Control and measurement in the bosonic cQED system: Difference between revisions

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Created page with "== Control and Measurement in the Bosonic cQED System == '''Team members:''' Seungwon Jin, Grace Pang === Project Summary === This project characterizes a single superconducting microwave cavity dispersively coupled to a single transmon qubit, using standard circuit QED control and measurement techniques. We review the underlying theory of dispersive coupling and readout, then apply a set of standard measurement protocols to extract the key system parameters (coupling..."
 
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== Control and Measurement in the Bosonic cQED System ==
'''Team members:''' Seungwon Jin, Grace Pang
'''Team members:''' Seungwon Jin, Grace Pang


=== Project Summary ===
== Abstract ==
This project characterizes a single superconducting microwave cavity dispersively coupled to a single transmon qubit, using standard circuit QED control and measurement techniques. We review the underlying theory of dispersive coupling and readout, then apply a set of standard measurement protocols to extract the key system parameters (coupling strength, dispersive shift, coherence times) and compare them with theoretical expectations.
This project characterizes a single superconducting microwave cavity dispersively coupled to a single transmon qubit, using standard circuit QED control and measurement techniques. We review the underlying theory of dispersive coupling and readout, then apply a set of standard measurement protocols to extract the key system parameters (coupling strength, dispersive shift, coherence times) and compare them with theoretical expectations.
== Introduction ==
=== Theoretical Background ===
== Methods ==
== Results ==
== Discussion ==
== Conclusion ==
== References ==

Latest revision as of 10:00, 18 September 2026

Team members: Seungwon Jin, Grace Pang

Abstract

This project characterizes a single superconducting microwave cavity dispersively coupled to a single transmon qubit, using standard circuit QED control and measurement techniques. We review the underlying theory of dispersive coupling and readout, then apply a set of standard measurement protocols to extract the key system parameters (coupling strength, dispersive shift, coherence times) and compare them with theoretical expectations.

Introduction

Theoretical Background

Methods

Results

Discussion

Conclusion

References