SiPhoN · Single-Photon Non-Locality
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-11-01 → 2017-12-02
- EU contribution
- €173,857
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Single-Photon Non-Locality
Today’s society is based on the fast access to information. Getting a head start on information is key in business, finance, politics and security. Most of our information exchange is done via the internet. However, not only has the current structure of our internet its capacity limits but also data transfer is not secure. Therefore, we are in need to invest in a future network, capable of handling the massive data flow and allowing for secure data communication. The solution lies in quantum mechanics, making it possible to encode information on the smallest quanta of energy, a single light particle called photon. This not only reduces energy consumption for information transfer to the physical limit but also allows for totally secure data communication due to the principles of quantum mechanics (No-cloning theorem). Single and entangled photons, as well as highly efficient, low-noise single-photon detectors are important building blocks to realize such quantum networks. The project SiPhoN focused on investigating novel semiconductor nano-scale devices as quantum light sources and developing highly efficient single-photon detectors based on superconducting material in cooperation with the company Single Quantum B.V..
Data: CORDIS, © European Union
Project objective
The principle of non-locality is one of the most impressive features of quantum mechanics. Usually, non-locality is related to two or more particles sharing a common characteristic. This quantum mechanical effect is well understood and several experimental demonstrations have been performed. However, non-locality of a single particle, in particular of a single-photon raises fundamental questions: Can a single-photon be simultaneously at different locations? In spite of numerous theoretical concepts, no clear experiment has yet been reported.In this project, I will experimentally prove the non-local nature of a single-photon. To this end, I will create on-demand single-photons from nanowire quantum dots and measure the single-photon non-locality in a new homodyne detection scheme. This combines several future key technologies ranging from novel quantum light sources to superconducting materials, making the proposed research of broad interest in the European research community. In addition, this project will enable Single Quantum B.V. (the only European company developing superconducting detectors and in competition with Russian and US companies) to perfect their detection systems and optimize them for the emerging market of quantum optics applications that is expected to turn into a large market in this century.A successful realization of the proposed research relies on four pillars: Resonance fluorescence (applicant: Dr. Joens), bright single-photon emitters (supervisor: Prof. Zwiller), efficient detectors (partner: Single Quantum B.V.), and the theoretical understanding of non-locality (host: KTH). Every single party contributes with its unique expertise to the big picture. This makes the proposed constellation of participating organisations essential for the success of the project. Together we will finally answer one of the fundamental questions in quantum mechanics: Single-photon non-locality.
Original text from CORDIS.
Participants
- KUNGLIGA TEKNISKA HOEGSKOLAN · StockholmCoordinatorSweden
Links
Data: CORDIS, © European Union
