In 1991 the physicist Artur Ekert published a startling idea: you can share a secret cryptographic key with a stranger over a public channel, and the laws of quantum mechanics will tell you if anyone listened in. The trick is not mathematics — it is physics.
The key ingredient is quantum entanglement. Two particles can be prepared so that their properties are correlated in a way that has no classical explanation. Measure one particle and the outcome is random; measure the other and you get a result that, when compared, reveals a shared pattern. But here is the crucial part — the correlations are so strong that they violate something called a Bell inequality, a limit that any classical, "hidden-variable" theory must obey.
An eavesdropper who intercepts the particles must measure them, and measurement in quantum mechanics disturbs the state. That disturbance weakens the Bell correlations. Alice and Bob simply run a Bell test on a sample of their pairs: if the correlations are strong, the line was clean; if they are weakened, someone was listening.
E91 is one of the founding protocols of quantum key distribution (QKD) — the field that uses quantum mechanics to make eavesdropping physically detectable rather than merely computationally hard. Unlike classical cryptography, its security does not depend on any assumption about an attacker's computational power.
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