References
141
40. N. Gleichmann, D. Malsch, P. Horbert, T. Henkel, Toward microfluidic design automation:
a new system simulation toolkit for the in silico evaluation of droplet-based lab-on-a-chip
systems. Microfluid. Nanofluid. 18(5–6), 1095–1105 (2015)
41. G.H. Golub, C.F. Van Loan, Matrix Computations, vol. 3 (JHU Press, Baltimore, 2012)
42. C.J. Greenshields, Openfoam User Guide, version, 3(1) (OpenFOAM Foundation Ltd, 2015)
43. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, A discrete model for Networked Labson-Chips: linking the physical world to design automation, in Design Automation Conference
(2017), pp. 50:1–50:6
44. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, Verification of Networked Labs-on-Chip
architectures, in Design, Automation and Test in Europe (2017), pp. 1679–1684
45. A. Grimmer, Q. Wang, H. Yao, T.-Y. Ho, R. Wille, Close-to-optimal placement and routing
for continuous-flow microfluidic biochips, in Asia and South Pacific Design Automation
Conference (2017), pp. 530–535
46. A. Grimmer, X. Chen, M. Hamidovi´ c, W. Haselmayr, C.L. Ren, R. Wille, Simulation before
fabrication: a case study on the utilization of simulators for the design of droplet microfluidic
networks. RSC Adv. 8, 34733–34742 (2018)
47. A. Grimmer, P. Frank, P. Ebner, S. Häfner, A. Richter, R. Wille, Meander designer:
automatically generating meander channel designs. Micromach. J. Micro/Nano Sci. Dev.
Appl. 9(12), 625 (2018)
48. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, Design of application-specific architectures for Networked Labs-on-Chips. Trans. Comput. Aided Des. Integr. Circuits Syst. 37(1),
193–202 (2018)
49. A. Grimmer, W. Haselmayr, R. Wille, Automated dimensioning of Networked Labs-on-Chip.
Trans. Comput. Aided Des. Integr. Circuits Syst. (2018). https://doi.org/10.1109/TCAD.2018.
2834402
50. A. Grimmer, W. Haselmayr, R. Wille, Automatic droplet sequence generation for microfluidic
networks with passive droplet routing. Trans. Comput. Aided Des. Integr. Circuits Syst.
(2018). https://doi.org/10.1109/TCAD.2018.2887055
51. A. Grimmer, B. Klepic, T.-Y. Ho, R. Wille, Sound valve-control for programmable microfluidic devices, in Asia and South Pacific Design Automation Conference (2018)
52. A. Grimmer, M. Hamidovi´ c, W. Haselmayr, R. Wille, Advanced simulation of droplet
microfluidics. J. Emerg. Technol. Comput. Syst. 15(3), 26:1–26:16 (2019). https://doi.org/
10.1145/3313867
53. D.T. Grissom, P. Brisk, Fast online synthesis of digital microfluidic biochips. Trans. Comput.
Aided Des. Integr. Circuits Syst. 33(3), 356–369 (2014)
54. D. Grissom, K. O’Neal, B. Preciado, H. Patel, R. Doherty, N. Liao, P. Brisk, A digital
microfluidic biochip synthesis framework, in International Conference on Very Large Scale
Integration of System-on-Chip (2012), pp. 177–182
55. H. Gu, M.H. Duits, F. Mugele, Droplets formation and merging in two-phase flow microfluidics. Int. J. Mol. Sci. 12(4), 2572–2597 (2011)
56. S. Haeberle, R. Zengerle, Microfluidic platforms for Lab-on-a-Chip applications. Lab Chip 7,
1094–1110 (2007)
57. M. Hamidovi´ c, W. Haselmayr, A. Grimmer, R. Wille, Towards droplet on demand for
microfluidic networks, in Workshop on Molecular Communications (2018), pp. 1–2
58. M. Hamidovi´ c, W. Haselmayr, A. Grimmer, R. Wille, A. Springer, Comparison of switching
principles in microfluidic bus networks, in International Conference on Nanoscale Computing
and Communication (2018), p. 23
59. P.E. Hart, N.J. Nilsson, B. Raphael, A formal basis for the heuristic determination of minimum
cost paths. Trans. Syst. Sci. Cybern. 4(2), 100–107 (1968)
60. W. Haselmayr, A. Biral, A. Grimmer, A. Zanella, A. Springer, R. Wille, Addressing multiple
nodes in Networked Labs-on-Chips without payload re-injection, in International Conference
on Communications (2017)
61. L. Hecht, J. Philipp, K. Mattern, A. Dietzel, C.-P. Klages, Controlling wettability in paper
by atmospheric-pressure microplasma processes to be used in μpad fabrication. Microfluid.
Nanofluid. 20(1), 25 (2016)
141
40. N. Gleichmann, D. Malsch, P. Horbert, T. Henkel, Toward microfluidic design automation:
a new system simulation toolkit for the in silico evaluation of droplet-based lab-on-a-chip
systems. Microfluid. Nanofluid. 18(5–6), 1095–1105 (2015)
41. G.H. Golub, C.F. Van Loan, Matrix Computations, vol. 3 (JHU Press, Baltimore, 2012)
42. C.J. Greenshields, Openfoam User Guide, version, 3(1) (OpenFOAM Foundation Ltd, 2015)
43. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, A discrete model for Networked Labson-Chips: linking the physical world to design automation, in Design Automation Conference
(2017), pp. 50:1–50:6
44. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, Verification of Networked Labs-on-Chip
architectures, in Design, Automation and Test in Europe (2017), pp. 1679–1684
45. A. Grimmer, Q. Wang, H. Yao, T.-Y. Ho, R. Wille, Close-to-optimal placement and routing
for continuous-flow microfluidic biochips, in Asia and South Pacific Design Automation
Conference (2017), pp. 530–535
46. A. Grimmer, X. Chen, M. Hamidovi´ c, W. Haselmayr, C.L. Ren, R. Wille, Simulation before
fabrication: a case study on the utilization of simulators for the design of droplet microfluidic
networks. RSC Adv. 8, 34733–34742 (2018)
47. A. Grimmer, P. Frank, P. Ebner, S. Häfner, A. Richter, R. Wille, Meander designer:
automatically generating meander channel designs. Micromach. J. Micro/Nano Sci. Dev.
Appl. 9(12), 625 (2018)
48. A. Grimmer, W. Haselmayr, A. Springer, R. Wille, Design of application-specific architectures for Networked Labs-on-Chips. Trans. Comput. Aided Des. Integr. Circuits Syst. 37(1),
193–202 (2018)
49. A. Grimmer, W. Haselmayr, R. Wille, Automated dimensioning of Networked Labs-on-Chip.
Trans. Comput. Aided Des. Integr. Circuits Syst. (2018). https://doi.org/10.1109/TCAD.2018.
2834402
50. A. Grimmer, W. Haselmayr, R. Wille, Automatic droplet sequence generation for microfluidic
networks with passive droplet routing. Trans. Comput. Aided Des. Integr. Circuits Syst.
(2018). https://doi.org/10.1109/TCAD.2018.2887055
51. A. Grimmer, B. Klepic, T.-Y. Ho, R. Wille, Sound valve-control for programmable microfluidic devices, in Asia and South Pacific Design Automation Conference (2018)
52. A. Grimmer, M. Hamidovi´ c, W. Haselmayr, R. Wille, Advanced simulation of droplet
microfluidics. J. Emerg. Technol. Comput. Syst. 15(3), 26:1–26:16 (2019). https://doi.org/
10.1145/3313867
53. D.T. Grissom, P. Brisk, Fast online synthesis of digital microfluidic biochips. Trans. Comput.
Aided Des. Integr. Circuits Syst. 33(3), 356–369 (2014)
54. D. Grissom, K. O’Neal, B. Preciado, H. Patel, R. Doherty, N. Liao, P. Brisk, A digital
microfluidic biochip synthesis framework, in International Conference on Very Large Scale
Integration of System-on-Chip (2012), pp. 177–182
55. H. Gu, M.H. Duits, F. Mugele, Droplets formation and merging in two-phase flow microfluidics. Int. J. Mol. Sci. 12(4), 2572–2597 (2011)
56. S. Haeberle, R. Zengerle, Microfluidic platforms for Lab-on-a-Chip applications. Lab Chip 7,
1094–1110 (2007)
57. M. Hamidovi´ c, W. Haselmayr, A. Grimmer, R. Wille, Towards droplet on demand for
microfluidic networks, in Workshop on Molecular Communications (2018), pp. 1–2
58. M. Hamidovi´ c, W. Haselmayr, A. Grimmer, R. Wille, A. Springer, Comparison of switching
principles in microfluidic bus networks, in International Conference on Nanoscale Computing
and Communication (2018), p. 23
59. P.E. Hart, N.J. Nilsson, B. Raphael, A formal basis for the heuristic determination of minimum
cost paths. Trans. Syst. Sci. Cybern. 4(2), 100–107 (1968)
60. W. Haselmayr, A. Biral, A. Grimmer, A. Zanella, A. Springer, R. Wille, Addressing multiple
nodes in Networked Labs-on-Chips without payload re-injection, in International Conference
on Communications (2017)
61. L. Hecht, J. Philipp, K. Mattern, A. Dietzel, C.-P. Klages, Controlling wettability in paper
by atmospheric-pressure microplasma processes to be used in μpad fabrication. Microfluid.
Nanofluid. 20(1), 25 (2016)
