NW
← Newsroom
ElectronicsAugust 24, 2020 · 2 min read

Scientists use photons as threads to weave novel forms of matter

Schematic of the experimental setup. @  University of Southampton
Schematic of the experimental setup. @ University of Southampton

New research from the University of Southampton has successful discovered a way to bind two negatively charged electron-like particles which could create opportunities to form novel materials for use in new technological developments.


Positive and negative electric charges attract each other, forming atoms, molecules, and all that we usually refer as matter. However, negative charges repel each other, and in order to form atom-like bound objects some extra glue is needed to compensate this electrostatic repulsion and bind the particles together.


In this latest study, published in the journal Nature Physics, an international team, led by Professor Simone De Liberato from the School of Physics and Astronomy at the University of Southampton, demonstrated for the first time that photons, the particles which compose light, can be used to glue together negative charges, creating a novel form of matter they named a Photon Bound Exciton.


Implementing a theoretical prediction published last year by the same team, Prof De Liberato and co-workers fabricated a nano-device, trapping electrons into nanoscopic wells. They started by showing that photons that struck the device with high enough energy extracted electrons from the wells, an expected manifestation of the photoelectric effect, whose discovery earned Einstein his 1921 Nobel prize.


Prof De Liberato and his team then enclosed the device between two gold mirrors, which trapped the photons and focussed the luminous energy close to the electrons, dramatically increasing the interaction between light and matter. They observed that a negatively-charged electron kicked out by a photon then remains instead trapped in the well, bound to the other negatively-charged electrons in a novel electronic configuration stabilised by the photon.


This result demonstrates the possibility of engineering novel artificial atoms with designer electronic configurations, dramatically expanding the list of materials available for scientific and technological applications.


Explaining the significance of his team's discovery, Prof De Liberato said: "We demonstrated how to use light as a sort of subatomic ziptie, binding together electrons to create novel atom-like objects. Doing so we broadened the catalogue of materials available to design photonic devices. I look forward to see how the many colleagues working in photonics will exploit this extra leeway to engineer novel amazing devices."

Reference:

Excitons bound by photon exchange

Erika Cortese, Ngoc-Linh Tran, Jean-Michel Manceau, Adel Bousseksou, Iacopo Carusotto, Giorgio Biasiol, Raffaele Colombelli & Simone De Liberato
Published: 17 August 2020
doi: http://dx.doi.org/10.1038/s41567-020-0994-6


Contact:

Professor Simone De Liberato
School of Physics and Astronomy
s.de-liberato@soton.ac.uk

University of Southampton

More news

ElectronicsSep 28 · 3 min read

Dongguk University researchers develop battery-free flexible device for neuromorphic sensing

The proposed TENG-driven g-IGT is a flexible, self-powered neuromorphic device capable of reproducing multiple memory states and spike-rate-dependent learning Neuromorphic devices, which are designed to emulate aspects of biological neural networks, are promising candidates for developing low-power and intelligent sensing technologies, including wearable applications. Among the device architectures explored for neuromorphic computing, graphene-channel ion-gel-gated transistors (g-IGTs) are...

ElectronicsAug 17 · 3 min read

Rice researchers show graphene nanowrinkles can reshape electricity

Rice University researchers have shown that sub-nanometer wrinkles in graphene generate flexoelectric charge separation, reshaping local electrical behavior through curvature alone. Extreme bending produces polarization far stronger than in larger systems and may enable geometry-controlled electronics without chemical doping. Published in Advanced Materials.

ElectronicsJul 16 · 3 min read

Researchers Extend the Limits of Twistronics. Literally

Researchers at NC State have extended twistronics beyond van der Waals materials into strongly bonded crystalline oxides. By stacking sodium niobate membranes with twist angles controlled down to 0.1 degrees, and confirming results via synchrotron X-ray diffraction, the team found interlayer bonds distort the atomic lattice, shifting phase structure and domain configuration. The technique works at near-millimeter scale, far larger than typical twistronic devices, marking a real step toward pract

Scientists use photons as threads to weave novel forms of matter — Nanotechnology World