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Electrically Driven Quantum Dot Based Single-Photon Sources

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Electrically Driven Quantum Dot Based Single-Photon Sources
Lowest price (incl. delivery)
14 314,00 JPY
Typical price1 052,61 PLN
Lowest (90 days)71,50 PLN
Offers6
Last updated1 week ago
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Price history (90 days)
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2026-08-08 2026-08-15
Price History
Updated AtPrice
2026-08-0884,99
2026-08-1571,50
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SP SpringerNatureLink Shop INT 14 299,00 JPY 15,00 JPY 14 314,00 JPY Available 1 week ago View offer
SP Springer Nature Author 14 299,00 JPY 29,00 JPY 14 328,00 JPY Available 1 week ago View offer
SP SpringerNatureLink Shop INT 99,99 USD free 99,99 USD Available 1 week ago View offer
SP SpringerNatureLink Shop INT 109,99 USD free 109,99 USD Available 1 week ago View offer
SP SpringerNatureLink Shop INT 109,99 USD 15,00 USD 124,99 USD Available 1 week ago View offer
SP SpringerNatureLink Shop INT 118,00 EUR free 118,00 EUR Available 1 week ago View offer

Prices and availability may change. Last Updated: 08.08.2026 23:20.

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Semiconductor quantum optics is on the verge of moving from the lab to real world applications. When stepping from basic research to new technologies, device engineers will need new simulation tools for the design and optimization of quantum light sources, which combine classical device physics with cavity quantum electrodynamics. This thesis aims to provide a holistic description of single-photon emitting diodes by bridging the gap between microscopic and macroscopic modeling approaches. The central result is a novel hybrid quantum-classical model system that self-consistently couples semi-classical carrier transport theory with open quantum many-body systems. This allows for a comprehensive description of quantum light emitting diodes on multiple scales: It enables the calculation of the quantum optical figures of merit together with the simulation of the spatially resolved current flow in complex, multi-dimensional semiconductor device geometries out of one box. The hybrid system isshown to be consistent with fundamental laws of (non-)equilibrium thermodynamics and is demonstrated by numerical simulations of realistic devices.

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