Innsbruck, Austria

Peter Rabl

This inventor holds 1 USPTO granted patent. Top assignee: University System of Maryland. Active years: 2015.


Average Co-Inventor Count = 2.0

ph-index = 1

Forward Citations = 2(Granted Patents)


Company Filing History:


Years Active: 2015

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1 patent (USPTO):Explore Patents

Title: Innovations of Peter Rabl in Optomechanical Systems

Introduction

Peter Rabl is a prominent inventor based in Innsbruck, Austria. He has made significant contributions to the field of optomechanics, particularly in the development of systems that enable non-reciprocal light manipulation. His work is crucial for advancing technologies in both classical and quantum optics.

Latest Patents

Peter Rabl holds a patent titled "Systems, methods, and devices for optomechanically induced non-reciprocity." This patent describes how on-chip non-reciprocity can be achieved using micron-sized optomechanical devices. These devices can be integrated with other optical elements, allowing for innovative applications such as optical diodes and non-reciprocal phase shifting. The technology leverages non-linear coupling between light and mechanical modes within resonators, controlled by external electromagnetic fields. This approach can be utilized at the single photon level, opening new avenues for various applications in both classical and quantum regimes.

Career Highlights

Peter Rabl is affiliated with the University System of Maryland, where he continues to push the boundaries of research in optomechanical systems. His work has garnered attention for its potential applications in advanced optical technologies.

Collaborations

Peter Rabl collaborates with Mohammad Hafezi, a fellow researcher in the field. Their partnership enhances the exploration of optomechanical phenomena and contributes to the advancement of innovative technologies.

Conclusion

Peter Rabl's contributions to optomechanical systems represent a significant advancement in the field of optics. His innovative patent and ongoing research continue to pave the way for future developments in both classical and quantum applications.

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