Characterization of pressure-driven water flows in nanofluidic channels by mass flowmetry.

Flow rate Nanochannel Nanofluidics Pressure-driven flow Water

Journal

Analytical sciences : the international journal of the Japan Society for Analytical Chemistry
ISSN: 1348-2246
Titre abrégé: Anal Sci
Pays: Switzerland
ID NLM: 8511078

Informations de publication

Date de publication:
02 2022
Historique:
received: 25 06 2021
accepted: 26 07 2021
aheadofprint: 30 07 2021
entrez: 22 3 2022
pubmed: 23 3 2022
medline: 24 3 2022
Statut: ppublish

Résumé

With developments in analytical devices promoted by nanofluidics, estimation of the flow rate in a nanochannel has become important to calculate volumes of samples and reagents in chemical processing. However, measurement of the flow rate in nanospaces remains challenging. In the present study, a mass flowmetry system was developed, and the flow rate of water by pressure-driven flow in a fused-silica nanochannel was successfully measured in picoliters per second. We revealed that the water flow rate is dependent on the viscosity significantly increased in a square nanochannel with 10

Identifiants

pubmed: 35314973
doi: 10.2116/analsci.21P198
pii: 10.2116/analsci.21P198
doi:

Substances chimiques

Water 059QF0KO0R

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

281-287

Informations de copyright

© 2022. The Author(s), under exclusive licence to The Japan Society for Analytical Chemistry.

Références

X. Ou, P. Chen, B.-F. Liu, Anal. Sci. 35, 609 (2016)
doi: 10.2116/analsci.19R001
L.F. Giraldo, B.L. López, L. Pérez, S. Urrego, L. Sierra, M. Mesa, Macromol. Symp. 258, 129 (2007)
doi: 10.1002/masy.200751215
H. Shimizu, K. Toyoda, K. Mawatari, S. Terabe, T. Kitamori, Anal. Chem. 91, 3009 (2019)
doi: 10.1021/acs.analchem.8b05302
N. Varongchayakul, J. Song, A. Meller, M.W. Grinstaff, Chem. Soc. Rev. 47, 8512 (2018)
doi: 10.1039/C8CS00106E
B.R. Cipriany, P.J. Murphy, J.A. Hagarman, A. Cerf, D. Latulippe, S.L. Levy, J.J. Benítez, C.P. Tan, J. Topolancik, P.D. Soloway, H.G. Craighead, Proc. Natl. Acad. Sci. USA 109, 8477 (2012)
doi: 10.1073/pnas.1117549109
T. Nakao, Y. Kazoe, E. Mori, K. Morikawa, T. Fukasawa, A. Yoshizaki, T. Kitamori, Analyst 144, 7200 (2019)
doi: 10.1039/C9AN01702J
G.K. Lockwood, S.H. Garofalini, J. Phys. Chem. C 118, 29750 (2014)
doi: 10.1021/jp507640y
R. Zhou, C. Sun, B. Bai, J. Chem. Phys. 154, 074709 (2021)
doi: 10.1063/5.0039228
A. Hibara, T. Saito, H.B. Kim, M. Tokeshi, T. Ooi, M. Nakao, T. Kitamori, Anal. Chem. 74, 6170 (2002)
doi: 10.1021/ac025808b
L. Li, Y. Kazoe, K. Mawatari, Y. Sugii, T. Kitamori, J. Phys. Chem. Lett. 3, 2447 (2012)
doi: 10.1021/jz3009198
K. Morikawa, Y. Kazoe, K. Mawatari, T. Tsukahara, T. Kitamori, Anal. Chem. 87, 1475 (2015)
doi: 10.1021/ac504141j
H. Chinen, K. Mawatari, Y. Pihosh, K. Morikawa, Y. Kazoe, T. Kitamori, Angew. Chem. Int. Ed. 51, 3573 (2012)
doi: 10.1002/anie.201104883
T. Tsukahara, A. Hibara, Y. Ikeda, T. Kitamori, Angew. Chem. Int. Ed. 46, 1180 (2007)
doi: 10.1002/anie.200604502
N.R. Tas, J. Haneveld, H.V. Jansen, M. Elwenspoek, A. van den Berg, Appl. Phys. Lett. 85, 3274 (2004)
doi: 10.1063/1.1804602
S. Liu, Q. Pu, L. Gao, C. Korzeniewski, C. Matzke, Nano Lett. 5, 1389 (2005)
doi: 10.1021/nl050712t
K. Morikawa, K. Mawatari, M. Kato, T. Tsukahara, T. Kitamori, Lab. Chip 10, 871 (2010)
doi: 10.1039/b916776e
M. Whitby, L. Cagnon, M. Thanou, N. Quirke, Nano Lett. 8, 2632 (2008)
doi: 10.1021/nl080705f
R. Ishibashi, K. Mawatari, K. Takahashi, T. Kitamori, J. Chromatogr. A 1228, 51 (2012)
doi: 10.1016/j.chroma.2011.05.095
J.P. Brody, P. Yager, R.E. Goldstein, R.H. Austin, Biophys. J. 71, 3430 (1996)
doi: 10.1016/S0006-3495(96)79538-3
J. Kestin, M. Sokolov, W.A. Wakeham, J. Phys. Chem. Ref. Data 7, 941 (1978)
doi: 10.1063/1.555581
M. Wang, C.-C. Chang, R.-Y. Yang, J. Chem. Phys. 132, 024701 (2010)
doi: 10.1063/1.3290814
S.I. Kim, S.J. Kim, Microfluid. Nanofluid. 22, 12 (2018)
doi: 10.1007/s10404-017-2029-x
Y. Kazoe, K. Mawatari, Y. Sugii, T. Kitamori, Anal. Chem. 83, 8152 (2011)
doi: 10.1021/ac201654r
R.F. Probstein, Physicochemical Hydrodynamics (Wiley, New York, 1994)
doi: 10.1002/0471725137
Q. Xie, F. Xin, H.G. Park, C. Duan, Nanoscale 8, 19527 (2016)
doi: 10.1039/C6NR06977K
Q. Xie, M.A. Alibakhshi, S. Jiao, Z. Xu, M. Hempel, J. Kong, H.G. Park, C. Duan, Nat. Nanotech. 13, 238 (2018)
doi: 10.1038/s41565-017-0031-9
Y. Kazoe, K. Mawatari, L. Li, H. Emon, N. Miyawaki, H. Chinen, K. Morikawa, A. Yoshizaki, P.S. Dittrich, T. Kitamori, J. Phys. Chem. Lett. 11, 5776 (2020)
doi: 10.1021/acs.jpclett.0c01084

Auteurs

Yutaka Kazoe (Y)

Department of Applied Chemistry, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan. kazoe@sd.keio.ac.jp.

Sho Kubori (S)

Department of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan.

Kyojiro Morikawa (K)

Department of Applied Chemistry, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan.

Kazuma Mawatari (K)

Department of Applied Chemistry, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan.
Department of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan.

Takehiko Kitamori (T)

Department of Applied Chemistry, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan. kitamori@icl.t.u-tokyo.ac.jp.
Department of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1 Hongo, Bunkyo, Tokyo, 113-8656, Japan. kitamori@icl.t.u-tokyo.ac.jp.

Articles similaires

Animals Dietary Fiber Dextran Sulfate Mice Disease Models, Animal
Silicon Dioxide Water Hot Temperature Compressive Strength X-Ray Diffraction
1.00
Oryza Agricultural Irrigation Potassium Sodium Soil
Triticum Plant Transpiration Vapor Pressure Phenotype Genotype

Classifications MeSH