peer reviewedWe present a physical implementation of a Maxwell demon which consists of a conventional single electron transistor (SET) capacitively coupled to another quantum dot detecting its state. Altogether, the system is described by stochastic thermodynamics. We identify the regime where the energetics of the SET is not affected by the detection, but where its coarse-grained entropy production is shown to contain a new contribution compared to the isolated SET. This additional contribution can be identified as the information flow generated by the ‘‘Maxwell demon’’ feedback in an idealized limit
Maxwell's demon is the quintessential example of information control, which is necessary for designi...
We study the nonequilibrium properties of an electronic circuit composed of a double quantum dot (DQ...
Classical and quantum electronic circuits provide ideal platforms to investigate stochastic thermody...
We propose a setup based on two coupled quantum dots where thermodynamics of a measurement can be qu...
We propose a setup based on two coupled quantum dots where thermodynamics of a measurement can be qu...
Converting information into work has, during the past decade, gained renewed interest as it gives in...
In his famous letter in 1870, Maxwell describes how Joule's law can be violated only by the intellig...
peer reviewedWe describe a single-level quantum dot in contact with two leads as a nanoscale finite-...
peer reviewedWe describe a single-level quantum dot in contact with two leads as a nanoscale finite-...
We consider an autonomous implementation of Maxwell's demon in a quantum dot architecture acting on ...
A Maxwell's demon is a device that gets information and trades it in for thermodynamic advantage, in...
peer reviewedWe study the nonequilibrium properties of an electronic circuit composed of a double qu...
The long-standing paradigm of Maxwell’s demon is till nowadays a frequently investigated issue, whic...
In small systems with large fluctuations, the classical description of thermodynamics is no longer s...
In small systems with large fluctuations, the classical description of thermodynamics is no longer s...
Maxwell's demon is the quintessential example of information control, which is necessary for designi...
We study the nonequilibrium properties of an electronic circuit composed of a double quantum dot (DQ...
Classical and quantum electronic circuits provide ideal platforms to investigate stochastic thermody...
We propose a setup based on two coupled quantum dots where thermodynamics of a measurement can be qu...
We propose a setup based on two coupled quantum dots where thermodynamics of a measurement can be qu...
Converting information into work has, during the past decade, gained renewed interest as it gives in...
In his famous letter in 1870, Maxwell describes how Joule's law can be violated only by the intellig...
peer reviewedWe describe a single-level quantum dot in contact with two leads as a nanoscale finite-...
peer reviewedWe describe a single-level quantum dot in contact with two leads as a nanoscale finite-...
We consider an autonomous implementation of Maxwell's demon in a quantum dot architecture acting on ...
A Maxwell's demon is a device that gets information and trades it in for thermodynamic advantage, in...
peer reviewedWe study the nonequilibrium properties of an electronic circuit composed of a double qu...
The long-standing paradigm of Maxwell’s demon is till nowadays a frequently investigated issue, whic...
In small systems with large fluctuations, the classical description of thermodynamics is no longer s...
In small systems with large fluctuations, the classical description of thermodynamics is no longer s...
Maxwell's demon is the quintessential example of information control, which is necessary for designi...
We study the nonequilibrium properties of an electronic circuit composed of a double quantum dot (DQ...
Classical and quantum electronic circuits provide ideal platforms to investigate stochastic thermody...