Experiments on the Thermodynamics of Information Processing [electronic resource] / by Momčilo Gavrilov.

За: Інтелектуальна відповідальність: Вид матеріалу: Текст Серія: Springer Theses, Recognizing Outstanding Ph.D. ResearchПублікація: Cham : Springer International Publishing : Imprint: Springer, 2017Видання: 1st ed. 2017Опис: XVI, 147 p. 55 illus., 53 illus. in color. online resourceТип вмісту:
  • text
Тип засобу:
  • computer
Тип носія:
  • online resource
ISBN:
  • 9783319636948
Тематика(и): Додаткові фізичні формати: Printed edition:: Немає назви; Printed edition:: Немає назви; Printed edition:: Немає назвиДесяткова класифікація Дьюї:
  • 536.7 23
Класифікація Бібліотеки Конгресу:
  • QC310.15-319
Електронне місцезнаходження та доступ:
Вміст:
Introduction -- Feedback Trap -- Real-time Calibration of a Feedback Trap -- High-Precision Test of Landauer’s Principle -- Erasure without Work in an Asymmetric, Double-well Potential -- Thermodynamical and Logical Irreversibility -- Arbitrarily Slow, Non-quasistatic, Isothermal Transformations -- Partial Memory Erasure: Testing Shannon’s Entropy Function -- Conclusion.
У: Springer eBooksЗведення: This thesis reveals how the feedback trap technique, developed to trap small objects for biophysical measurement, could be adapted for the quantitative study of the thermodynamic properties of small systems. The experiments in this thesis are related to Maxwell’s demon, a hypothetical intelligent, “neat fingered” being that uses information to extract work from heat, apparently creating a perpetual-motion machine.  The second law of thermodynamics should make that impossible, but how? That question has stymied physicists and provoked debate for a century and a half. The experiments in this thesis confirm a hypothesis proposed by Rolf Landauer over fifty years ago: that Maxwell’s demon would need to erase information, and that erasing information—resetting the measuring device to a standard starting state—requires dissipating as much energy as is gained.  For his thesis work, the author used a “feedback trap” to study the motion of colloidal particles in “v irtual potentials” that may be manipulated arbitrarily. The feedback trap confines a freely diffusing particle in liquid by periodically measuring its position and applying an electric field to move it back to the origin.
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Introduction -- Feedback Trap -- Real-time Calibration of a Feedback Trap -- High-Precision Test of Landauer’s Principle -- Erasure without Work in an Asymmetric, Double-well Potential -- Thermodynamical and Logical Irreversibility -- Arbitrarily Slow, Non-quasistatic, Isothermal Transformations -- Partial Memory Erasure: Testing Shannon’s Entropy Function -- Conclusion.

This thesis reveals how the feedback trap technique, developed to trap small objects for biophysical measurement, could be adapted for the quantitative study of the thermodynamic properties of small systems. The experiments in this thesis are related to Maxwell’s demon, a hypothetical intelligent, “neat fingered” being that uses information to extract work from heat, apparently creating a perpetual-motion machine.  The second law of thermodynamics should make that impossible, but how? That question has stymied physicists and provoked debate for a century and a half. The experiments in this thesis confirm a hypothesis proposed by Rolf Landauer over fifty years ago: that Maxwell’s demon would need to erase information, and that erasing information—resetting the measuring device to a standard starting state—requires dissipating as much energy as is gained.  For his thesis work, the author used a “feedback trap” to study the motion of colloidal particles in “v irtual potentials” that may be manipulated arbitrarily. The feedback trap confines a freely diffusing particle in liquid by periodically measuring its position and applying an electric field to move it back to the origin.

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