{"id":913,"date":"2024-08-04T15:43:58","date_gmt":"2024-08-04T15:43:58","guid":{"rendered":"https:\/\/kuantumbilgisayar.net\/?p=913"},"modified":"2024-08-04T15:54:43","modified_gmt":"2024-08-04T15:54:43","slug":"malzeme-bilimi-ve-kuantum-bilgisayim-teknolojisi","status":"publish","type":"post","link":"https:\/\/kuantumbilgisayar.net\/?p=913","title":{"rendered":"Malzeme Bilimi ve Kuantum Bilgisay\u0131m Teknolojisi"},"content":{"rendered":"\n<figure class=\"wp-block-embed is-type-video is-provider-youtube wp-block-embed-youtube wp-embed-aspect-16-9 wp-has-aspect-ratio\"><div class=\"wp-block-embed__wrapper\">\n<iframe title=\"Quantum Computing Technology for Material Science | Baran Ozdemir | Conf42 Quantum Computing 2024\" width=\"950\" height=\"534\" src=\"https:\/\/www.youtube.com\/embed\/wRNLnADbXBA?feature=oembed\" frameborder=\"0\" allow=\"accelerometer; autoplay; clipboard-write; encrypted-media; gyroscope; picture-in-picture; web-share\" referrerpolicy=\"strict-origin-when-cross-origin\" allowfullscreen><\/iframe>\n<\/div><\/figure>\n\n\n\n<h3 class=\"wp-block-heading\">Abstract<\/h3>\n\n\n\n<p class=\"wp-block-paragraph\">Quantum Computing Technology represents many opportunities in every field of life. These opportunities become real with material science. How about developments in materials science regarding quantum computing technology?<\/p>\n\n\n\n<h3 class=\"wp-block-heading\">Summary<\/h3>\n\n\n\n<ul class=\"wp-block-list\">\n<li>In every field of science, engineering or others we use material science. Quantum computing technology is the most advanced technology today. How can we apply quantum computing technology for material science?<\/li>\n\n\n\n<li>IBM has more than thousands of qubits, giving it unimaginable calculation capability. The pharmaceutical industry stands out as the important area where quantum computers and material science are combined. Quantum computing&#8217;s primary value for pharma lies in research and development.<\/li>\n\n\n\n<li>The development of material science directly affects computer technologies. Electrical properties of materials emerge as the most important property for current computers. Two dimensional materials is important to achieve more and more stable photos. How can we apply the materials in the quantum computing technology.<\/li>\n<\/ul>\n\n\n\n<p class=\"wp-block-paragraph\"><\/p>\n\n\n\n<p class=\"wp-block-paragraph\">Today we will discuss quantum computing technology for\u00a0material science, why material science is\u00a0important and how can we apply quantum computing\u00a0technology for material science? In every field\u00a0of science, engineering or others we use\u00a0material science and the quantum computing technology is the\u00a0most advanced technology today. And we need to apply\u00a0in the field of material science and how can we do it?\u00a0Today we will discuss it. I prepared\u00a0some slides to presentation about quantum\u00a0computing technology for material science,\u00a0why this is important, why quantum computing technology\u00a0is the biggest challenge for the material science\u00a0and how is it works. For the introduction part\u00a0prepared the quantum computing technology. I will\u00a0give some short information about the\u00a0quantum computing technology because it is very deep. It is very\u00a0deep topic about advanced technology,\u00a0but I will give the short information about that. And after\u00a0that we will discuss the power of computing,\u00a0how this is, this is how it is, it is\u00a0possible and how we are used. The qubits or\u00a0classical computers. What is the difference between classical computers\u00a0and the quantum computing and the power of computing\u00a0is very essential, very important for the material science.\u00a0And in the main topic, the material science and\u00a0power of computing, how can we apply this technology\u00a0in the material science, how we can change the\u00a0power of computing in the field of material\u00a0science and different industries and\u00a0studies. I will give some example\u00a0about that. And after that, material science\u00a0for quantum technology, we design different materials for\u00a0the quantum computing technology and quantum computing\u00a0technology will design different materials. It is very\u00a0complicated problem for science\u00a0today, but I will give some sort of\u00a0information and I will give some brief talk about\u00a0it. After that we will make a conclusion and\u00a0the quantum computing technology. This technology is\u00a0the most important scientific discipline of our century and\u00a0our future. Why I said like that?\u00a0Because it is the most advanced technology,\u00a0because we can achieve the most\u00a0competing power of competing with the quantum computing technology\u00a0in the material science. We can design any material.\u00a0We can make anything with\u00a0the quantum computing technology. This technology is the basis of the\u00a0systems that can achieve high computational capability with the\u00a0help of qubits. It is very different between the classical computer\u00a0and the quantum computing because there are many qubits\u00a0that are fair position in the qubits, which we\u00a0can apply in the games, in the different algorithms,\u00a0in the quantum computing with the help of the qubits\u00a0and we can solve many complex problems.\u00a0Help of the qubits and the inherent parallelism of\u00a0quantum computing comes from the superposition of qubits.\u00a0This parallelism allows a quantum computer to work on\u00a0a million computations\u00a0at once. It&#8217;s very important because this\u00a0is the huge amount of computational power\u00a0of qubits. And we can achieve\u00a0the thousands of qubits today at the help of\u00a0IBM, it is very important scientific news.\u00a0This technology can fulfill high accuracy and computational\u00a0capability with different algorithms and a completely\u00a0different concept of information processing. It is very\u00a0different to use quantum computing\u00a0technology in accordance with the information process\u00a0because you need to design your algorithms,\u00a0your gates and your problem in\u00a0this field of competing. In this field of computing.\u00a0This technology creates its own ecosystems with five\u00a0different qubit models, different algorithm shapes,\u00a0problems and solution. As I said before,\u00a0this is a new concept and we need to design\u00a0the material science in this field.\u00a0And we can achieve anything. We can make anything\u00a0with help of quantum computing technology\u00a0and the power of competing. It is the main idea\u00a0of the quantum computing technology because we\u00a0can make a solution for the complex problems with\u00a0help of the power of computing. How we take this\u00a0power of computing because of there are qubits.\u00a0This technology brings with it the computational power unimaginable\u00a0to mankind because as I said before,\u00a0we already reach more than 10,000 qubits\u00a0due to the IBM arcs. This process\u00a0capability increases exponentially as two power of\u00a0n depending on the number of qubits. For example,\u00a0at 30 qubit quantum computer would equal\u00a0the processing power of a conventional computer that\u00a0could run teraflops, trillions of floating point\u00a0operations per second. Today&#8217;s typical desktop\u00a0computers run at speed measured in gjaflow,\u00a0billions of floating point of operation. But that\u00a0amount of power of computing, it is very unimaginable.\u00a0And how can we use in the material science?\u00a0I will show you this image,\u00a0show the 10,000 qubit processor.\u00a0Image d wave systems also d wave\u00a0has a very good work about the\u00a0quantum computing qubit processor. How can we obtain\u00a0the qubits and how can we apply the qubits on\u00a0the problem with different algorithms, with the different\u00a0gains, how can we solve this problem and how\u00a0can we apply in industry? Next slides we\u00a0will discuss the material science,\u00a0how it&#8217;s related with the qubits.\u00a0And this is the amount of qubits of IBM different\u00a0years. We reach more than thousands,\u00a0more than thousand in last year. It is very important\u00a0and big news about it, because that\u00a0amount of qubits gives us the unimaginable\u00a0calculation capability, power of computing capability\u00a0and material science. And power of computing in the\u00a0material science, defining the specifics of materials,\u00a0structure, property, process and characterization are taken\u00a0into account. We can design all all polymers,\u00a0all cells are metals.\u00a0With the processing performance, structure properties\u00a0and characterization values, we can combine them with\u00a0new materials and achieve high performance materials\u00a0and very different nanomaterials.\u00a0And we can obtain different shape of structure,\u00a0we can obtain different processes of materials.\u00a0We can obtain higher performance materials with the change\u00a0of atomic structure, with the change of molecular arrangement,\u00a0and with the change of movement of molecules in the\u00a0polymers. For example, when I give the parameter\u00a0for the polymers, we can change the moment\u00a0of the polymer chain, we can change\u00a0polymer thermodynamics of the polymer.\u00a0And how can we improve the process\u00a0about this thermodynamic processing?\u00a0Because there is a huge amount of problems\u00a0inside of metaverse. This is the power of competing,\u00a0we can apply, we can make a calculation,\u00a0we can achieve the more and more high performance\u00a0materials. Because we have the qubits,\u00a0we can solve many problems. It is very important.\u00a0Each parameter is carefully selected and combined to determine the\u00a0performance of the materials. You can make different alloying\u00a0elements and how can we solve the different kinetics\u00a0of materials parameters. We can create a\u00a0new material and you need to make simulation.\u00a0How can you make simulations? You can&#8217;t\u00a0even imagine the amount of the problem.\u00a0This is why we are using the qubits. This is the power\u00a0of computing. With the quantum computing technology\u00a0in the material size, we can solve many problems.\u00a0In the material size, we can design kinetics of\u00a0materials, we can make relationships in the\u00a0thermodynamics process. And this can help us\u00a0to design our materials thermodynamically,\u00a0in the atomic structure, in the performance of the materials,\u00a0in nano parameters or macro parameters.\u00a0It&#8217;s very important and there are many different\u00a0industries and studies about this. The pharmaceutical\u00a0steel cell companies have devoted a growing share of\u00a0their net revenues to RD activities, averaging about\u00a02020 19% over the past\u00a0two decades. By comparison, other research intensive\u00a0industry like software and semiconductors average about\u00a015%. This is very important.\u00a0Pharmaceutical company companies can apply\u00a0the material science is the main factor,\u00a0why they are applied to quantum computing technology and\u00a0the power of competing in the pharmaceutical industry and\u00a0why we design new semiconductors. How can\u00a0we do it? Because there are big solution, a big problem\u00a0inside the atomic structure, thermodynamics and\u00a0atomic arrangements and many calculations. We need\u00a0to solve this problem.\u00a0Accuracy, accuracy. And you need\u00a0to be fast. And that&#8217;s why the Cubans\u00a0help us. And different industries and\u00a0studies I will give the pharmaceutical industry and\u00a0quantum computing&#8217;s primary value for pharma lies in research\u00a0and development. Disease under strength\u00a0development, target finding. This is very important to\u00a0use quantum computing technology to competing\u00a0with power of computing, because this industry\u00a0is growing very rapidly due to material science. In order to\u00a0design materials, collect appropriate data and ensure\u00a0chemical and physical stability. The big data network must\u00a0be analyzed quickly and the right decision must\u00a0be made. The pharmaceutical industry stands\u00a0out as the important area where quantum computers\u00a0and material science are combined. This situation grows\u00a0even more with financial data and investments instruments.\u00a0This is very important because in the chemical and\u00a0physical tests, during chemical and physical tests,\u00a0there are millions of data according to\u00a0drugs and crystallization ratio,\u00a0optimization ratio or anything.\u00a0The analysis of the chemical structure. How can we solve\u00a0this problem? Easily. And you\u00a0need to give good decision about the\u00a0set of industry, because it is very important in us.\u00a0You need to be very fast. For example,\u00a0pandemic and the Covid-19 you need\u00a0to make good drugs. And how\u00a0can you do that? Because you need to combine many\u00a0things in the drugs. And there are four stages\u00a0in the pharmaceutical industry to\u00a0make a good drug. And this is\u00a0why we are using this method and the quantum\u00a0computing technology. And this is very important\u00a0for this industry. And also there are other industries.\u00a0For example, semiconductors. As the semiconductor\u00a0industry, according to research\u00a0in the 2000 previous slides. In the previous slides,\u00a0you need to grow your crystalline structure in\u00a0the semiconductors. How can you apply at\u00a0the pressure level? The pressure level is important and atomic structure\u00a0is the most important part. Because the stability of the\u00a0electrons and the band gap, it&#8217;s very important. It is\u00a0another parameters, there are billions parameters\u00a0and you need to combine these parameters very fast.\u00a0This is why we are using quantum computing.\u00a0The pharmaceutical industry is a significant\u00a0contributor to the global economy and to health systems and\u00a0health care across the world. According to data from\u00a0IQVIA, revenue in the global pharmaceutical market\u00a0is estimated to have reached 1480\u00a02 billion American dollars\u00a0in 2022.\u00a0Why the financial growth is important\u00a0for the pharmaceutical industry, as there is a\u00a0Covid-19 and other diseases in the world. And you\u00a0need to find a good solution. And how\u00a0can we apply the completed power of competing?\u00a0We need to change. We need to measure the\u00a0drug crystalline ratio, solubility optimization\u00a0and product formulations. In the organic product formulations,\u00a0you need to know the material size and\u00a0you need to be quick. You need to solve\u00a0your problem as possible quickly.\u00a0And that&#8217;s why you need to apply the computing power of computing,\u00a0because you need to know solubility optimization.\u00a0You need to change ratio of crystallinity in accordance with disease.\u00a0You need to change product formulations in accordance\u00a0with body in accordance with disease. You need to\u00a0be quick. That&#8217;s why we are using the turbines.\u00a0And then we need to examine\u00a0the other side of the other side of science,\u00a0accordance with material science in the quantum\u00a0technology. Material science for quantum computing technology\u00a0and how can we apply the materials in\u00a0the quantum computing technology. And this is other side of\u00a0this technology. The electrical properties is\u00a0one of the most important parameters for the quantum computing\u00a0technology because you need to obtain good\u00a0photons. The photon properties is\u00a0very important in this semiconductor materials.\u00a0You need to design your materials, especially two dimensional\u00a0materials is important to achieve more and\u00a0more stable photos.\u00a0When I continue in the slides, electrical properties of materials\u00a0emerge as the most important property for current computers.\u00a0Different structures and materials groups can exhibit\u00a0different electrical properties. It&#8217;s very important. There are many\u00a0semiconductors in this field and the\u00a0different corporations and different industries\u00a0work with different materials. I will give\u00a0a tree of example in\u00a0the next slides. And especially the evolution of two\u00a0dimensional materials in terms of photonics is extremely important\u00a0for quantum computing. And one of them, one of them quantum\u00a0that technology and others broadband technology.\u00a0It is very important to design the band gap and the quantum\u00a0broadband technology is important to design your\u00a0band gap to take the photos\u00a0in the, for example, rapid ion system.\u00a0It is very important and essential for broadband technology,\u00a0for band cap systems, for trapped\u00a0ion systems. On the other side, quantum dot technology is\u00a0very important for the superconducting quantum\u00a0computing technology. And this is why important because\u00a0these are different technologies used two dimensional matrix\u00a0for the stability of the systems. You need to design\u00a0your materials in the nanometer scale\u00a0as possible as good arrangements and\u00a0good appropriate. I said appropriate\u00a0electrical characteristics. It is very important to\u00a0combine different materials for the semi crystalline materials\u00a0because you need to. You need to obtain good\u00a0quality of the photon. And also lifetime is important\u00a0because if you take the photons, you need to\u00a0be processed with this photo. This is the lifetime of\u00a0the photon, is the ascension and there are some\u00a0parameters about that. For example,\u00a0super competing conductors\u00a0materials. In the most important parameters\u00a0is the operating temperatures. Because the\u00a0operating temperature is the source of energy.\u00a0It is very important to obtain good operation\u00a0temperatures to available systems,\u00a0to common systems. You need\u00a0to achieve for example -100 degrees Celsius\u00a0for the photos. Because the cryogenic temperature\u00a0is very hard to make operation\u00a0in the system. Because the cryogenic temperature is\u00a0waste of time and waste of energy.\u00a0A big energy and a big time. It is very important to\u00a0obtain cryogenic temperatures for the photos.\u00a0On the other hand, lifetimes, emission wavelength range\u00a0and the photon priority and the back gaps of photons is\u00a0the most important parameters for the photonic characteristics\u00a0of the materials. Thus, the development of material\u00a0science directly affects computer technologies and\u00a0I will give some different materials and data values in\u00a0terms of photonic properties. For example,\u00a0molybdenum, molybdenum sulfide,\u00a0tungsten and molybdenum \u00a0selenium. These are different materials,\u00a0shows different characteristics, different protonic characteristics.\u00a0As shown, the lifetime is too short. This is very\u00a0important to make a process in the quantum\u00a0computing technology. You need to achieve to protect\u00a0your lifetime, your photos to process range.\u00a0This is very important to design algorithms\u00a0on the quantum computing system because of lifetime.\u00a0If you have good lifetime, you can make a processing\u00a0time. You can have good processing time. It&#8217;s very important\u00a0also emission wavelength range is important\u00a0to work specific,\u00a0specific parameters for the system.\u00a0Because every photons have different emission wavelength\u00a0range and you need to simulate\u00a0your system in the field of emission wavelength range.\u00a0This is very important to work with different semiconductors\u00a0and also pretty of the photos. I will give\u00a0some examples about these materials for our\u00a0work. The purity of the photon is important to\u00a0obtain more clear information from the photos.\u00a0It is also important and the operation temperature.\u00a0And I said before, operation temperature is important to apply\u00a0this technology in\u00a0the industry because cryogenic temperature is very\u00a0hard to obtain that for the industry and\u00a0the every field of the life.\u00a0And you need to obtain good temperature, good operation temperature\u00a0to your process, to your system too.\u00a0For work. It is very important because temperature is the\u00a0cost of energy, mainly cost of energy\u00a0is the temperature you need to make a good setup\u00a0about that. And the belly gap is important to\u00a0to arrange the electron volts between the\u00a0minus and phosphine minus and p\u00a0type, n for n type. And this is very important and technical\u00a0issue for the obtain photos\u00a0in this field of quantum technology. And when\u00a0I make a summarize in the summary, a quantum\u00a0computing technology have been used to determine the critical properties of\u00a0magic. This has had a direct impact on the development of\u00a0high performance materials, especially in the pharmaceutical\u00a0industry. As I said before, the pharmaceutical industry\u00a0in the financial is the most important area which\u00a0depends on the quantum computing technology. Because as\u00a0you remember, the solution ratio of crystalline solubility\u00a0and formulation are very\u00a0important parameters. You need to be quick about that.\u00a0You need to gain good accuracy about that. In the pharmaceutical\u00a0industry, the use of quantum computing technology has become widespread\u00a0for processes that develop high computational technology such\u00a0as finding the solubility ratio and appropriate dosage.\u00a0Today, the number of qubits has exceeded 10,000 by\u00a0ibms is very important. Will you achieve\u00a0advanced technology? There are many sectors\u00a0and there are many cooperation in this\u00a0field. And this number is increasing by day by\u00a0in order to increase this number, different materials have started to\u00a0be developed in terms of photonics. The photonics\u00a0is the main section for\u00a0the material size for the quantum computing technology or\u00a0photo technically developed materials, values such as operating\u00a0temperature, band gap and pretty of the photon are very important.\u00a0Why we are using these are factors and I\u00a0discussed, and these are parameters, these are technic\u00a0parameters, and I don&#8217;t give any\u00a0technical information about that, but it&#8217;s a little\u00a0bit short talk and I&#8217;m very happy to discuss\u00a0these parameters with you. All the factors within the\u00a0ecosystem, material science, quantum computer technologies,\u00a0and the growing industries connected to them are growing in\u00a0terms of financial and usage areas. As I said before,\u00a0we are going to quantum\u00a0age with the material size.\u00a0How can we apply the material science in the quantum copy\u00a0technology and on the other side, quantum copy technology\u00a0for the material science, these are parameters,\u00a0is essential for the quantum age.\u00a0These are parameters, photonic behavior,\u00a0two dimensional materials, pharmaceutical industry, and also\u00a0high performance materials. They are related with the information\u00a0technology. Maybe next day,\u00a0maybe next day, on the next year, we need to obtain\u00a0more than thousands qubits because our\u00a0problems getting complex and we need to solve\u00a0this in the field of the size. And I just want to\u00a0say thank you about presentation\u00a0and thank you for us.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Abstract Quantum Computing Technology represents many opportunities in every field of life. These opportunities become real with material science. How about developments in materials science regarding quantum computing technology? Summary Today we will discuss quantum computing technology for\u00a0material science, why material science is\u00a0important and how can we apply quantum computing\u00a0technology for material science? In every &hellip; <\/p>\n<p class=\"link-more\"><a href=\"https:\/\/kuantumbilgisayar.net\/?p=913\" class=\"more-link\"><span class=\"screen-reader-text\"> &#8220;Malzeme Bilimi ve Kuantum Bilgisay\u0131m Teknolojisi&#8221;<\/span>devam\u0131n\u0131 oku<\/a><\/p>\n","protected":false},"author":1,"featured_media":918,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_jetpack_feature_clip_id":0,"_jetpack_memberships_contains_paid_content":false,"footnotes":"","jetpack_post_was_ever_published":false},"categories":[4],"tags":[86,14,87],"class_list":["post-913","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-bilgi-deposu","tag-ilac-endustrisi","tag-kuantum-bilgisayar","tag-yari-iletken-teknolojisi"],"jetpack-related-posts":[],"jetpack_sharing_enabled":true,"featured_media_urls":{"thumbnail":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-150x150.png",150,150,true],"medium":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-300x171.png",300,171,true],"medium_large":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image.png",768,439,false],"large":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1024x585.png",950,543,true],"1536x1536":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1536x878.png",1536,878,true],"2048x2048":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image.png",1792,1024,false],"inspiro-featured-image":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image.png",1792,1024,false],"inspiro-loop":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-950x320.png",950,320,true],"inspiro-loop@2x":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1792x640.png",1792,640,true],"portfolio_item-thumbnail":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-600x400.png",600,400,true],"portfolio_item-thumbnail@2x":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1200x800.png",1200,800,true],"portfolio_item-masonry":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-600x343.png",600,343,true],"portfolio_item-masonry@2x":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1200x686.png",1200,686,true],"portfolio_item-thumbnail_cinema":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-800x335.png",800,335,true],"portfolio_item-thumbnail_portrait":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-600x900.png",600,900,true],"portfolio_item-thumbnail_portrait@2x":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-1200x1024.png",1200,1024,true],"portfolio_item-thumbnail_square":["https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image-800x800.png",800,800,true]},"jetpack_featured_media_url":"https:\/\/kuantumbilgisayar.net\/wp-content\/uploads\/2024\/08\/image.png","_links":{"self":[{"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/posts\/913","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=913"}],"version-history":[{"count":3,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/posts\/913\/revisions"}],"predecessor-version":[{"id":917,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/posts\/913\/revisions\/917"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=\/wp\/v2\/media\/918"}],"wp:attachment":[{"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=913"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=913"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/kuantumbilgisayar.net\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=913"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}