《電子技術(shù)應(yīng)用》
您所在的位置:首頁(yè) > 模擬設(shè)計(jì) > 業(yè)界動(dòng)態(tài) > Presto工程公司將其測(cè)試能力擴(kuò)展到100 GHz以上

Presto工程公司將其測(cè)試能力擴(kuò)展到100 GHz以上

2018-09-07
關(guān)鍵詞: Presto MMW RF

  Booth B245 at European Microwave Week, Madrid, Spain 23-28 Sept 2018

  San Jose, CA, USA - 6 September 2018 - Presto Engineering will be at European Microwave Week, in Madrid, Spain (23-28 September 2018) where it will be announcing that can now providing high volume testing of semiconductor devices up to 100 GHz and beyond. Applications that use GHz frequencies, i.e. millimeter wavelengths (MMW), are increasing rapidly and thus driving the need for high volume device testing. For example, Internet over satellite connections, car ADAS systems, and other high-speed, data transfer solutions with a projected volume of more than a billion units by 2020.

1.jpg

  "Commercial test equipment does not test much about 50 GHz," explained Cédric Mayor, Presto's COO. "The current method used by most customers is in-house bench testing by hand which is slow and expensive. This is because testing equipment above 50 GHz becomes increasingly expensive as the frequency increases as it is non-standard. To solve this problem, we have created custom interfaces that step the test frequencies down into the range that commercial testers operate in. This enables us to provide a cost-effective testing service for ultra-high frequency or MMW devices and builds on our existing services for high frequency device testing."

  Another challenge of MMW devices is that the substrate used is often much more brittle than the usual CMOS, such as Gallium Arsenide or Gallium Nitride. As a result, the wafers are much more susceptible to breakage in transit and handling. To reduce the possibility of breakage, they are usually cut into quadrants once manufactured. A broken quadrant means fewer damaged parts compared to a whole broken wafer. However, the standard handling and test equipment is designed for circular wafers so Presto has developed its own quadrant handling adapters for its test equipment. On top of this, it is also key to be able to maintain a good correlation during the test and during the self-heating of the pulsed test methods, where continuous wave measurement is normally used. In this case, all the fixturing has to be able to control temperature and heat dissipation as well as include RF systematic error compensation for the measurements and maintain the correct reproducibility during production.

  "Testing at these high MMW frequencies also introduces RF issues that are not significant at lower frequencies," added Cédric Mayor. "Connectors and even tracks can affect the impedance or act as antennae so that the test platform and regime have to be designed to allow for this, based on our years of experience in RF testing. This includes ensuring that Design for Test is incorporated into the devices, especially as access to RF signals is complicated by the integration of antenna, especially when we have to deal with phase arrays or multiple antenna products. This places limitations on the probe card's physical design that need to be overcome by careful engineering design of the hardware. These issues also impact packaging options such that standard packages are not always appropriate, so we help customers select the optimal packaging such as stack-die, multi-die and even custom solutions to ensure the optimal performance."

  Among MMW applications already implemented or under consideration are short range wireless backhaul, connecting small cell wireless; data center interconnect (DCI) for cloud servers; radar, primarily automotive; body scanners for airport security; chip-to-chip communications on printed circuit boards where even short runs of wires or cables attenuate signals at these frequencies; and wireless communication protocols, such as 5G cellular, WiGig (802.11ad) and Wireless HD. For convenience, the markets can be considered in three segments: communications, automotive and cellular/consumer, as shown in Table 1, which includes estimates of the potential served available market (SAM) and unit volumes. The first two of these are in now. Communications, driven by expansion in small cell backhaul and cloud computing, has annual unit volumes for 2020 projected to be in the millions; and automotive, driven by assisted driving (with autonomous driving on the horizon), with projected volumes in the tens of millions. The third vertical segment, cellular/consumer, driven by WiGig and 5G mobile, is in development now with 2020 annual unit volumes projected to exceed one billion.

2.jpg

  Table 1: Major application segments for MMW, including estimates of served available market (SAM) and unit volumes in 2020


本站內(nèi)容除特別聲明的原創(chuàng)文章之外,轉(zhuǎn)載內(nèi)容只為傳遞更多信息,并不代表本網(wǎng)站贊同其觀點(diǎn)。轉(zhuǎn)載的所有的文章、圖片、音/視頻文件等資料的版權(quán)歸版權(quán)所有權(quán)人所有。本站采用的非本站原創(chuàng)文章及圖片等內(nèi)容無(wú)法一一聯(lián)系確認(rèn)版權(quán)者。如涉及作品內(nèi)容、版權(quán)和其它問(wèn)題,請(qǐng)及時(shí)通過(guò)電子郵件或電話通知我們,以便迅速采取適當(dāng)措施,避免給雙方造成不必要的經(jīng)濟(jì)損失。聯(lián)系電話:010-82306118;郵箱:aet@chinaaet.com。
主站蜘蛛池模板: 国产国产人免费人成免费视频| 女人张开腿让男桶喷水高潮| 亚洲另类视频在线观看| 看看黄色一级片| 国产一区二区三区不卡在线观看| 天天久久影视色香综合网| 国内自拍青青草| ssni-436| 性色爽爱性色爽爱网站| 久久久久久久伊人电影| 日韩精品一卡二卡三卡四卡2021| 亚洲国产中文在线视频| 残虐极限扩宫俱乐部小说| 俺来也俺去啦久久综合网| 精品欧洲videos| 国产99在线观看| 视频久re精品在线观看| 国产成人a视频在线观看| 亚洲人成网站看在线播放| 国产高清在线免费视频| 9久久免费国产精品特黄| 好大好深好猛好爽视频免费| 中文字幕avdvd| 搞av.com| 久久中文娱乐网| 日本电影一区二区三区| 久久精品99国产精品日本| 最近免费中文字幕大全高清10| 亚洲国产欧美在线看片一国产| 欧美高清在线精品一区| 亚洲韩精品欧美一区二区三区| 真实国产乱子伦沙发睡午觉 | 中文字幕久无码免费久久 | 免费女人18毛片a级毛片视频| 精品水蜜桃久久久久久久| 国产gav成人免费播放视频 | 国产福利一区视频| h视频在线免费| 国产精品免费大片| 永久黄色免费网站| 国产精品日本一区二区不卡视频 |