TY - JOUR
T1 - Wetting hysteresis induces effective unidirectional water transport through a fluctuating nanochannel
AU - Arai, Noriyoshi
AU - Yamamoto, Eiji
AU - Koishi, Takahiro
AU - Hirano, Yoshinori
AU - Yasuoka, Kenji
AU - Ebisuzaki, Toshikazu
N1 - Publisher Copyright:
© 2023 The Royal Society of Chemistry.
PY - 2023/2/28
Y1 - 2023/2/28
N2 - We propose a water pump that actively transports water molecules through nanochannels. Spatially asymmetric noise fluctuations imposed on the channel radius cause unidirectional water flow without osmotic pressure, which can be attributed to hysteresis in the cyclic transition between the wetting/drying states. We show that the water transport depends on fluctuations, such as white, Brownian, and pink noises. Because of the high-frequency components in white noise, fast switching of open and closed states inhibits channel wetting. Conversely, pink and Brownian noises generate high-pass filtered net flow. Brownian fluctuation leads to a faster water transport rate, whereas pink noise has a higher capability to overcome pressure differences in the opposite direction. A trade-off relationship exists between the resonant frequency of the fluctuation and the flow amplification. The proposed pump can be considered as an analogy for the reversed Carnot cycle, which is the upper limit of the energy conversion efficiency.
AB - We propose a water pump that actively transports water molecules through nanochannels. Spatially asymmetric noise fluctuations imposed on the channel radius cause unidirectional water flow without osmotic pressure, which can be attributed to hysteresis in the cyclic transition between the wetting/drying states. We show that the water transport depends on fluctuations, such as white, Brownian, and pink noises. Because of the high-frequency components in white noise, fast switching of open and closed states inhibits channel wetting. Conversely, pink and Brownian noises generate high-pass filtered net flow. Brownian fluctuation leads to a faster water transport rate, whereas pink noise has a higher capability to overcome pressure differences in the opposite direction. A trade-off relationship exists between the resonant frequency of the fluctuation and the flow amplification. The proposed pump can be considered as an analogy for the reversed Carnot cycle, which is the upper limit of the energy conversion efficiency.
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U2 - 10.1039/d2nh00563h
DO - 10.1039/d2nh00563h
M3 - Article
AN - SCOPUS:85150212527
SN - 2055-6756
VL - 8
SP - 652
EP - 661
JO - Nanoscale Horizons
JF - Nanoscale Horizons
IS - 5
ER -