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Proceedings ArticleDOI

Control-layer optimization for flow-based mVLSI microfluidic biochips

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TLDR
This paper presents the first practical problem formulation for automated control-layer design in flow-based microfluidic VLSI (mVLSI) biochips and proposes a systematic approach for solving this problem, which leads to fewer control pins, better timing behavior, and shorter channel length in the control layer.
Abstract
Recent advantages in flow-based microfluidic biochips have enabled the emergence of lab-on-a-chip devices for bimolecular recognition and point-of-care disease diagnostics. However, the adoption of flow-based biochips is hampered today by the lack of computer-aided design tools. Manual design procedures not only delay product development but they also inhibit the exploitation of the design complexity that is possible with current fabrication techniques. In this paper, we present the first practical problem formulation for automated control-layer design in flow-based microfluidic VLSI (mVLSI) biochips and propose a systematic approach for solving this problem. Our goal is to find an efficient routing solution for control-layer design with a minimum number of control pins. The pressure-propagation delay, an intrinsic physical phenomenon in mVLSI biochips, is minimized in order to reduce the response time for valves, decrease the pattern set-up time, and synchronize valve actuation. Two fabricated flow-based devices and five synthetic benchmarks are used to evaluate the proposed optimization method. Compared with manual control-layer design and a baseline approach, the proposed approach leads to fewer control pins, better timing behavior, and shorter channel length in the control layer.

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Citations
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Proceedings ArticleDOI

Close-to-optimal placement and routing for continuous-flow microfluidic biochips

TL;DR: A methodology is proposed which aims for determining close-to-optimal physical designs for continuous-flow microfluidic biochips and is capable of determining optimal results for small experiments to be realized.
Proceedings ArticleDOI

PACOR: practical control-layer routing flow with length-matching constraint for flow-based microfluidic biochips

TL;DR: A practical control-layer routing flow (PACOR) considering the critical length-matching constraint is presented with promising matching results and 100% routing completion rate.
Journal ArticleDOI

Integrated Flow-Control Codesign Methodology for Flow-Based Microfluidic Biochips

TL;DR: The first flow-control codesign methodology is presented, which seamlessly integrates both flow-layer and control-layer design stages, and achieves notable improvements over the regular design framework with separate design stages.
Journal ArticleDOI

Physical Co-Design of Flow and Control Layers for Flow-Based Microfluidic Biochips

TL;DR: A novel integrated physical co-design methodology, which seamlessly integrates the flow-layer and control-layer design stages, is presented, which allows for an iterative placement refinement based on routing feedbacks.
Proceedings ArticleDOI

Hamming-distance-based valve-switching optimization for control-layer multiplexing in flow-based microfluidic biochips

TL;DR: Experimental results show that the first Hamming-distance-based switching order optimization method for microvalves to enhance the reliability of the multiplexer can be significantly reduced, and the solution is very close to the theoretical optimal lower bound.
References
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Journal ArticleDOI

The origins and the future of microfluidics

TL;DR: The manipulation of fluids in channels with dimensions of tens of micrometres — microfluidics — has emerged as a distinct new field that has the potential to influence subject areas from chemical synthesis and biological analysis to optics and information technology.
Journal ArticleDOI

Microfluidics: Fluid physics at the nanoliter scale

TL;DR: A review of the physics of small volumes (nanoliters) of fluids is presented, as parametrized by a series of dimensionless numbers expressing the relative importance of various physical phenomena as mentioned in this paper.
PatentDOI

Microfluidic large scale integration

TL;DR: The fluidic multiplexor as discussed by the authors is a combinatorial array of binary valve patterns that exponentially increases the processing power of a network by allowing complex fluid manipulations with a minimal number of inputs.
Journal ArticleDOI

Microfluidic lab-on-a-chip platforms: requirements, characteristics and applications

TL;DR: This critical review summarizes developments in microfluidic platforms that enable the miniaturization, integration, automation and parallelization of (bio-)chemical assays and attempts to provide a selection scheme based on key requirements of different applications and market segments.
Journal ArticleDOI

New methods to color the vertices of a graph

TL;DR: An exact method is given which performs better than the Randall-Brown algorithm and is able to color larger graphs and the new heuristic methods, the classical methods, and the exact method are compared.
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