YoVDO

Hamiltonian Engineering in Matter Wave Interferometers - James Thompson

Offered By: Kavli Institute for Theoretical Physics via YouTube

Tags

Quantum Metrology Courses Optics Courses Quantum Information Courses Particle Physics Courses Atomic Physics Courses Condensed Matter Physics Courses Quantum Sensors Courses Gravitational Physics Courses

Course Description

Overview

Save Big on Coursera Plus. 7,000+ courses at $160 off. Limited Time Only!
Explore advanced concepts in quantum metrology through this 48-minute conference talk by James Thompson from CU Boulder. Delve into Hamiltonian engineering techniques applied to matter wave interferometers, covering topics such as Quantum Non-Demolition (QND) measurements, 1-axis twisting, 2-axis twisting, and Mossbauer-like collective recoil. Gain insights into the latest developments in precision quantum metrology and their applications in fundamental physics, including dark matter searches and gravitational wave detection. Discover unexpected connections between quantum metrology methods and diverse fields of physics, from optics to condensed matter and atomic physics. Recorded as part of the Frontiers of Quantum Metrology conference at the Kavli Institute for Theoretical Physics, this talk fosters cross-disciplinary collaboration and promotes new scientific discoveries in quantum technologies and fundamental physics studies.

Syllabus

Hamiltonian Engineering in Matter wave Interferometers... ▸ James Thompson (CU Boulder)


Taught by

Kavli Institute for Theoretical Physics

Related Courses

Atomic and Optical Physics: Atom-photon interactions
Massachusetts Institute of Technology via edX
Atomic and Optical Physics I– Part 3: Atom-Light Interactions 1 -- Matrix elements and quantized field
Massachusetts Institute of Technology via edX
Atomic and Optical Physics I – Part 5: Coherence
Massachusetts Institute of Technology via edX
Atomic and Optical Physics: Optical Bloch Equations and Open System Dynamics
Massachusetts Institute of Technology via edX
Atomic and Optical Physics: Quantum States and Dynamics of Photons
Massachusetts Institute of Technology via edX