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Quantum cryptography

the science of exploiting quantum mechanical properties to perform cryptographic tasks

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Record originEnglish Wikipedia
Text licenseCC BY-SA 4.0
Source revisionAug 17, 2026
Entity authorityQ471906
Source-derived summary

Quantum cryptography is the exploiting of quantum-mechanical properties such as quantum entanglement, measurement disturbance, no-cloning theorem, and the principle of superposition to perform encryption tasks. Quantum encryption plays a crucial role in the secure processing, storage, and transmission of information.

One aspect of quantum cryptography is quantum key distribution (QKD), which offers an information-theoretically secure solution to the key-exchange problem. Quantum cryptography allows the completion of cryptographic tasks that are proven or conjectured to be impossible using only classical (i.e., non-quantum) communication.

Furthermore, quantum cryptography affords the authentication of messages, which allows the legitimate parties to prove that the messages were not wiretapped during transmission. Thus, in a cryptographic set-up, it is impossible to copy, with perfect fidelity, the data encrypted in a quantum state. If one attempts to read the encrypted data, the quantum state will be changed due to wave function collapse (no-cloning theorem). This could be used to detect eavesdropping in QKD schemes, or in quantum communication links and networks.

These advantages make quantum cryptography important in the digital age, where devices are increasingly interconnected and cyberattacks have become increasingly sophisticated. Quantum-mechanical properties – more specifically, quantum authentication – are critical components in the advancement of a quantum internet, as they establish robust mechanisms to ensure the long-term privacy and integrity of digital communications and systems.

Editorial summary

The public source identifies “Quantum cryptography” as the science of exploiting quantum mechanical properties to perform cryptographic tasks. This brief keeps that definition visible, then builds a research path around Quantum, cryptography and science.

Editorial reviewA dependable orientation record for establishing vocabulary, names and a first evidence trail. The current 219-word lead offers orientation but no explicit four-digit date, so chronology should not be assumed. The selected authority fields contribute no independent date. Its value is orientation rather than verdict, with Quantum, cryptography and science providing the first useful test.
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A short description can identify a subject without explaining its stakes. For “Quantum cryptography”, the useful work is to connect “the science of exploiting quantum mechanical properties to perform cryptographic tasks” to the records capable of establishing context and consequence.

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Named sources, stable identifiers and responsible institutions provide the strongest route from overview to verifiable evidence. The source revision retrieved here is dated Aug 17, 2026. The linked authority identifier is Q471906. None of the 0 selected statements returned an explicit reference.

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This entry incorporates text from Quantum cryptography” on English Wikipedia. Contributors are listed in the page history. Text is available under the Creative Commons Attribution-ShareAlike 4.0 License. Selected authority identifiers and statements are retrieved from Wikidata under CC0; their references and qualifiers remain part of the verification path.