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European Journal of Physics
written by Antje Kohnle and Aluna Rizzoli
Secure communication protocols are becoming increasingly important for internet-based communication. Quantum key distribution (QKD) allows two parties, commonly called Alice and Bob, to generate a secret sequence of 0s and 1s called a key that is only known to themselves. Classically, Alice and Bob could never be certain that their communication was not compromised by a malicious eavesdropper. Quantum mechanics however makes secure communication possible. The fundamental principle of quantum mechanics that taking a measurement perturbs the system (unless the measurement is compatible with the quantum state) also applies to an eavesdropper. Using appropriate protocols to create the key, Alice and Bob can detect the presence of an eavesdropper by errors in their measurements. As part of the QuVis Quantum Mechanics Visualisation Project, we have developed a suite of four interactive simulations that demonstrate the basic principles of three different QKD protocols. The simulations use either polarized photons or spin 1/2 particles as physical realizations. The simulations and accompanying activities are freely available for use online or download, and run on a wide range of devices including tablets and PCs. Evaluation with students over three years was used to refine the simulations and activities. Preliminary studies show that the refined simulations and activities help students learn the basic principles of QKD at both the introductory and advanced undergraduate levels.
European Journal of Physics: Volume 38, Issue 3, Pages 035403
Subjects Levels Resource Types
Education Foundations
- Student Characteristics
= Skills
Education Practices
- Instructional Material Design
= Simulation
- Technology
Quantum Physics
- General
- Upper Undergraduate
- Lower Undergraduate
- Reference Material
= Research study
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License:
This material is released under a Creative Commons Attribution 4.0 license.
Rights Holder:
European Physical Society
DOI:
10.1088/1361-6404/aa62c8
Keywords:
communications security, cryptographic key, data transmission
Record Creator:
Metadata instance created January 30, 2022 by Adrian Madsen
Record Updated:
March 23, 2022 by Caroline Hall
Last Update
when Cataloged:
March 16, 2017
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AIP Format
A. Kohnle and A. Rizzoli, , Eur. J. Phys. 38 (3), 035403 (2017), WWW Document, (https://doi.org/10.1088/1361-6404/aa62c8).
AJP/PRST-PER
A. Kohnle and A. Rizzoli, Interactive simulations for quantum key distribution, Eur. J. Phys. 38 (3), 035403 (2017), <https://doi.org/10.1088/1361-6404/aa62c8>.
APA Format
Kohnle, A., & Rizzoli, A. (2017, March 16). Interactive simulations for quantum key distribution. Eur. J. Phys., 38(3), 035403. Retrieved May 3, 2025, from https://doi.org/10.1088/1361-6404/aa62c8
Chicago Format
Kohnle, Antje, and Aluna Rizzoli. "Interactive simulations for quantum key distribution." Eur. J. Phys. 38, no. 3, (March 16, 2017): 035403, https://doi.org/10.1088/1361-6404/aa62c8 (accessed 3 May 2025).
MLA Format
Kohnle, Antje, and Aluna Rizzoli. "Interactive simulations for quantum key distribution." Eur. J. Phys. 38.3 (2017): 035403. 3 May 2025 <https://doi.org/10.1088/1361-6404/aa62c8>.
BibTeX Export Format
@article{ Author = "Antje Kohnle and Aluna Rizzoli", Title = {Interactive simulations for quantum key distribution}, Journal = {Eur. J. Phys.}, Volume = {38}, Number = {3}, Pages = {035403}, Month = {March}, Year = {2017} }
Refer Export Format

%A Antje Kohnle %A Aluna Rizzoli %T Interactive simulations for quantum key distribution %J Eur. J. Phys. %V 38 %N 3 %D March 16, 2017 %P 035403 %U https://doi.org/10.1088/1361-6404/aa62c8 %O application/pdf

EndNote Export Format

%0 Journal Article %A Kohnle, Antje %A Rizzoli, Aluna %D March 16, 2017 %T Interactive simulations for quantum key distribution %J Eur. J. Phys. %V 38 %N 3 %P 035403 %8 March 16, 2017 %U https://doi.org/10.1088/1361-6404/aa62c8


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