Home > Press > Electron pairs on demand: Controlled emission and spatial splitting of electron pairs demonstrated
![]()  | 
| Etched semiconducting channel with electron source (A) and barrier (B). The electron pairs are emitted by the source and split at the barrier into two separate electric conductors (arrow).  Fig.: PTB  | 
Abstract:
In quantum optics, generating entangled and spatially separated photon pairs (e.g. for quantum cryptography) is already a reality. So far, it has, however, not been possible to demonstrate an analogous generation and spatial separation of entangled electron pairs in solids. Physicists from Leibniz University Hannover and from the Physikalisch-Technische Bundesanstalt (PTB) have now taken a decisive step in this direction. They have demonstrated for the first time the on-demand emission of electron pairs from a semiconductor quantum dot and verified their subsequent splitting into two separate conductors. Their results have been published in the current online issue of the renowned journal "Nature Nanotechnology".
A precise control and manipulation of quantum-mechanical states could pave the way for promising applications such as quantum computers and quantum cryptography. In quantum optics, such experiments have already been performed for some time. This, for example, allows the controlled generation of pairs of entangled, but spatially separated photons, which are of essential importance for quantum cryptography. An analogous generation and spatial separation of entangled electrons in solids would be of fundamental importance for future applications, but could not be demonstrated yet. The results from Hannover and Braunschweig are a decisive step in this direction.
As an electron source, the physicists from Leibniz University Hannover and from PTB used so-called semiconductor single-electron pumps. Controlled by voltage pulses, these devices emit a defined number of electrons. The single-electron pump was operated in such a way that it released exactly one electron pair per pulse into a semiconducting channel. A semitransparent electronic barrier divides the channel into two electrically distinct areas. A correlation measurement then recorded whether the electron pairs traversed the barrier, or whether they were reflected or split by the barrier. It could be shown that for suitable parameters, more than 90 % of the electron pairs were split and spatially separated by the barrier. This is an important step towards the envisioned generation and separation of entangled electron pairs in semiconductor components.
####
For more information, please click here
Contacts:
Dr. Niels Ubbelohde
49-053-159-22534
Copyright © Physikalisch-Technische Bundesanstalt (PTB)
If you have a comment, please Contact us.Issuers of news releases, not 7th Wave, Inc. or Nanotechnology Now, are solely responsible for the accuracy of the content.
| Related Links | 
| Related News Press | 
News and information
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Physics
    Quantum computers simulate fundamental physics: shedding light on the building blocks of nature June 6th, 2025
    A 1960s idea inspires NBI researchers to study hitherto inaccessible quantum states June 6th, 2025
    Magnetism in new exotic material opens the way for robust quantum computers June 4th, 2025
Chip Technology
    Lab to industry: InSe wafer-scale breakthrough for future electronics August 8th, 2025
    A 1960s idea inspires NBI researchers to study hitherto inaccessible quantum states June 6th, 2025
    Programmable electron-induced color router array May 14th, 2025
Quantum Computing
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Researchers tackle the memory bottleneck stalling quantum computing October 3rd, 2025
    Japan launches fully domestically produced quantum computer: Expo visitors to experience quantum computing firsthand August 8th, 2025
Discoveries
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Announcements
    Rice membrane extracts lithium from brines with greater speed, less waste October 3rd, 2025
    Researchers develop molecular qubits that communicate at telecom frequencies October 3rd, 2025
    Next-generation quantum communication October 3rd, 2025
    "Nanoreactor" cage uses visible light for catalytic and ultra-selective cross-cycloadditions October 3rd, 2025
Interviews/Book Reviews/Essays/Reports/Podcasts/Journals/White papers/Posters
    Spinel-type sulfide semiconductors to operate the next-generation LEDs and solar cells For solar-cell absorbers and green-LED source October 3rd, 2025
    Rice membrane extracts lithium from brines with greater speed, less waste October 3rd, 2025
Quantum Dots/Rods
    A new kind of magnetism November 17th, 2023
    IOP Publishing celebrates World Quantum Day with the announcement of a special quantum collection and the winners of two prestigious quantum awards April 14th, 2023
    Qubits on strong stimulants: Researchers find ways to improve the storage time of quantum information in a spin rich material January 27th, 2023
    NIST’s grid of quantum islands could reveal secrets for powerful technologies November 18th, 2022
Photonics/Optics/Lasers
    ICFO researchers overcome long-standing bottleneck in single photon detection with twisted 2D materials August 8th, 2025
    Institute for Nanoscience hosts annual proposal planning meeting May 16th, 2025
Quantum nanoscience
    ICFO researchers overcome long-standing bottleneck in single photon detection with twisted 2D materials August 8th, 2025
    Programmable electron-induced color router array May 14th, 2025
| 
			 | 
	||
| 
			 | 
	||
| The latest news from around the world, FREE | ||
| 
			 | 
	||
| 
			 | 
	||
| Premium Products | ||
| 
			 | 
	||
| 
			Only the news you want to read! 
			 Learn More  | 
		||
| 
			 | 
	||
| 
			Full-service, expert consulting 
			 Learn More  | 
		||
| 
			 | 
	||