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Updated: Sep 7, 2026

Quantum State Engineering of Light with Continuous-wave Optical Parametric Oscillators
Published on: May 30, 2014
An Open-Quantum-Systems Theory of Quantum-Biological Communication Channels
1Department of Electrical and Computer Engineering, Baylor University, Waco, TX 76798, USA, and also with the Department of Radiology, The University of Texas Southwestern Medical Center, Dallas, TX 75390, USA.
Abstract:
Quantum biology and communication engineering remain only partly integrated. One is organized around mechanisms, the other around input-output channels. This paper joins them. We model a quantum-biological communication channel (QBCC) as an open quantum system: an input is encoded into a biological quantum subsystem, the state evolves under Gorini-Kossakowski-Sudarshan-Lindblad dynamics in a structured bath, and a classical readout induces a channel law . When is such a system a channel at all, rather than an observed quantum process? An operational criterion answers this, built on an arbitrary-but-fixed encoding and a commuting abstraction-representation diagram. The channel law then connects to mutual information, capacity, quantum Fisher information, and a noise-assistance index. Four reusable primitives follow: radical-pair receivers, exciton routers, proton-tunnelling genetic error channels, and ion-coherence links. One illustrative network and four literature-informed case studies instantiate them. A penalized likelihood-ratio test is then applied to two of them. It separates a phase-sensitive interference channel, not reproduced by the sign-blind rate null, from the Fenna-Matthews-Olson complex, whose noise-assisted transport that null already reproduces. A falsifiability workflow, two worked applications, and a five-layer network stack complete the framework.
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