Optimizing energy conversion with nonthermal resources in steady-state quantum devices
Journal article, 2026

We provide a framework for optimizing energy conversion processes in coherent quantum conductors fed by nonthermal resources. Such nonthermal resources, which cannot be characterized by temperatures or electrochemical potentials, occur in small-scale systems that are smaller than their thermalization length. Using scattering theory in combination with a Lagrange multiplier method, we optimize the device’s performance based on the efficiency, precision, or a trade-off between the two at a given output current. The transmission properties leading to this optimal performance are identified. We showcase our findings with the example of a refrigerator exploiting experimentally relevant nonthermal resources, which could result from competing environments or from light irradiation. We show that the performance is improved compared to a device exploiting a thermal resource. Our results can serve as guidelines for the design of energy-conversion processes in future nanoelectronic devices.

Author

Elsa Danielsson

Chalmers, Microtechnology and Nanoscience (MC2), Applied Quantum Physics

Henning Kirchberg

Chalmers, Microtechnology and Nanoscience (MC2), Applied Quantum Physics

Janine Splettstösser

Chalmers, Microtechnology and Nanoscience (MC2), Applied Quantum Physics

Physical Review B

2469-9950 (ISSN) 2469-9969 (eISSN)

Vol. 112 19 1-21 195434

On-chip waste recovery in quantum and nanoscale devices guided by novel performance quantifiers (NanoRecycle)

European Commission (EC) (EC/HE/101088169), 2024-01-01 -- 2028-12-31.

Subject Categories (SSIF 2025)

Condensed Matter Physics

DOI

10.1103/DTVP-PWXK

Related datasets

Repository for "Optimizing energy conversion with nonthermal resources in steady-state quantum devices" [dataset]

URI: https://zenodo.org/records/16918456

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Latest update

5/13/2026