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Microbubbles as Heterogeneous Nucleation Sites for Crystallization in Continuous Microfluidic Devices
Author(s) -
Naghmeh Fatemi,
Zhengya Dong,
Tom Van Gerven,
Simon Kuhn
Publication year - 2018
Publication title -
langmuir
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.042
H-Index - 333
eISSN - 1520-5827
pISSN - 0743-7463
DOI - 10.1021/acs.langmuir.8b03183
Subject(s) - microbubbles , nucleation , microfluidics , materials science , crystallization , metastability , microreactor , yield (engineering) , phase (matter) , chemical engineering , chemical physics , volumetric flow rate , crystal (programming language) , nanotechnology , chemistry , mechanics , ultrasound , composite material , computer science , engineering , acoustics , catalysis , physics , programming language , organic chemistry , biochemistry
Injecting a stream of microbubbles and thereby introducing a heterogeneous interface is proposed for enhancing nucleation and controlling particle formation in continuous microfluidic devices. Different gas and liquid flow rates were investigated to establish the two-phase flow regime map and to identify the optimum characteristics for microbubble flow. Subsequently, the effect of microbubbles was studied for the cooling crystallization of paracetamol. An enhanced nucleation rate compared to that in the operation without bubbles was observed and the presence of microbubbles results in the formation of more crystals, which indicates that nucleation is faster than that in operation without bubbles, i.e., the metastable zone width is reduced. Determining the crystal yield confirmed that a larger mass of crystals is obtained in a two-phase flow with microbubbles. Furthermore, results showed that the presence of microbubbles allows crystallizing continuously without clogging of the microreactor.

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