Maximally entangled two-qubit Bell states

In summary, the difference between the first and second states in the four maximally entangled two-qubit Bell states is the sign between the two terms, which ensures orthogonality. This is also true for the third and fourth states. The use of svg images may not accurately represent the equations.
  • #1
kaje
23
0
Hello,
In the four maximally entangled two-qubit Bell states, what is the difference between the first and the second states, similarly, the difference between the third and the fourth states. What the different in signs mean( +,-)
https://wikimedia.org/api/rest_v1/media/math/render/svg/109a51fe05d9e48649bfb5a06ca5de616139ea2c
https://wikimedia.org/api/rest_v1/media/math/render/svg/c6f4fa7ca90a435fdf6c68e123e081e5ea3226d6
https://wikimedia.org/api/rest_v1/media/math/render/svg/baacb91e49575425e9ed235a5169ab84df8429f8
https://wikimedia.org/api/rest_v1/media/math/render/svg/9cffbf1aab3f5b14a68f4efaaaee4388c9efc82e
 
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  • #2
Please do not use svg images. Do they not come out correctly.

I can anyway answer your question. You will notice that ##\Psi^\pm## and ##\Phi^\pm## differ by the sign between the two terms. This change of sign ensures orthogonality.
 
  • #3
Thank you..

For instance, in phi state for both (+ and -), in the first term Alice would get 0 and Bob 0 as well for both (+,-). Actually, it is not clear in terms of definition and the way of measurement, as both look similar.

Thanks.
 

Related to Maximally entangled two-qubit Bell states

1. What are maximally entangled two-qubit Bell states?

Maximally entangled two-qubit Bell states are quantum states that represent the highest level of entanglement between two qubits. They have unique properties that allow for quantum information processing and secure communication.

2. How are maximally entangled two-qubit Bell states created?

These states can be created through various methods, such as using quantum gates or measuring the output of a quantum circuit. One common method is using a process called "entanglement swapping", which involves combining two partially entangled qubits to create a maximally entangled state.

3. What is the significance of maximally entangled two-qubit Bell states?

Maximally entangled two-qubit Bell states have important applications in quantum computing and quantum communication. They can be used to perform quantum teleportation, quantum error correction, and other quantum operations necessary for processing and transmitting information in a secure and efficient manner.

4. Can maximally entangled two-qubit Bell states be used for long-distance communication?

Yes, these states have the potential to be used for long-distance communication as they can maintain their entangled properties even when separated by large distances. This makes them a promising tool for developing quantum networks and secure communication protocols.

5. What are some potential challenges in working with maximally entangled two-qubit Bell states?

One challenge is maintaining the entangled state, as it can be easily disrupted by external factors such as noise and interference. Another challenge is scaling up the production of these states, as it requires precise control of multiple qubits. Additionally, understanding and utilizing these states effectively requires a deep understanding of quantum mechanics and quantum algorithms.

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