Information processing second law for an information ratchet with finite tape

We model a class of discrete-time information ratchet with a finite tape and explore its thermodynamic consequence as a Maxwell demon. We found that, although it supports the operational regime of an engine or eraser, it cannot typically sustain these thermodynamic functionalities due to eventual eq...

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Main Authors: He, Lianjie, Pradana, Andri, Cheong, Jian Wei, Chew, Lock Yue
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/161010
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1610102023-02-28T20:09:48Z Information processing second law for an information ratchet with finite tape He, Lianjie Pradana, Andri Cheong, Jian Wei Chew, Lock Yue School of Physical and Mathematical Sciences Science::Physics Discrete Time Maxwell's Demon We model a class of discrete-time information ratchet with a finite tape and explore its thermodynamic consequence as a Maxwell demon. We found that, although it supports the operational regime of an engine or eraser, it cannot typically sustain these thermodynamic functionalities due to eventual equilibration as a result of the finite information capacity of the tape. Nonetheless, cumulative work can be accrued or expended through successive tape scans and we prove that at all time the ratchet obeys the information processing second law (IPSL). Unlike the IPSL for the infinite-tape ratchet which operates only at the stationary state, the IPSL here is applicable also at the transient phase of the ratchet operation. We explore two ratchet designs with the single-state perturbed coin (PC) ratchet being the simplest ratchet without memory, while the double-state modified Boyd's (MB) ratchet is the simplest ratchet with memory. Our analysis shows that the MB ratchet can harness correlation to accumulate more work by having a larger time constant to reach steady state relative to the PC ratchet. Published version 2022-08-11T07:20:07Z 2022-08-11T07:20:07Z 2022 Journal Article He, L., Pradana, A., Cheong, J. W. & Chew, L. Y. (2022). Information processing second law for an information ratchet with finite tape. Physical Review E, 105(5), 054131-. https://dx.doi.org/10.1103/PhysRevE.105.054131 2470-0045 https://hdl.handle.net/10356/161010 10.1103/PhysRevE.105.054131 35706159 2-s2.0-85131308689 5 105 054131 en Physical Review E © 2022 American Physical Society. All rights reserved. This paper was published in Physical Review E and is made available with permission of American Physical Society. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Physics
Discrete Time
Maxwell's Demon
spellingShingle Science::Physics
Discrete Time
Maxwell's Demon
He, Lianjie
Pradana, Andri
Cheong, Jian Wei
Chew, Lock Yue
Information processing second law for an information ratchet with finite tape
description We model a class of discrete-time information ratchet with a finite tape and explore its thermodynamic consequence as a Maxwell demon. We found that, although it supports the operational regime of an engine or eraser, it cannot typically sustain these thermodynamic functionalities due to eventual equilibration as a result of the finite information capacity of the tape. Nonetheless, cumulative work can be accrued or expended through successive tape scans and we prove that at all time the ratchet obeys the information processing second law (IPSL). Unlike the IPSL for the infinite-tape ratchet which operates only at the stationary state, the IPSL here is applicable also at the transient phase of the ratchet operation. We explore two ratchet designs with the single-state perturbed coin (PC) ratchet being the simplest ratchet without memory, while the double-state modified Boyd's (MB) ratchet is the simplest ratchet with memory. Our analysis shows that the MB ratchet can harness correlation to accumulate more work by having a larger time constant to reach steady state relative to the PC ratchet.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
He, Lianjie
Pradana, Andri
Cheong, Jian Wei
Chew, Lock Yue
format Article
author He, Lianjie
Pradana, Andri
Cheong, Jian Wei
Chew, Lock Yue
author_sort He, Lianjie
title Information processing second law for an information ratchet with finite tape
title_short Information processing second law for an information ratchet with finite tape
title_full Information processing second law for an information ratchet with finite tape
title_fullStr Information processing second law for an information ratchet with finite tape
title_full_unstemmed Information processing second law for an information ratchet with finite tape
title_sort information processing second law for an information ratchet with finite tape
publishDate 2022
url https://hdl.handle.net/10356/161010
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