144
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References
105. D. Sessoms, M. Belloul, W. Engl, M. Roche, L. Courbin, P. Panizza, Droplet motion in
microfluidic networks: hydrodynamic interactions and pressure-drop measurements. Phys.
Rev. E 80(1), 016317 (2009)
106. D. Sessoms, A. Amon, L. Courbin, P. Panizza, Complex dynamics of droplet traffic in a
bifurcating microfluidic channel: periodicity, multistability, and selection rules. Phys. Rev.
Lett. 105(15), 154501 (2010)
107. L. Shang, Y. Cheng, Y. Zhao, Emerging droplet microfluidics. Chem. Rev. 117(12), 7964–
8040 (2017)
108. M.G. Simon, R. Lin, J.S. Fisher, A.P. Lee, A Laplace pressure based microfluidic trap for
passive droplet trapping and controlled release. Biomicrofluidics 6(1), 014110 (2012)
109. B.J. Smith, D.P. Gaver, III, Agent-based simulations of complex droplet pattern formation in
a two-branch microfluidic network. Lab Chip 10(3), 303–312 (2010)
110. K. Song, G. Hu, X. Hu, R. Zhong, X. Wang, B. Lin, Encoding and controlling of two droplet
trains in a microfluidic network with the loop-like structure. Microfluid. Nanofluid. 19(6),
1363 (2015)
111. F. Su, K. Chakrabarty, High-level synthesis of digital microfluidic biochips. J. Emerg.
Technol. Comput. Syst. 3(4), 1 (2008)
112. F. Su, S. Ozev, K. Chakrabarty, Testing of droplet-based microelectrofluidic systems, in
International Test Conference, vol. 46 (2003), pp. 1192–1200
113. F. Su, W. Hwang, K. Chakrabarty, Droplet routing in the synthesis of digital microfluidic
biochips, in Design, Automation and Test in Europe, vol. 1 (2006), pp. 1–6
114. Y.-C. Tan, J.S. Fisher, A.I. Lee, V. Cristini, A.P. Lee, Design of microfluidic channel
geometries for the control of droplet volume, chemical concentration, and sorting. Lab Chip
4(4), 292–298 (2004)
115. Y.-C. Tan, Y.L. Ho, A.P. Lee, Droplet coalescence by geometrically mediated flow in
microfluidic channels. Microfluid. Nanofluid. 3(4), 495–499 (2007)
116. Y.-C. Tan, Y.L. Ho, A. Lee, Microfluidic sorting of droplets by size. Microfluid. Nanofluid.
4(4), 343–348 (2008)
117. S.-Y. Teh, R. Lin, L.-H. Hung, A.P. Lee, Droplet microfluidics. Lab Chip 8, 198–220 (2008)
118. A.J. Teo, K.-H.H. Li, N.-T. Nguyen, W. Guo, N. Heere, H.-D. Xi, C.-W. Tsao, W. Li, S.H.
Tan, Negative pressure induced droplet generation in a microfluidic flow-focusing device.
Anal. Chem. 89(8), 4387–4391 (2017)
119. R. Thakur, Y. Zhang, A. Amin, S. Wereley, Programmable microfluidic platform for
spatiotemporal control over nanoliter droplets. Microfluid. Nanofluid. 18(5–6), 1425–1431
(2015)
120. T. Thorsen, R.W. Roberts, F.H. Arnold, S.R. Quake, Dynamic pattern formation in a vesiclegenerating microfluidic device. Phys. Rev. Lett. 86(18), 4163 (2001)
121. K.-H. Tseng, S.-C. You, J.-Y. Liou, T.-Y. Ho, A top-down synthesis methodology for
flow-based microfluidic biochips considering valve-switching minimization, in International
Symposium on Physical Design (2013), pp. 123–129
122. S.A. Vanapalli, A.G. Banpurkar, D. van den Ende, M.H. Duits, F. Mugele, Hydrodynamic
resistance of single confined moving drops in rectangular microchannels. Lab Chip 9(7), 982–
990 (2009)
123. A. Waldbaur, B. Carneiro, P. Hettich, E. Wilhelm, B.E. Rapp, Computer-aided microfluidics
(CAMF): from digital 3d-CAD models to physical structures within a day. Microfluid.
Nanofluid. 15(5), 625–635 (2013)
124. W. Wang, C. Yang, C.M. Li, On-demand microfluidic droplet trapping and fusion for on-chip
static droplet assays. Lab Chip 9(11), 1504–1506 (2009)
125. J. Wang, V.G. Rodgers, P. Brisk, W.H. Grover, Instantaneous simulation of fluids and particles
in complex microfluidic devices. PLoS One 12(12), 1–14 (2017)
126. G.M. Whitesides, The origins and the future of microfluidics. Nature 442(7101), 368–373
(2006)
127. R. Wille, O. Keszocze, R. Drechsler, T. Boehnisch, A. Kroker, Scalable one-pass synthesis
for digital microfluidic biochips. J. Des. Test 32(6), 41–50 (2015)
