最准的六合彩论坛

XClose

最准的六合彩论坛 Department of Physics and Astronomy

Home
Menu

Quantum Technologies

Harness the non-classical features of quantum mechanics to perform tasks hard or impossible with conventional technologies and reach beyond the laboratory into industrial development.

Try Quantum Technologies:

Why should you join? Below is a testimony from one of our alumni:

YouTube Widget Placeholder

Here are more details about our Quantum Tech MSc programme in an and a virtual (with Q & A).

Apply Today!

For more information on our听MSc flexible 1 year full-time, 2 years part-time, course

Apply for Quantum Technologies MSc

Progress in quantum technologies is at an exciting stage. Applications that harness the non-classical features of quantum mechanics to perform tasks hard or impossible with conventional technologies are now reaching beyond the laboratory into industrial development. Some of these, such as quantum cryptography and communication have already arrived in the marketplace, while others 鈥 such as quantum computation 鈥 remain a significant technological challenge, but all have the potential to bring revolutionary advances compared to their classical counterparts.

At 最准的六合彩论坛, you will be taught by world-leading experts in quantum technologies and have access to extensive extra-curricular activities such as seminars and workshops in the topic.听 最准的六合彩论坛 has a dedicated center to Quantum Technologies, the听最准的六合彩论坛Q Quantum Science and Technology Institute.

Examples of听projects we offer in our Quantum Tech MSc
  • Detecting material defects using an array of superconducting qubits 鈥傗傗傗
  • Integrated Quantum Sources Based on Non-Linear Optics 鈥傗傗傗傗傗傗傗傗傗傗傗
  • Quantum contextuality: mathematical structure and applications to quantum advantage 鈥傗傗傗傗傗
  • Quantum algorithms for noisy networked quantum computers 鈥
  • Quantum Computing for Network Optimisation 鈥傗傗傗傗
  • Impact of repeater availability on the entanglement rate of multipartite states 鈥傗傗傗
  • Impact of decoherence and noise in quantum networks 鈥傗
  • Variational compiling to reduce noise in quantum computations 鈥傗傗傗
  • Tuning quantum dot qubits using machine learning techniques 鈥傗傗傗傗傗傗傗傗傗傗傗
  • Radio-frequency reflectometry for fast qubit state readout 鈥
  • Developing a parametric amplifier for solid-state qubit readout 鈥傗
  • Machine learning applications in Bohmian Mechanics 鈥傗傗
  • Translating Tensor Network Algorithms to run on Quantum Computers 鈥傗傗傗傗傗
  • Single Electron Dynamics for Quantum Sensing 鈥傗傗
  • The 1/2 fractional quantum Hall state 鈥傗傗傗
  • Interaction mediated fractional quantum states in one-dimensional electrons 鈥傗
  • Towards Quantum Optomechanics: (a) cooling a macroscopic system to its quantum ground state And (b) Sensing the direction of an ultra weak force. 鈥傗傗傗
  • Strong coupling quantum thermodynamics in biological systems 鈥傗傗傗傗
  • Spin Orbit Interaction and Quantum Transport 鈥傗傗
  • Electromagnetic Induction Imaging with Atomic Magnetometers 鈥傗傗傗傗傗

The above list is non-exhaustive and it is also possible to contact a prospective supervisor and agree on a project that is not shown here.听