Phase-Tunable Thermal Logic: Computation with Heat
arXiv:1709.08609 · doi:10.1103/PhysRevApplied.10.024003
Abstract
Boolean algebra, the branch of mathematics where variables can assume only true or false value, is the theoretical basis of classical computation. The analogy between Boolean operations and electronic switching circuits, highlighted by Shannon in 1938, paved the way to modern computation based on electronic devices. The grow of computational power of such devices, after an exciting exponential -Moore trend, is nowadays blocked by heat dissipation due to computational tasks, very demanding after the chips miniaturization. Heat is often a detrimental form of energy which increases the systems entropy decreasing the efficiency of logic operations. Here, we propose a physical system able to perform thermal logic operations by reversing the old heat-disorder epitome into a novel heat-order paradigm. We lay the foundations of heat computation by encoding logic state variables in temperature and introducing the thermal counterparts of electronic logic gates. Exploiting quantum effects in thermally biased Josephson junctions (JJs), we propound a possible realization of a functionally complete dissipationless logic. Our architecture ensures high operation stability and robustness with switching frequencies reaching the GHz.
References in corpus (10)
- Quantum Computing
- Thermal Logic Gates: Computation with phonons
- Single-mode heat conduction by photons
- The Josephson heat interferometer
- Rectification of electronic heat current by a hybrid thermal diode
- Phase controlled superconducting proximity effect probed by tunneling spectroscopy
- Revealing the magnetic proximity effect in EuS/Al bilayers through superconducting tunneling spectroscopy
- Superconductors as ideal spin sources for spintronics
- Very large thermophase in ferromagnetic Josephson junctions
- Proximity nanovalve with large phase-tunable thermal conductance
Cited by in corpus (29)
- Thermal, electric and spin transport in superconductor/ferromagnetic-insulator structures
- Josephson-Threshold Calorimeter
- Enhancing coherent energy transfer between quantum devices via a mediator
- Phase-dependent heat and charge transport through superconductor-quantum dot hybrids
- Non-linear critical current thermal response of an asymmetric Josephson tunnel junction
- Phase-coherent solitonic Josephson heat oscillator
- Phase-coherent heat circulator based on multi-terminal Josephson junctions
- Phase-tunable thermal rectification in the topological SQUIPT
- Hybrid quantum thermal machines with dynamical couplings
- Phase-tunable Josephson thermal router
- Phase-coherent caloritronics with ordinary and topological Josephson junctions
- Superconductor-ferromagnet hybrids for non-reciprocal electronics and detectors
- Thermal superconducting quantum interference proximity transistor
- Electron cooling with graphene-insulator-superconductor tunnel junctions and applications to fast bolometry
- Phase-coherent heat circulators with normal- or superconducting contacts
- Thermal rectification and negative differential thermal conductivity based on a parallel-coupled double quantum-dot
- Thermal signature of Majorana fermions in Josephson junction
- Solitonic thermal transport in a current biased long Josephson junction
- Double loop dc-SQUID as a tunable Josephson diode
- Thermoelectric detection of Andreev states in unconventional superconductors
- Four-terminal graphene-superconductor thermal switch controlled by the superconducting phase difference
- Extremely weak sub-kelvin electron-phonon coupling in InAs On Insulator
- Thermodynamics of a phase-driven proximity Josephson junction
- Picosecond transfer from short-term to long-term memory in analog antiferromagnetic memory device
- Out-of-equilibrium nonlinear model of thermoelectricity in superconducting tunnel junctions
- Photonic heat amplifiers based on a disordered semiconductor
- Sub-nanosecond heat-based logic, writing and reset in an antiferromagnetic magnetoresistive memory
- Low-temperature magnetic-field-driven thermal oscillator based on metal-superconductor joint
- Photonic Negative Differential Thermal Conductance Enabled by NIS Junctions