Automated high-throughput viscosity and density sensor using nanomechanical resonators
32
TL;DR: In this article, a PDMS-based microfluidic measurement cell containing the resonant microcantilever sensors driven by photothermal excitation was used to calculate the viscosity and mass density of the sample liquids.
read more
Abstract: Most methods used to determine the viscosity and mass density of liquids have two major drawbacks: relatively high sample consumption (∼milliliters) and long measurement time (∼minutes). Resonant nanomechanical cantilevers promise to overcome these limitations. Although sample consumption has already been significantly reduced, the time resolution was rarely addressed to date. We present a method to decrease the time and user interaction required for such measurements. It features (i) a droplet-generating automatic sampler using fluorinated oil to separate microliter sample plugs, (ii) a PDMS-based microfluidic measurement cell containing the resonant microcantilever sensors driven by photothermal excitation, (iii) dual phase-locked loop frequency tracking of a higher-mode resonance to achieve millisecond time resolution, and (iv) signal processing to extract the resonance parameters, namely the eigenfrequency and quality factor. The principle was validated by screening series of 3 μL droplets of glycerol solutions separated by fluorinated oil at a rate of ∼6 s per sample. An analytical hydrodynamic model (Van Eysden and Sader, 2007 [6] ) and a reduced order model (Heinisch et al., 2014 [16] ) were employed to calculate the viscosity and mass density of the sample liquids in a viscosity range of 1–10.5 mPa s and a density range of 998–1154 kg m −3 .
read more
Chat with Paper
AI Agents for this Paper
Find similar papers on Google Scholar, PubMed and Arxiv
Write a critical review of this paper
Analyze citations of this paper to find unaddressed research gaps
Citations
An accurate and versatile density measurement device: Magnetic levitation
TL;DR: In this article, a magnetic levitation device for measuring density with high accuracy and versatility, and of low cost, is presented, where samples that are immersed in paramagnetic medium can be levitated at some equilibrium positions between two identical NdFeB magnets with like-poles facing each other.
46
Optical micro/nanofibre embedded soft film enables multifunctional flow sensing in microfluidic chips
TL;DR: A smart microfluidic chip (SMC) with multiple functionality to sense the status or incidents occurring on chip, enabled by a soft, flexible and attachable film embedded with optical micro/nanofibres (MNFs), which is highly compatible with microfluidity chips fabricated by lithography.
32
Piezoelectric-excited membrane for liquids viscosity and mass density measurement
TL;DR: In this article, a piezoelectric-excited membrane device was proposed for the measurement of liquids viscosity and density, which is based on the membrane's resonant frequency and Q factor responses to the damping effects of a surrounding liquid.
30
Current state of magnetic levitation and its applications in polymers: A review
TL;DR: Magnetic levitation (MagLev) is one of the novel methods that attracts attention from researchers all over the world as mentioned in this paper, and it is an accurate and sensitive density testing method that can have applications in the fields of manipulation of particles and cells, chemistry, materials science, and biochemistry.
27
References
Frequency modulation detection using high‐Q cantilevers for enhanced force microscope sensitivity
TL;DR: In this article, a frequency modulation (FM) technique has been demonstrated which enhances the sensitivity of attractive mode force microscopy by an order of magnitude or more, which is made possible by operating in a moderate vacuum (<10−3 Torr).
Frequency modulation detection using highdkantilevers for enhanced force microscope sensitivity
T. R. Albrecht,D. Horne,D. Rugar +2 more
- 01 Jan 2001
TL;DR: In this paper, a frequency modulation (FM) technique has been demonstrated which ennances the sensitivity of attractive mode force microscopy by an order of magnitude or more, which is made possible by operating in a moderate vacuum ( < 10 ’ Torr).
Frequency response of cantilever beams immersed in viscous fluids with applications to the atomic force microscope
TL;DR: In this article, a detailed theoretical analysis of the frequency response of a cantilever beam that is immersed in a viscous fluid and excited by an arbitrary driving force is presented.
1.4K
Frequency response of cantilever beams immersed in viscous fluids with applications to the atomic force microscope: Arbitrary mode order
TL;DR: In this paper, a theoretical model for the frequency response of a rectangular cantilever beam immersed in a viscous fluid that enables the flexural and torsional modes of arbitrary order to be calculated is presented.
263
Online measurement of mass density and viscosity of pL fluid samples with suspended microchannel resonator
M. F. Khan,Silvan Schmid,Peter Emil Larsen,Zachary James Davis,Wei Yan,Erling Halfdan Stenby,Anja Boisen +6 more
TL;DR: In this article, a suspended microchannel resonator (SMR) is used to measure the density and viscosity of viscous solutions with an accuracy of 0.025mPa.
97