部落格:氮化鎵技術如何擊敗矽技術

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Term: Drones
3 post(s) found

九月 12, 2019

利用GaN的力量驅動馬達 – 伺服驅動、機器人、無人機

Renee Yawger, Director of Marketing

隨著馬達技術的進步,功率密度增加;馬達被製成更小的形式,設計速度更高,精度更高,這需要更高的電氣頻率。

四月 11, 2017

氮化鎵技術在四方面拯救地球

Alex Lidow, Ph.D., CEO and Co-founder

Gallium nitride (GaN) is a better semiconductor than silicon. There are many crystals that are better than silicon, but the problem has always been that they are far too expensive to be used in every application where silicon is used. But, GaN can be grown as an inexpensive thin layer on top of a standard silicon wafer enabling devices that are faster, smaller, more efficient, and less costly than their aging silicon counterparts.

九月 15, 2016

Drones…Up, Up, and Away

Alex Lidow, Ph.D., CEO and Co-founder

Drones are on the rise. In fact, use of drones is only limited by our imagination – from merely recreational (think “drone races”) to delivering packages (as promised by Amazon) to a range of life-saving military uses (such as real-time battlefield imaging). Emerging high speed, small size, and highly efficient gallium nitride power semiconductors are key contributors to the expansion of drone applications, including onboard equipment such as LiDAR imaging and navigation systems and 4G/5G communication transmitters. Let’s take a look at how GaN technology and the expansion of drone applications intersect.

A drone, or more technically, an unmanned aerial vehicle (UAV) is an aircraft without a pilot on board. Control of the drone is accomplished either under remote control from the ground or under control of an onboard computer.

Although drones originated mostly in military applications, civilian drones now vastly outnumber military drones, with estimates of over 9 million consumer drones to be sold in 2016 world wide for a total market value of near $3 billion.

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