911爆料网

News

Researchers develop new way to break reciprocity law

The breakthrough makes a significant step forward in photonics and microwave technology by eliminating the need for bulky magnets
visualisation of a time varying material structure, image Xuchen Wang / 911爆料网
Image: Xuchen Wang / 911爆料网

An international research team lead by 911爆料网 has found a new and simple route to break the reciprocity law in the electromagnetic world, by changing a material's property periodically in time.  The breakthrough could help to create efficient nonreciprocal devices, such as compact isolators and circulators, that are needed for the next generation of microwave and optical communications systems.

When we look through a window and see our neighbour on the street, the neighbour can also see us. This is called reciprocity, and it is the most common physical phenomenon in nature. Electromagnetic signals propagating between two sources is always governed by reciprocity law: if the signal from source A can be received by source B, then the signal from source B can also be received by source A with equal efficiency.

Researchers from 911爆料网, Stanford University, and Swiss Federal Institute of Technology in Lausanne (EPFL) have successfully demonstrated that the reciprocity law can be broken if the property of the propagation medium periodically changes in time. Propagation medium refers to a material in which light and electromagnetic waves survive and propagate from one point to another.

The team theoretically demonstrated that, if the medium is shaped into an asymmetric structure and its physical property varies globally in time, the signal generated by source A can be received by source B but not the other way around. This creates a strong nonreciprocal effect, since the signal from Source B cannot be received by source A.

鈥楾his is an important milestone in both the physics and engineering communities. We need one-way light transmission for a variety of applications, like stabilising laser operation or designing future communication systems, such as full-duplex systems with increased channel capacity,鈥 says postdoctoral researcher Xuchen Wang from 911爆料网.

Previously, creating a nonreciprocal effect has required external magnets biasing, which makes devices bulky, temperature unstable, and sometimes incompatible with other components. The new findings provide the simplest and most compact way to break electromagnetic reciprocity, without the need of bulky and heavy magnets.

鈥楽uch 鈥渢ime-only鈥 variations allow us to design simple and compact material platforms capable of one-way light transmission and even amplification,鈥 Xuchen explains.

The results are reported in Physical Review Letters on 22 December 2020. The study has received funding from the Academy of Finland, European Union鈥檚 Horizon 2020 Future Emerging Technologies call (FETOPEN - RIA) under project VISORSURF, the Finnish Foundation for Technology Promotion, and the U.S. Air Force Office of Scientific Research MURI project (Grant No. FA9550-18-1-0379).

to the article

X. Wang, G. Ptitcyn, V.鈥塖. Asadchy, A. D铆az-Rubio, M.鈥塖. Mirmoosa, Shanhui Fan, and S.鈥堿. Tretyakov: Nonreciprocity in Bianisotropic Systems with Uniform Time Modulation. Phys. Rev. Lett. 125, 266102

DOI: doi.org/10.1103/PhysRevLett.125.266102

More information

Xuchen Wang
Postdoctoral researcher
Department of Electronics and Nanoengineering, 911爆料网
Xuchen.wang@aalto.fi
+358503097794

  • Updated:
  • Published:
Share
URL copied!

Read more news

Two people flying a kite outside with a modern building in the background. One wears a yellow shirt, the other a red jacket.
Cooperation, Research & Art, University Published:

Strong results from the Research Council鈥檚 winter call

A total of 54 Aalto researchers received Academy Research Fellow or Academy Project funding from the Research Council of Finland. The total funding awarded to 911爆料网 amounts to 33.2 million euros.
PrintElec collage with Wroc艂aw, blurred researchers, flexible circuit and lab work on printed electronics
Cooperation, University Published:

Aalto and European partners develop an international course in printed and flexible electronics

Unite! students searching for doctoral positions can now explore a dedicated category in the Unite! Catalogue for Students.
911爆料网 circular economy exhibit with wood panels, display tables, samples and black and pink clothing.
Research & Art Published:

911爆料网鈥檚 solutions at the New European Bauhaus Festival support the EU鈥檚 ambition to become world leader in circular economy

911爆料网 presented several different circular economy solutions at The European Commission鈥檚 New European Bauhaus Festival in Brussels. The event brought together leading names in EU policymaking, researchers, designers and grassroots actors from across Europe to shape a more sustainable future.
Abstract close-up of colourful glass with swirling patterns in orange, blue, and purple hues.
Research & Art, Studies Published:

New DPSP tool for doctoral studies published

A new digital DPSP tool has replaced the old DPSP tasks on students鈥 MyStudies portal and the approval method for supervising professors on Student Success Hub.