Search arXivSearch

arXiv · 2304.10420

Advancing Quantum Otto Engine Performance via Additional Magnetic Field and Effective Negative Temperature

Abstract

We formulate a protocol for a four-stroke quantum Otto engine that is capable of achieving superior performance when operating between two thermal reservoirs: one at a positive spin temperature and the other at an effective negative spin temperature. We adopt a protocol that encompasses a rotating magnetic field in the (x, y)-plane, as well as an additional magnetic field in the (z)-direction that possesses distinct strengths. Consequently, we acquire the capability to manipulate the strength of the magnetic field autonomously in both directions during dynamics. We report that by precisely adjusting the strength and the direction of the magnetic field in the (z)-direction and manipulating other relevant system parameters, we can effectively enhance the transition probability and hence the efficiency of the engine as well which can not be achieved without the additional magnetic field, although the impact is not ubiquitous. Additionally, another important significance of our model is that these engines operate within an extended operational domain, reaching into temperature ranges where the effective negative temperature-based quantum Otto engines operating only on the rotational magnetic field in the (x,y) plane, are unable to function. Specifically, we identify a threshold value for the magnetic field, dependent on the driving time, at which an improvement in efficiency is observed. We propose that this advantage may arise from the system exhibiting greater coherence with respect to the driving time, which we evaluate using the l1-norm coherence measure. Another noteworthy aspect is that the advantage in efficiency gained from the additional magnetic field continues to surpass that of the protocol without the field, even in the presence of impurities in the magnetic field having a specific range of disorder strengths.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Arghya Maity, Aditi Sen De. 2025-01-27. Advancing Quantum Otto Engine Performance via Additional Magnetic Field and Effective Negative Temperature. https://doi.org/10.1016/j.physleta.2025.130274

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Quantum Authenticated Key Expansion with Key Recycling

Data privacy and authentication are two main security requirements for remote access and cloud services. While QKD has been explored to address data privacy concerns, oftentimes its use is separate from the client authentication protocol despite implicitly providing authentication. Here, we present a quantum authentication key expansion (QAKE) protocol that (1) integrates both authentication and key expansion within a single protocol, and (2) provides key recycling property - allowing all authentication keys to be reused. We analyse the security of the protocol in a QAKE framework adapted from a classical authentication key exchange (AKE) framework, providing separate security conditions for authentication and data privacy. We experimentally implemented the protocol with appropriate post-selection. Additional results on the security of pseudorandom basis generation in QAKE and decoy state BB84 are provided.

quant-ph

Entanglement as Difference: Reduction-induced Minimal Partial Entropy Difference

Bipartite mixed-state quantum entanglement (QE) and its measures play a crucial role in both theoretical research and practical quantum applications. Its internal structure is far more complex and less well understood compared with bipartite pure-state QE. Some existing measures involve inherently intractable global optimizations, while others are only applicable to highly limited-dimensional quantum systems. Here based on the inherent feature that bipartite QE systems nonseparable necessarily implies that local reduced density matrix differs from its \textquotedblleft native\textquotedblright density matrix, we propose a more physical and intuitive measure termed Reduction-induced Minimal Partial Entropy Difference to quantify arbitrary bipartite mixed-state QE. Partial Von Neumann Entropy is only a pure-state special case of this method. This measure offers intrinsic structural %perspective insights into bipartite QE characterization, thereby establishing itself as a valuable complementary measure. Its intuitive and clear physical picture, combined with relatively low computational complexity and wide applicability, facilitates exploring its potential quantum information applications, hence its conceptual framework and line of thought deserve to be further developed to describe and quantify multipartite QE in the future.

quant-ph

Non-local mass superpositions and optical clock interferometry in atomic ensemble quantum networks

Quantum networks are emerging as powerful platforms for sensing, communication, and fundamental tests of physics. We propose a programmable quantum sensing network based on entangled atomic ensembles, where optical clock qubits realize mass superpositions arising via mass-energy equivalence, as in atom and atom-clock interferometry. Our approach uniquely combines scalability to large atom numbers with minimal control requirements, relying only on collective addressing of internal atomic states. This enables the creation of both non-local and local superpositions with spatial separations beyond those achievable in conventional matter-wave interferometry with single atoms. Starting from Bell-type seed states distributed via photonic channels, collective operations within atomic ensembles coherently build many-body mass superpositions sensitive to gravitational redshift. The resulting architecture implements a non-local Ramsey interferometer, where gravitationally induced phase shifts are imprinted on non-local entangled states and are read out through local measurements at the network nodes. Beyond extending the spatial reach of mass superpositions, our scheme establishes a scalable, programmable platform to probe the interface of quantum mechanics and gravity, and offers a new experimental pathway to test atom and atom-clock interferometer proposals, e.g. for probing gravitational dephasing, in a network-based quantum laboratory.

quant-ph