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Pranshu Maan

Publications and source records attributed to Pranshu Maan.

3 recordsLinked to original sources

Anticipating Decoherence for Enhancing Coherence in Quantum Systems

Large-scale quantum systems require optical coherence between distant quantum devices, necessitating spectral indistinguishability. Scalable solid-state platforms offer promising routes to this goal. However, environmental disorders, including dephasing, spectral diffusion, and spin-bath interactions, influence the emitters' spectra and deteriorate the coherence. Using statistical theory, we identify correlations in spectral diffusion from slowly varying environmental coupling, revealing predictable dynamics extendable to other disorders. Importantly, this could enable the development of an anticipatory framework for forecasting and decoherence engineering in remote quantum emitters. To validate this framework, we demonstrate that a machine learning model trained on limited data can accurately forecast unseen spectral behavior. Realization of such a model on distinct quantum emitters could reduce the spectral shift by factors $\approx$ 2.1 to 15.8, depending on emitter stability, compared to no prediction. This work presents, for the first time, the application of anticipatory systems and replica theory to quantum technology, along with the first experimental demonstration of internal prediction that generalizes across multiple quantum emitters. These results pave the way for real-time decoherence engineering in scalable quantum systems. Such capability could lead to enhanced optical coherence and multi-emitter synchronization, with broad implications for quantum communication, computation, imaging, and sensing.

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Towards Generation of Indistinguishable Coherent States

We have addressed the characteristic distinguishability of coherent states in the temporal domain from a directly modulated quantum well-based gain-switched laser diode. Using small-signal and large-signal models, we identify tunable parameters to generate indistinguishable coherent states from an electrically pumped semiconductor laser. The experiment confirms the generation of indistinguishable signal and decoy coherent states as predicted by the numerical simulation.

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Indistinguishable sub-nanosecond Pulse Generator

Indistinguishable laser pulse is important in realization of qubits in quantum cryptography. Implementation of such cryptography in automotive framework needs to be compact and cheap. However, modern implementation of quantum cryptography is bulky and expensive. Significant effort has been put into to reduce the form factor of quantum cryptography implementation. We report a compact, low cost, indistinguishable, sub-nanosecond pulse generator with adjusted delay and amplitude using a Fabry-Perot laser diode. The approach was derived based on algebraic topology formulation of electrical network, and the implementation is time dependent perturbation of a constant current node, generating tun-able, sub-nanosecond excitation with constant pre-bias. Parameters for simulation model for the laser diode was obtained considering effect of spontaneous emission and relaxation oscillation. The shortest pulse was measured to have FWHM of 496ps.

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