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===[[QKD receiver characterization (Polarization)]]===
===[[QKD receiver characterization (Polarization)]]===
One sentence, describing what this project is is about.


'''Team members:''' Elias X. Huber, various AI agents
Calibrated polarization-state generator to characterize polarization analysis modules in QKD receiver and rigorously quantify the impact on secure key rates.
 
'''Team members:''' Elias X. Huber, various AI agents (open to join forces with other humans as well, you can reach me at elias.x.huber[at typical nus sufix]; please note though that I will likely do the experiment at UTown (CREATE Tower), my schedule tends to be a bit inflexible for team-work, and I am a theorist with no lab experience).
 
QKD receivers are subject to imperfections which, if not adequately considered in security proofs, may compromise the security of generated secret keys. This project considers receivers that measure polarization in the Pauli <math>Z</math> and Pauli <math>X</math> bases (a passive-basis-choice "BB84 measurement").
Such a receiver consists of a polarization analysis module (PAM) followed by single-photon detectors. A simple schematic is given below.
 
<pre>
                    ┌── PBS ── H ── det H    (Z / rectilinear arm)
                    │      └── V ── det V
channel ── PC ── BS ┤
                    │      ┌── + ── det +    (X / diagonal arm)
                    └── HWP ┤
                    ~22.5° └── − ── det −
</pre>
 
Light from the quantum channel (single-mode fibre, optionally after a polarization controller PC) is split by a non-polarizing beam splitter (BS) into a rectilinear (<math>H/V</math>) arm and a diagonal (<math>+/-</math>) arm. An HWP near <math>22.5^\circ</math> rotates the <math>X</math>-arm basis before its PBS. The four ports are monitored by detectors labelled <math>H,V,+,-</math>.
Imperfections such as arm-dependent loss, biased beam-splitting ratios, or a low PBS extinction ratio may leak (partial) key information to an adversary or enable active attacks that bias detectors.
 
As part of my PhD research, I have been working on methods to integrate PAM characterization data into a QKD security proof. This project aims to build '''calibrated polarization preparation''' and characterize first a self-assembled PAM and subsequently the PAM of a real QKD receiver.
 
== Project plan ==
The project proceeds along the following steps:
# Assemble a free-space polarization-state generator (PSG: QWP + HWP after a fixed linear polarizer) able to span the full Bloch / Poincaré sphere.
# Assemble an analyzer to calibrate the QWP and HWP.
# Validate preparation of <math>H,V,D,A,R,L</math>-polarized states and rigorously derive an uncertainty budget for the physically prepared states.
# Connect the calibrated PSG to
#* '''(4.1)''' a self-assembled PAM, and
#* '''(4.2)''' the PAM of a commercial QKD system.
#: Use a self-assembled fibre polarization controller, or the QKD receiver's own polarization controller, to rotate the reference frame (basis of the calibrated PSG) into the receiver frame (basis of the QKD receiver).
# Measure the input–output power ratio for all four PAM output ports, and from this derive an instrument matrix for the QKD receiver — or rather, an '''uncertainty region''' of instrument matrices, due to non-zero preparation and measurement uncertainty.
# ''(Outside this course.)'' Calculate a conservative secure key rate for a worst-case PAM inside that uncertainty region. Maybe: Do measurements in attenuated form, click counts of QKD receiver's APDs instead of power meter.
 
== Required equipment (expected) ==
{| class="wikitable"
|-
! Item
! Use
! Notes / qty
|-
| Laser source at 1550 nm
| For preparation and power-ratio measurements
| Isolator needed?
|-
| Variable optical attenuator (VOA)
| Power control without changing laser drive
| Range covering both powermeter / polarimeter operation (+ maybe APDs)
|-
| High-extinction linear polarizer <math>P_0</math> (Glan-type?)
| Defines generator <math>H</math> axis, fixed (not rotatable)
| 1
|-
| QWP and HWP
| PSG: span the Poincaré sphere
| 1 each for the generator (maybe one extra QWP if a validation analyzer is built instead of just using polarimeter)
|-
| Automated rotation mounts / stages
| Calibrated plate angles
| ≥2 (QWP, HWP); extra for analyzer plates
|-
| Analyzer PBS + two power meters
| Calibrate QWP/HWP (parallel and crossed ports, must be able to rotate PBS)
| Dual-channel preferred
|-
| Monitor pick-off (/Beamsplitter) + photodiode
| Normalize source drift during scans
| 1
|-
| Polarimeter
| Independent validation of prepared <math>H,V,D,A,R,L</math>
|
|-
| Fibre coupler, SMF patch leads
| Launch into fibre-coupled PAM / QKD Rx
|
|-
| Fibre polarization controller
| Align generator frame to receiver frame
| Freeze settings during calibrated acquisitions; may be possible to instead use the QKD Rx controller
|-
| Four-port power detection
| PAM input–output ratios on <math>H,V,+,-</math>
|
|-
| Self-assembled PAM
| First characterization target (step 4.1)
| (done / provided by colleague)
|-
| Commercial QKD receiver (PAM)
| Second characterization target (step 4.2)
| Already available, access to four PAM output ports
|-
| Breadboard / cage rods, mounts, irises
| Alignment
|
|-
| Temperature logger
| Waveplate / lab drift
| (optional for uncertainty budget)
|}


==Resources==
==Resources==

Revision as of 16:09, 11 September 2026

Wiki page for course QT5201U (Quantum control technology) - AY2026/27S1

This will be the place for documenting projects. To be able to write something to this wiki, we need to create a user login manually. If you have not yet created an account, do let me know - Christian.

Next class: Mon 17 Aug 2026 in the seminar room S15 level 5.

Project pages

One sentence, describing what this project is is about.

Team members: A, B, C


Calibrated polarization-state generator to characterize polarization analysis modules in QKD receiver and rigorously quantify the impact on secure key rates.

Team members: Elias X. Huber, various AI agents (open to join forces with other humans as well, you can reach me at elias.x.huber[at typical nus sufix]; please note though that I will likely do the experiment at UTown (CREATE Tower), my schedule tends to be a bit inflexible for team-work, and I am a theorist with no lab experience).

QKD receivers are subject to imperfections which, if not adequately considered in security proofs, may compromise the security of generated secret keys. This project considers receivers that measure polarization in the Pauli Z and Pauli X bases (a passive-basis-choice "BB84 measurement"). Such a receiver consists of a polarization analysis module (PAM) followed by single-photon detectors. A simple schematic is given below.

                    ┌── PBS ── H ── det H     (Z / rectilinear arm)
                    │       └── V ── det V
channel ── PC ── BS ┤
                    │       ┌── + ── det +    (X / diagonal arm)
                    └── HWP ┤
                     ~22.5° └── − ── det −

Light from the quantum channel (single-mode fibre, optionally after a polarization controller PC) is split by a non-polarizing beam splitter (BS) into a rectilinear (H/V) arm and a diagonal (+/) arm. An HWP near 22.5 rotates the X-arm basis before its PBS. The four ports are monitored by detectors labelled H,V,+,. Imperfections such as arm-dependent loss, biased beam-splitting ratios, or a low PBS extinction ratio may leak (partial) key information to an adversary or enable active attacks that bias detectors.

As part of my PhD research, I have been working on methods to integrate PAM characterization data into a QKD security proof. This project aims to build calibrated polarization preparation and characterize first a self-assembled PAM and subsequently the PAM of a real QKD receiver.

Project plan

The project proceeds along the following steps:

  1. Assemble a free-space polarization-state generator (PSG: QWP + HWP after a fixed linear polarizer) able to span the full Bloch / Poincaré sphere.
  2. Assemble an analyzer to calibrate the QWP and HWP.
  3. Validate preparation of H,V,D,A,R,L-polarized states and rigorously derive an uncertainty budget for the physically prepared states.
  4. Connect the calibrated PSG to
    • (4.1) a self-assembled PAM, and
    • (4.2) the PAM of a commercial QKD system.
    Use a self-assembled fibre polarization controller, or the QKD receiver's own polarization controller, to rotate the reference frame (basis of the calibrated PSG) into the receiver frame (basis of the QKD receiver).
  5. Measure the input–output power ratio for all four PAM output ports, and from this derive an instrument matrix for the QKD receiver — or rather, an uncertainty region of instrument matrices, due to non-zero preparation and measurement uncertainty.
  6. (Outside this course.) Calculate a conservative secure key rate for a worst-case PAM inside that uncertainty region. Maybe: Do measurements in attenuated form, click counts of QKD receiver's APDs instead of power meter.

Required equipment (expected)

Item Use Notes / qty
Laser source at 1550 nm For preparation and power-ratio measurements Isolator needed?
Variable optical attenuator (VOA) Power control without changing laser drive Range covering both powermeter / polarimeter operation (+ maybe APDs)
High-extinction linear polarizer P0 (Glan-type?) Defines generator H axis, fixed (not rotatable) 1
QWP and HWP PSG: span the Poincaré sphere 1 each for the generator (maybe one extra QWP if a validation analyzer is built instead of just using polarimeter)
Automated rotation mounts / stages Calibrated plate angles ≥2 (QWP, HWP); extra for analyzer plates
Analyzer PBS + two power meters Calibrate QWP/HWP (parallel and crossed ports, must be able to rotate PBS) Dual-channel preferred
Monitor pick-off (/Beamsplitter) + photodiode Normalize source drift during scans 1
Polarimeter Independent validation of prepared H,V,D,A,R,L
Fibre coupler, SMF patch leads Launch into fibre-coupled PAM / QKD Rx
Fibre polarization controller Align generator frame to receiver frame Freeze settings during calibrated acquisitions; may be possible to instead use the QKD Rx controller
Four-port power detection PAM input–output ratios on H,V,+,
Self-assembled PAM First characterization target (step 4.1) (done / provided by colleague)
Commercial QKD receiver (PAM) Second characterization target (step 4.2) Already available, access to four PAM output ports
Breadboard / cage rods, mounts, irises Alignment
Temperature logger Waveplate / lab drift (optional for uncertainty budget)

Resources

Some hopefully useful references should go here.

  • Bahaa E. A. Saleh, Malvin Carl Teich: Fundamentals of Photonics, Wiley; available as e-book in NUS. Excellent reference book for many optics topics.

Recorded classes

Date Topic Description Reference
17.8.2026 Paraxial ray optics A recap of how to deal with classical ray optics through ABCD matrices Saleh, Teich: Fundamentals of Photonics
18.8.2026 Paraxial wave optics Working towards Gaussian beams found with lasers... same as above
24.8.2026 Optical cavities 1 Fabry-Perot, simple 1D dimensional
25.8.2026 Optical cavities 2 Transverse mode structure, optical coating basics

Complete playlist: https://www.youtube.com/playlist?list=PLN-Fk1m9cTD4

Previous version of this course wiki

Getting started

Consult the User's Guide for information on using the wiki software.

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