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How to speed up ion transport in nanopores
by
Mehdi, B. Layla
, Presser, Volker
, Holm, Christian
, Breitsprecher, Konrad
, Janssen, Mathijs
, Kondrat, Svyatoslav
, Srimuk, Pattarachai
in
639/4077
/ 639/4077/4079/4105
/ 639/638/161
/ 639/638/563/981
/ Charging
/ Deionization
/ Discharge
/ Electric potential
/ Electrochemistry
/ Electrolytes
/ Energy storage
/ Humanities and Social Sciences
/ Ion transport
/ Molecular dynamics
/ multidisciplinary
/ Novolacs
/ Pores
/ Porosity
/ Science
/ Science (multidisciplinary)
/ Simulation
/ Voltage
2020
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How to speed up ion transport in nanopores
by
Mehdi, B. Layla
, Presser, Volker
, Holm, Christian
, Breitsprecher, Konrad
, Janssen, Mathijs
, Kondrat, Svyatoslav
, Srimuk, Pattarachai
in
639/4077
/ 639/4077/4079/4105
/ 639/638/161
/ 639/638/563/981
/ Charging
/ Deionization
/ Discharge
/ Electric potential
/ Electrochemistry
/ Electrolytes
/ Energy storage
/ Humanities and Social Sciences
/ Ion transport
/ Molecular dynamics
/ multidisciplinary
/ Novolacs
/ Pores
/ Porosity
/ Science
/ Science (multidisciplinary)
/ Simulation
/ Voltage
2020
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
How to speed up ion transport in nanopores
by
Mehdi, B. Layla
, Presser, Volker
, Holm, Christian
, Breitsprecher, Konrad
, Janssen, Mathijs
, Kondrat, Svyatoslav
, Srimuk, Pattarachai
in
639/4077
/ 639/4077/4079/4105
/ 639/638/161
/ 639/638/563/981
/ Charging
/ Deionization
/ Discharge
/ Electric potential
/ Electrochemistry
/ Electrolytes
/ Energy storage
/ Humanities and Social Sciences
/ Ion transport
/ Molecular dynamics
/ multidisciplinary
/ Novolacs
/ Pores
/ Porosity
/ Science
/ Science (multidisciplinary)
/ Simulation
/ Voltage
2020
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Journal Article
How to speed up ion transport in nanopores
2020
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Overview
Electrolyte-filled subnanometre pores exhibit exciting physics and play an increasingly important role in science and technology. In supercapacitors, for instance, ultranarrow pores provide excellent capacitive characteristics. However, ions experience difficulties in entering and leaving such pores, which slows down charging and discharging processes. In an earlier work we showed for a simple model that a slow voltage sweep charges ultranarrow pores quicker than an abrupt voltage step. A slowly applied voltage avoids ionic clogging and co-ion trapping—a problem known to occur when the applied potential is varied too quickly—causing sluggish dynamics. Herein, we verify this finding experimentally. Guided by theoretical considerations, we also develop a
non-linear
voltage sweep and demonstrate, with molecular dynamics simulations, that it can charge a nanopore even faster than the corresponding optimized linear sweep. For discharging we find, with simulations and in experiments, that if we reverse the applied potential and then sweep it to zero, the pores lose their charge much quicker than they do for a short-circuited discharge over their internal resistance. Our findings open up opportunities to greatly accelerate charging and discharging of subnanometre pores without compromising the capacitive characteristics, improving their importance for energy storage, capacitive deionization, and electrochemical heat harvesting.
Narrowing pores filled with an electrolyte usually slows down their charge-discharge dynamics. Here the authors demonstrate through molecular dynamics simulations and experiments with novolac-derived carbon electrodes how non-linear voltage sweeps can accelerate charging and discharging of subnanometer pores.
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