Optimal control of population transfer in multi-level systems by dynamical quantum geometric tensor
- URL: http://arxiv.org/abs/2512.20131v1
- Date: Tue, 23 Dec 2025 07:50:08 GMT
- Title: Optimal control of population transfer in multi-level systems by dynamical quantum geometric tensor
- Authors: Guan-Qiang Li, Yu-Qi Zhang, Hao Guo, You-Jiao Dong, Zhi-Yu Lin, Ping Peng,
- Abstract summary: The optimal control of population transfer for multi-level systems is investigated from the perspective of quantum geometry.<n>For a three-level system, the optimal STIRAP scheme has an efficiency of over 98% in transferring the population to the final state, while the transfer efficiency of traditional STIRAP is about 72%.
- Score: 7.784237256241038
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: The optimal control of population transfer for multi-level systems is investigated from the perspective of quantum geometry. Firstly, the general theoretical framework of optimizing the stimulated Raman adiabatic passage (STIRAP) scheme based on the dynamical quantum geometric tensor is given, and then the dynamical quantum geometric tensor and the nonadiabatic transition rate are calculated by taking the detuned $Λ$-type three-level system and tripod-type four-level system for example. Secondly, the transfer dynamics of the particle population of the system are investigated in detail. For a three-level system, the optimal STIRAP scheme has an efficiency of over 98\% in transferring the population to the final state, while the transfer efficiency of traditional STIRAP is about 72\%. The superposition states with arbitrary proportions can be efficiently prepared for a four-level system due to the decoupling of the degenerate dark states. Finally, the influences of system parameters, such as the operation time of the Rabi pulses, the amplitude fluctuation and the single-photon detuning, on the transfer process are discussed. Especially, the phenomenon of the adiabatic resonance transfer is revealed. Choosing the pulse parameters in the resonance window can reduce the infidelity of the population transfer to below $10^{-3}$. It is found that the optimal STIRAP scheme by the dynamical quantum geometric tensor provides faster and more efficient transfer than the traditional STIRAP scheme.
Related papers
- Multi-level spectral navigation with geometric diabatic-adiabatic control [0.0]
We introduce a framework for efficient few- parameter pulse optimization in multi-level quantum systems.<n>Our method interpolates smoothly between adiabatic and diabatic dynamics to minimize unwanted excitations.<n>We showcase the flexibility of our diabatic-adiabatic protocols through two examples in spin-based quantum information processing.
arXiv Detail & Related papers (2026-02-16T14:01:15Z) - Complete and robust population transfer between the two ground states of a three-state loop quantum system by amplitude composite pulse control [0.0]
This work presents a method for achieving complete, robust, and efficient population transfer between the two ground states in a three-level loop quantum system.<n>The approach utilizes composite pulse sequences by effectively mapping the three-state system onto an equivalent two-level system.
arXiv Detail & Related papers (2025-04-08T07:32:00Z) - Efficiency of Dynamical Decoupling for (Almost) Any Spin-Boson Model [44.99833362998488]
We analytically study the dynamical decoupling of a two-level system coupled with a structured bosonic environment.<n>We find sufficient conditions under which dynamical decoupling works for such systems.<n>Our bounds reproduce the correct scaling in various relevant system parameters.
arXiv Detail & Related papers (2024-09-24T04:58:28Z) - Quantum state engineering in a five-state chainwise system by coincident pulse technique [15.13027565390905]
We show that the solution of a five-state chainwise system can be reduced to an equivalent three-state $Lambda$-type one.
All of four incident pulses at each step all have the same time dependence, but with specific magnitudes.
The results are of potential interest to applications where high-fidelity multi-state quantum control is essential.
arXiv Detail & Related papers (2023-11-27T10:24:05Z) - Control landscape of measurement-assisted transition probability for a
three-level quantum system with dynamical symmetry [77.34726150561087]
Quantum systems with dynamical symmetries have conserved quantities which are preserved under coherent controls.
Incoherent control can increase the maximal attainable transition probability.
We show that all critical points are global maxima, global minima, saddle points and second order traps.
arXiv Detail & Related papers (2023-07-14T16:12:21Z) - Accelerated quantum control in a three-level system by jumping along the
geodesics [11.559161293426564]
We show that the required evolution time for high-fidelity state transfer can be reduced by almost one order of magnitude.
These results provide a powerful tool for coherent spin manipulation in the context of quantum sensing and quantum computation.
arXiv Detail & Related papers (2023-04-20T23:23:40Z) - Dissipative preparation and stabilization of many-body quantum states in
a superconducting qutrit array [55.41644538483948]
We present and analyze a protocol for driven-dissipatively preparing and stabilizing a manifold of quantum manybody entangled states.
We perform theoretical modeling of this platform via pulse-level simulations based on physical features of real devices.
Our work shows the capacity of driven-dissipative superconducting cQED systems to host robust and self-corrected quantum manybody states.
arXiv Detail & Related papers (2023-03-21T18:02:47Z) - Autonomous coherence protection of a two-level system in a fluctuating
environment [68.8204255655161]
We re-examine a scheme originally intended to remove the effects of static Doppler broadening from an ensemble of non-interacting two-level systems (qubits)
We demonstrate that this scheme is far more powerful and can also protect a single (or even an ensemble) qubit's energy levels from noise which depends on both time and space.
arXiv Detail & Related papers (2023-02-08T01:44:30Z) - A self-consistent field approach for the variational quantum
eigensolver: orbital optimization goes adaptive [52.77024349608834]
We present a self consistent field approach (SCF) within the Adaptive Derivative-Assembled Problem-Assembled Ansatz Variational Eigensolver (ADAPTVQE)
This framework is used for efficient quantum simulations of chemical systems on nearterm quantum computers.
arXiv Detail & Related papers (2022-12-21T23:15:17Z) - Indication of critical scaling in time during the relaxation of an open
quantum system [34.82692226532414]
Phase transitions correspond to the singular behavior of physical systems in response to continuous control parameters like temperature or external fields.
Near continuous phase transitions, associated with the divergence of a correlation length, universal power-law scaling behavior with critical exponents independent of microscopic system details is found.
arXiv Detail & Related papers (2022-08-10T05:59:14Z) - Robust population transfer of spin states by geometric formalism [0.0]
We propose a fast and robust scheme for population transfer which combines invariant-based inverse engineering and geometric formalism for robust quantum control.
Our scheme is not constrained by the adiabatic condition and therefore can be implemented fast.
It can also effectively suppress the dominant noise in spin systems, which together with the fast feature guarantees the accuracy of the population transfer.
arXiv Detail & Related papers (2022-05-05T15:14:22Z) - On optimization of coherent and incoherent controls for two-level
quantum systems [77.34726150561087]
This article considers some control problems for closed and open two-level quantum systems.
The closed system's dynamics is governed by the Schr"odinger equation with coherent control.
The open system's dynamics is governed by the Gorini-Kossakowski-Sudarshan-Lindblad master equation.
arXiv Detail & Related papers (2022-05-05T09:08:03Z) - Robust stimulated Raman shortcut-to-adiabatic passage by invariant-based
optimal control [5.290927777455239]
We present a robust approach to speed up STIRAP with inversely invariant-based shortcut to adiabaticity.
This technique has widely theoretical and experimental applications in many fields of physics, chemistry, and beyond.
Results provide an optimal route toward manipulating the evolution of three-level quantum systems in future quantum information processing.
arXiv Detail & Related papers (2021-03-02T00:56:15Z) - Transmon platform for quantum computing challenged by chaotic
fluctuations [55.41644538483948]
We investigate the stability of a variant of a many-body localized (MBL) phase for system parameters relevant to current quantum processors.
We find that these computing platforms are dangerously close to a phase of uncontrollable chaotic fluctuations.
arXiv Detail & Related papers (2020-12-10T19:00:03Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.