Physics Maths Engineering
Peer Reviewed
Midgap states are energy levels introduced by quantum defects within the band gap of a host material. These states play a pivotal role in quantum sensing and computing by enabling optical transitions that interact with electronic spin states.
Optically active quantum defects allow for initialization and readout of quantum states using photons, essential for quantum computing, communication, and sensing.
Midgap states facilitate precise optical control, crucial for technologies requiring high fidelity in photon-spin interfaces, such as quantum networks and sensors.
Materials like silicon, diamond, SiC, and hBN host notable quantum defects, including NV centers and T centers, which demonstrate potential for various quantum applications.
Challenges include temperature dependence, radiative lifetime management, and ensuring coherence for room-temperature operations, which are crucial for practical implementation.
Show by month | Manuscript | Video Summary |
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2025 January | 6 | 6 |
2024 December | 10 | 10 |
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Show by month | Manuscript | Video Summary |
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2025 January | 6 | 6 |
2024 December | 10 | 10 |
Total | 16 | 16 |