亞洲知識產權資訊網為知識產權業界提供一個一站式網上交易平台,協助業界發掘知識產權貿易商機,並與環球知識產權業界建立聯繫。無論你是知識產權擁有者正在出售您的知識產權,或是製造商需要購買技術以提高操作效能,又或是知識產權配套服務供應商,你將會從本網站發掘到有用的知識產權貿易資訊。

Nano-Superlattice Metaconductor for Low Loss Radio and Microwave Applications

詳細技術說明
None
*Abstract

Low Loss Conductor for Improved Power Efficiency at Targeted Radio and Microwave Frequencies

This nanoscale, multi-layer magnetic and non-magnetic superlattice functions as a low-loss, broad bandwidth radio or microwave frequency conductor, or metaconductor. The conduction loss of radio or microwave is greatly influenced by the conductivity of the materials. The industry of high performance and high-speed electronic devices is rapidly growing and places a great importance on operating efficiently at high frequencies. Researchers at the University of Florida have developed conductors composed of alternating nanometer-thick layers of magnetic and non-magnetic materials that lessen the effect eddy currents have on conductive loss. Experimental results show an improvement of more than three times in the figure of merit (frequency versus effective resistivity) as compared to devices available on the market. This metaconductor can be applied to a number of existing products, such as radio or microwave frequency transmission lines, transformers, and resonators.

Application

Low-loss conductor improves performance and power efficiency of radio and microwave frequency transmissions

Advantages

  • Alternates magnetic and non-magnetic conductor layers, minimizing the effects of eddy currents
  • Allows for different material combinations and geometries, maximizing the operation bandwidth
  • Lessens conductor loss in radio and microwave frequencies, increasing power efficiency of passive components

Technology

This magnetic and non-magnetic superlattice is designed to produce negative-permeability and positive permeability, respectively, at the frequency of interest, which cancels the generated eddy currents and suppresses radio or microwave frequency conductor loss. The permeability of the magnetic material varies with changing frequencies, while the permeability of the non-magnetic material is fixed. The ratio of layer thicknesses between the magnetic and non-magnetic layers determines the operational frequency and makes the superlattice customizable for specific applications. The metaconductors can be composed of different materials combinations or different geometries to increase the operational bandwidth. This technology can be applied to either cylindrical or planar metaconductors.
*Principal Investigation

Name: Yong Yoon

Department:

其他
國家/地區
美國

欲了解更多信息,請點擊 這裡
移動設備