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Exploring the Bottom-Up Growth of Anisotropic Gold Nanoparticles from Substrate-Bound Seeds in Microfluidic Reactors

Authors :
National Institute of Biomedical Imaging and Bioengineering (US)
National Institutes of Health (US)
Ministerio de Ciencia, Innovación y Universidades (España)
Vinnacombe-Willson, Gail A. [0000-0002-6897-6574]
Lee, Joy K. [0000-0001-9013-2397]
Chiang, Naihao [0000-0003-3782-6546]
Scarabelli, Leonardo [0000-0002-6830-5893]
Yue, Shouzheng [0000-0002-8485-5959]
Foley, Ruth [0000-0002-4271-6045]
Frost, Isaura [0000-0003-2851-1008]
Weiss, Paul S. [0000-0001-5527-6248]
Jonas, Steven J. [0000-0002-8111-0249]
Vinnacombe-Willson, Gail A.
Lee, Joy K.
Chiang, Naihao
Scarabelli, Leonardo
Yue, Shouzheng
Foley, Ruth
Frost, Isaura
Weiss, Paul S.
Jonas, Steven J.
National Institute of Biomedical Imaging and Bioengineering (US)
National Institutes of Health (US)
Ministerio de Ciencia, Innovación y Universidades (España)
Vinnacombe-Willson, Gail A. [0000-0002-6897-6574]
Lee, Joy K. [0000-0001-9013-2397]
Chiang, Naihao [0000-0003-3782-6546]
Scarabelli, Leonardo [0000-0002-6830-5893]
Yue, Shouzheng [0000-0002-8485-5959]
Foley, Ruth [0000-0002-4271-6045]
Frost, Isaura [0000-0003-2851-1008]
Weiss, Paul S. [0000-0001-5527-6248]
Jonas, Steven J. [0000-0002-8111-0249]
Vinnacombe-Willson, Gail A.
Lee, Joy K.
Chiang, Naihao
Scarabelli, Leonardo
Yue, Shouzheng
Foley, Ruth
Frost, Isaura
Weiss, Paul S.
Jonas, Steven J.
Publication Year :
2023

Abstract

We developed an unconventional seed-mediated in situ synthetic method, whereby gold nanostars are formed directly on the internal walls of microfluidic reactors. The dense plasmonic substrate coatings were grown in microfluidic channels with different geometries to elucidate the impacts of flow rate and profile on reagent consumption, product morphology, and density. Nanostar growth was found to occur in the flow-limited regime and our results highlight the possibility of creating shape gradients or incorporating multiple morphologies in the same microreactor, which is challenging to achieve with traditional self-assembly. The plasmonic-microfluidic platforms developed herein have implications for a broad range of applications, including cell culture/sorting, catalysis, sensing, and drug/gene delivery.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1380455691
Document Type :
Electronic Resource