operate much warmer than the millikelvin temperatures required by those other technologies, and can have extremely good timing resolution, although they are not able to resolve the color of individual photons.\u00a0 SNSPDs have been collaboratively researched by NIST, JPL, and others in the community for almost two decades, and this most recent work was only possible thanks to the advances generated by the wider superconducting detector community.<\/p>\n<p>Once the team implemented this readout architecture, they found it immediately became straightforward to construct superconducting cameras with extremely large numbers of pixels. As described by technical lead Dr. Bakhrom Oripov, \u201cThe big advance here is that the detectors are truly independent, so if you want a camera with more pixels, you just add more detectors to the chip.\u201d The researchers note that while their recent project was a 400,000 pixel device, they also have an upcoming demonstration of a device with over a million pixels, and have not found an upper limit yet.\u00a0<\/p>\n<p>One of the most exciting things that the researchers think their camera could be useful for is a search for Earth-like planets outside of our solar system. To detect these planets successfully, future space telescopes will observe distant stars and look for tiny portions of reflected or emitted light coming from orbiting planets. Detecting and analyzing these signals is extremely challenging and requires very long exposures, which means that every photon collected by the telescope is very valuable. A reliable, low-noise camera will be critical to detect these incredibly small quantities of light.<\/p>\n<div class=\"hds-media hds-module wp-block-image\">\n<div class=\"margin-left-auto margin-right-auto nasa-block-align-inline\">\n<div class=\"hds-media-wrapper margin-left-auto margin-right-auto\">\n<figure class=\"hds-media-inner hds-cover-wrapper hds-media-ratio-cover \"><a href=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg\" rel=\"noopener\"><img loading=\"lazy\" decoding=\"async\" width=\"2048\" height=\"1045\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?w=2048\" class=\"attachment-2048x2048 size-2048x2048\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg 5830w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=300,153 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=768,392 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=1024,523 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=1536,784 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=2048,1045 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=400,204 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=600,306 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=900,459 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=1200,613 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/emanuelandrewjasonboris.jpg?resize=2000,1021 2000w\" sizes=\"auto, (max-width: 2048px) 100vw, 2048px\"><\/a><\/figure><figcaption class=\"hds-caption padding-y-2\">\n<div class=\"hds-caption-text p-sm margin-0\">JPL team members with two prototype cryocoolers that will be used to test the superconducting camera at far-ultraviolet wavelengths. From left to right, Emanuel Knehr, Boris Korzh, Jason Allmaras, and Andrew Beyer <\/div>\n<div class=\"hds-credits\">Credit: Boris Korzh\/NASA JPL<\/div>\n<\/figcaption><\/div>\n<\/div>\n<\/div>\n<p>SNSPD cameras can also be used on Earth to detect optical communication signals from missions in deep space. In fact, NASA is currently demonstrating this capability via the <a href=\"https:\/\/www.nasa.gov\/mission\/deep-space-optical-communications-dsoc\/\">Deep Space Optical Communications (DSOC) project,<\/a> which is the first demonstration of free-space optical communication from interplanetary space. DSOC is sending data from a spacecraft called Psyche\u2014which was launched on October 13 and is on its way to the Psyche asteroid\u2014to an SNSPD-based ground terminal at Palomar Observatory. Optical links can transmit data at a much higher rate than radio frequency links from interplanetary distances. The excellent timing resolution of the camera developed for the ground station receiving Psyche data allows it to decode optical data from the spacecraft, which enables much more data to be received in a given time than if radio signals were employed.<\/p>\n<p>These sensors will also be useful for many applications on Earth. Because the operating wavelength of this camera is very flexible, it could be optimized for applications in biomedical imaging to detect faint signals from cells and molecules, which were previously not detectable. Dr. McCaughan noted, \u201cWe would love to get these cameras in the hands of neuroscientists. This technology could provide them with a new tool to study our brains, in a completely non-intrusive way.\u201d<\/p>\n<p>Finally, the rapidly growing field of quantum technology, which promises to change the way we secure communications and transactions as well as the way we simulate and optimize complex processes, also stands to gain from this exciting technology. A single photon can be used to transfer or compute a single bit of quantum information. Many companies and governments are currently trying to scale up quantum computers and communication links and access to a single-photon camera that is so easily scalable, could overcome one of the major hurdles to unlocking the full potential of quantum technologies.<\/p>\n<p>According to the research team, the next steps will be to take this initial demonstration and optimize it for space applications.\u00a0 \u201cRight now, we have a proof-of-concept demonstration,\u201d says co-project lead Dr. Boris Korzh, \u201cbut we\u2019ll need to optimize it to show its full potential.\u201d The research team is currently planning ultra-high-efficiency camera demonstrations that will validate the utility of this new technology in both the ultraviolet and the infrared.<\/p>\n<h3 class=\"wp-block-heading\">PROJECT LEADS<\/h3>\n<p>Dr. Adam McCaughan (NIST) and Dr. Boris Korzh (JPL)<\/p>\n<h3 class=\"wp-block-heading\">SPONSORING ORGANIZATIONS<\/h3>\n<p>Astrophysics Research and Analysis (APRA) Program, DARPA Invisible Headlight Program<\/p>\n<div class=\"nasa-gb-align-full width-full maxw-full padding-x-3 padding-y-0 article_a hds-module hds-module-full wp-block-nasa-blocks-credits-and-details\">\n<section class=\"padding-x-0 padding-top-5 padding-bottom-2 desktop:padding-top-7 desktop:padding-bottom-9\">\n<div class=\"grid-row grid-container maxw-widescreen padding-0\">\n<div class=\"grid-col-12 desktop:grid-col-2 padding-right-4 margin-bottom-5 desktop:margin-bottom-0\">\n<div class=\"padding-top-3 border-top-1px border-color-carbon-black\">\n<div class=\"margin-bottom-2\">\n<h2 class=\"heading-14\">Share<\/h2>\n<\/div>\n<div class=\"padding-bottom-2\">\n<ul class=\"social-icons social-icons-round\">\n<li class=\"social-icon social-icon-x\">\n\t\t\t\t\t\t\t<a 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grid-container maxw-widescreen padding-0 text-align-left\">\n<div class=\"margin-bottom-4\">\n<h2 class=\"width-full w-full maxw-full\">Explore More<\/h2>\n<\/div>\n<\/div>\n<div class=\"grid-row grid-container maxw-widescreen padding-0\">\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/supermassive-black-holes\/new-nasa-black-hole-visualization-takes-viewers-beyond-the-brink\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"169\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg 1281w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=300,169 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=768,432 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=1024,576 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=400,225 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=600,337 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=900,506 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/black-hole-approach-1.jpg?resize=1200,674 1200w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">5 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">New NASA Black Hole Visualization Takes Viewers Beyond the Brink<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t22 hours ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/missions\/hubble\/hubble-views-a-galaxy-with-a-voracious-black-hole\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"290\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg 4058w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=300,290 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=768,743 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=1024,991 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=1536,1486 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=2048,1982 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=400,387 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=600,581 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=900,871 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=1200,1161 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ngc4951-1ok-flatcrop-final.jpg?resize=2000,1935 2000w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">2 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">Hubble Views a Galaxy with a Voracious Black Hole<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t1 day ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<div class=\"grid-col-12 desktop:grid-col-4 margin-bottom-4 desktop:margin-bottom-0 desktop:padding-right-3\">\n\t\t\t\t\t\t<a href=\"https:\/\/science.nasa.gov\/missions\/hubble\/hubble-hunts-visible-light-sources-of-x-rays\/\" class=\"color-carbon-black\" rel=\"noopener\"><\/p>\n<div class=\"margin-bottom-2\">\n<div class=\"hds-cover-wrapper cover-hover-zoom bg-carbon-black minh-mobile\">\n<figure class=\"hds-media-background  \"><img loading=\"lazy\" decoding=\"async\" width=\"300\" height=\"300\" src=\"https:\/\/science.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?w=300\" class=\"attachment-medium size-medium\" alt=\"\" block_context=\"nasa-block\" srcset=\"https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg 2608w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=150,150 150w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=300,300 300w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=768,768 768w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=1024,1024 1024w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=1536,1536 1536w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=2048,2048 2048w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=50,50 50w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=100,100 100w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=200,200 200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=400,400 400w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=600,600 600w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=900,900 900w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=1200,1200 1200w, https:\/\/smd-cms.nasa.gov\/wp-content\/uploads\/2024\/05\/hubble-ic776-potw2418a.jpg?resize=2000,2000 2000w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\"><\/figure>\n<\/div>\n<\/div>\n<div class=\"padding-right-0 desktop:padding-right-10\">\n<div class=\"subheading margin-bottom-1\">2 min read<\/div>\n<div class=\"margin-bottom-1\">\n<h3 class=\"related-article-title\">Hubble Hunts Visible Light Sources of X-Rays<\/h3>\n<\/div>\n<div class=\"display-flex flex-align-center label related-article-label margin-bottom-1 color-carbon-60\">\n\t\t\t\t\t\t\t\t\t<span class=\"display-flex flex-align-center margin-right-2\"><br \/>\n\t\t\t\t\t\t\t\t\t\t<svg version=\"1.1\" class=\"square-2 margin-right-1\" xmlns=\"http:\/\/www.w3.org\/2000\/svg\" xmlns:xlink=\"http:\/\/www.w3.org\/1999\/xlink\" x=\"0px\" y=\"0px\" width=\"16px\" height=\"16px\" viewbox=\"0 0 16 16\" xml:space=\"preserve\"><g><g><path d=\"M8,0C3.5,0-0.1,3.7,0,8.2C0.1,12.5,3.6,16,8,16c4.4,0,8-3.6,8-8C16,3.5,12.4,0,8,0z M8,15.2 C4,15.2,0.8,12,0.8,8C0.8,4,4,0.8,8,0.8c3.9,0,7.2,3.2,7.2,7.1C15.2,11.9,12,15.2,8,15.2z\"><\/path><path d=\"M5.6,12c0.8-0.8,1.6-1.6,2.4-2.4c0.8,0.8,1.6,1.6,2.4,2.4c0-2.7,0-5.3,0-8C8.8,4,7.2,4,5.6,4 C5.6,6.7,5.6,9.3,5.6,12z\"><\/path><\/g><\/g><\/svg><br \/>\n\t\t\t\t\t\t\t\t\t\t<span>Article<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<\/span><br \/>\n\t\t\t\t\t\t\t\t\t<span class=\"\"><br \/>\n\t\t\t\t\t\t\t\t\t\t4 days ago\t\t\t\t\t\t\t\t\t<\/span>\n\t\t\t\t\t\t\t\t<\/div>\n<\/div>\n<p><\/a>\n\t\t\t\t\t<\/div>\n<\/div>\n<\/section>\n<\/div>\n<p class=\"wpematico_credit\"><small>Powered by <a href=\"http:\/\/www.wpematico.com\" target=\"_blank\" rel=\"noopener\">WPeMatico<\/a><\/small><\/p>\n<p><a href=\"https:\/\/science.nasa.gov\/science-research\/astrophysics\/breaking-the-scaling-limits-new-ultralow-noise-superconducting-camera-for-exoplanet-searches\/\" 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