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NICOLAS BRUNNER, RALPH SILVA, PAUL SKRZYPCZYK, MARCUS HUBER NOAH LINDEN & SANDU POPESCU. ENTANGLEMENT IN SMALL SELF-CONTAINED QUANTUM FRIDGES. SINGAPORE AUG 2013. 3-QUBIT FRIDGE. 3-QUBIT FRIDGE. DESIGN. 3-QUBIT FRIDGE. DESIGN. INTERACTION. 3-QUBIT FRIDGE. DESIGN. INTERACTION.
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NICOLAS BRUNNER,RALPH SILVA, PAUL SKRZYPCZYK, MARCUS HUBER NOAH LINDEN & SANDU POPESCU ENTANGLEMENT IN SMALL SELF-CONTAINED QUANTUM FRIDGES SINGAPORE AUG 2013
3-QUBIT FRIDGE DESIGN
3-QUBIT FRIDGE DESIGN INTERACTION
3-QUBIT FRIDGE DESIGN INTERACTION BIAS COOLING
THE MODEL FREE HAMILTONIAN WITH
THE MODEL FREE HAMILTONIAN WITH INTERACTION
THE MODEL FREE HAMILTONIAN WITH INTERACTION THERMALISATION RESET QUBIT TO THERMAL STATE
THE MODEL FREE HAMILTONIAN WITH INTERACTION THERMALISATION RESET QUBIT TO THERMAL STATE WEAK COUPLING REGIME
SOLVING THE MODEL MASTER EQUATION DISSIPATOR (LINDBLAD) STEADY STATE TRACELESS MATRIX ≈ BIAS BETWEEN POPULATIONS OF |010> AND |101>
AROUND CARNOT POINT STEADY STATE BIAS TRACELESS MATRIX
AROUND CARNOT POINT STEADY STATE BIAS TRACELESS MATRIX CARNOT POINT
AROUND CARNOT POINT STEADY STATE BIAS TRACELESS MATRIX CARNOT POINT ALSO TRUE AROUND CARNOT (BALL OF SEP STATES)
AROUND CARNOT POINT STEADY STATE BIAS TRACELESS MATRIX CARNOT POINT ALSO TRUE AROUND CARNOT (BALL OF SEP STATES) ENTANGLEMENT IS DETRIMENTAL FOR EFFICIENCY
ENTANGLEMENT? STEADY STATE WHERE
ENTANGLEMENT? STEADY STATE WHERE ENTANGLEMENT WITNESSES MEASURE OF ENTANGLEMENT GUHNE & SEEVINCK NJP 2010, HUBER et al. PRL 2010
ENTANGLEMENT ZOO 1. ENTANGLEMENT BETWEEN ANY BIPARTITION 2. GENUINE TRIPARTITE ENTANGLEMENT
ENTANGLEMENT ZOO 1. ENTANGLEMENT BETWEEN ANY BIPARTITION 2. GENUINE TRIPARTITE ENTANGLEMENT DOES THIS ENTANGLEMENT PLAY ANY ROLE?
COOLING CONSIDER A GIVEN OBJECT (QUBIT) TO BE COOLED FIX: ENERGY, BATH (TEMPERATURE TC, COUPLING)
COOLING CONSIDER A GIVEN OBJECT (QUBIT) TO BE COOLED FIX: ENERGY, BATH (TEMPERATURE TC, COUPLING p1) CONSIDER GIVEN RESSOURCES: HOT BATH (TH) COLD BATH (TR)
COOLING CONSIDER A GIVEN OBJECT (QUBIT) TO BE COOLED FIX: ENERGY, BATH (TEMPERATURE TC, COUPLING p1) CONSIDER GIVEN RESSOURCES: HOT BATH (TH) COLD BATH (TR) 1. OPTIMIZE COOLING TS (LOWEST T FOR QUBIT) FREE PARAMETERS: E2 and g, p2, p3 << Ei
COOLING CONSIDER A GIVEN OBJECT (QUBIT) TO BE COOLED FIX: ENERGY, BATH (TEMPERATURE TC, COUPLING p1) CONSIDER GIVEN RESSOURCES: HOT BATH (TH) COLD BATH (TR) 1. OPTIMIZE COOLING TS (LOWEST T FOR QUBIT) FREE PARAMETERS: E2 and g, p2, p3 << Ei 2. OPTIMIZE COOLING IMPOSING SEPARABILITY TS*
COOLING ENHANCEMENT RELATIVE COOLING ENHANCEMENT
COOLING ENHANCEMENT RELATIVE COOLING ENHANCEMENT NO ENHANCEMENT
COOLING ENHANCEMENT MONOTONOUS RELATION BTW COOLING ENHANCEMENT AND ENTANGLEMENT (CONCURRENCE)
COOLING ENHANCEMENT MONOTONOUS RELATION BTW COOLING ENHANCEMENT AND ENTANGLEMENT (CONCURRENCE) FUNCTIONAL RELATIONSHIP?
ENERGY TRANSPORT ENTANGLEMENT: ENERGY IN / ENERGY OUT
OPEN QUESTIONS • BEYOND WEAK COUPLING REGIME • OTHER MODELS • MACROSCOPIC FRIDGES • HEAT ENGINES • QUANTUM EFFECTS IN BATHS