Active Physics & Astronomy Materials & Manufacturing

Quantum and Many Body Physics Enabled by Advanced Semiconductor Nanotechnology

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AI plain-English summary

A new crystal growth machine in the UK is now fabricating atom-thin semiconductor layers that force individual photons to interact with each other—something light particles normally never do. This research tackles a fundamental bottleneck in quantum computing: photons, the natural carriers of quantum information, refuse to interact with one another, making it impossible to build logic gates from light alone. By trapping photons inside nanoscale cavities etched into III-V semiconductors and stacking atom-thin 2D materials like graphene, the team creates hybrid structures where photons couple so strongly with electron-hole pairs (excitons) that they effectively begin to interact. This opens a regime called highly non-linear cavity quantum electrodynamics, where ladders of energy states can produce single-photon states on a chip. If successful, the work could supply the building blocks for photonic quantum processors and quantum communication systems—technologies that would make data encryption unbreakable and enable calculations impossible for classical computers. The same structures also allow the team to study condensates of electrons and holes at temperatures above 100K, potentially leading to miniature coherent light sources. This is fundamental science: it asks how phase transitions work in systems that are not in equilibrium, a question with no immediate practical application but with deep implications for how we control matter and light at the quantum level.

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Light emitting semiconductor materials and devices dominate many aspects of everyday life. Their influence is all pervasive providing the sources which enable the internet, large area displays, room and street lighting to give just a few examples. Their existence relies on the high quality semiconductor structures which may be prepared by advanced crystal growth and sophisticated nanofabrication. Our proposal aims to capitalise on the advanced growth and fabrication to achieve similar advances in the quantum world where often counter-intuitive behaviour is governed solely by the laws of quantum mechanics. Our overall aim is to explore the behaviour of nano-devices operating in regimes where fundamentally new types of quantum-photonic phenomena occur, with potential to underpin the next generation of quantum technologies. We focus on two complementary systems: III-V semiconductors with their highly perfect crystal lattices, proven ability to emit photons one by one and long coherence quantum states, and atomically-thin graphene-like two dimensional (2D) semiconductors enabling new band structures, stable electron-hole bound states (excitons) and easy integration with patterned structures. The combination of the two material systems is powerful enabling phenomena ranging from the single photon level up to dense many-particle states where interactions dominate. A significant part of our programme focusses on on-chip geometries, enabling scale-up as likely required for applications. The semiconductor systems we employ interact strongly with photons; we will achieve interactions between photons which normally do not interact. We will gain entry into the regime of highly non-linear cavity quantum electrodynamics. Excitons (coupled electron-hole pairs) and photons interact strongly, enabling ladders of energy levels leading to on-chip production of few photon states. By coupling cavities together, we will aim for highly correlated states of photons. These advances are likely to be important components of photonic quantum processors and quantum communication systems. In similar structures, we access regimes of high density where electrons and holes condense into highly populated states (condensates). We aim to answer long-standing fundamental questions about the types of phase transitions that can occur in equilibrium systems and in out-of-equilibrium ones which have loss balanced by gain. We will also study condensate systems up to high temperatures, potentially in excess of 100K, and of the mechanisms underlying phase transitions to condensed states. The condensed state systems, besides their fundamental interest, also have potential as new forms of miniature coherent light sources. Nanofabrication will play a vital role enabling confinement of light on sub-wavelength length scales and fabrication of cavities for photons such that they have very long lifetimes before escaping. The ability to place high quality emitters within III-V nanophotonic structures will receive enhancement and potential world lead from a crystal growth machine we have recently commissioned, specially designed for this purpose, funded by the UK Quantum Technologies programme. Similar impact is expected from our ability to prepare 2D heterostructures (atomically thin layers of two separate materials placed one on top of the other) under conditions of ultrahigh vacuum free from contamination, enabling realisation of bound electron-hole pair states of very long lifetime, the route to condensation to high density states. The easy integration of 2D heterostructures with patterned photonic structures furthermore enables nonlinear and quantum phenomena to be studied, including in topological structures where light flow is immune to scattering by defects. Taken all together we have the ingredients in place to achieve ground-breaking advances in fundamental quantum photonics with considerable potential to underpin next generations of quantum technologies.

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Researchers

Alexander Tartakovskii (Co-Investigator)Alistair Brash (Co-Investigator)David Mark Whittaker (Co-Investigator)Dmtriy Krizhanovskii (Principal Investigator)Ian Farrer (Co-Investigator)Jon Heffernan (Co-Investigator)Luke Russell Wilson (Co-Investigator)Mark Fox (Co-Investigator)Marzena Szymanska (Co-Investigator)Maurice Skolnick (Co-Investigator)Pieter Kok (Co-Investigator)Roman Gorbachev (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

University of Sheffield - Equipment Account
Semiconductor Quantum Photonics: Control of Spin, Exciton and Photon Interactions by Nano-Photonic Design
Semiconductor Integrated Quantum Optical Circuits
Optical Control of Quantum States in Semiconductor Nanostructures
Engineering Photonic Quantum Technologies

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Research Grant

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