Literature DB >> 32844655

Deterministic Lateral Displacement: Challenges and Perspectives.

Axel Hochstetter1, Rohan Vernekar2, Robert H Austin3, Holger Becker4, Jason P Beech5, Dmitry A Fedosov6, Gerhard Gompper6, Sung-Cheol Kim7, Joshua T Smith7, Gustavo Stolovitzky7, Jonas O Tegenfeldt5, Benjamin H Wunsch7, Kerwin K Zeming8, Timm Krüger2, David W Inglis9.   

Abstract

The advent of microfluidics in the 1990s promised a revolution in multiple industries from healthcare to chemical processing. Deterministic lateral displacement (DLD) is a continuous-flow microfluidic particle separation method discovered in 2004 that has been applied successfully and widely to the separation of blood cells, yeast, spores, bacteria, viruses, DNA, droplets, and more. Deterministic lateral displacement is conceptually simple and can deliver consistent performance over a wide range of flow rates and particle concentrations. Despite wide use and in-depth study, DLD has not yet been fully elucidated or optimized, with different approaches to the same problem yielding varying results. We endeavor here to provide up-to-date expert opinion on the state-of-art and current fundamental, practical, and commercial challenges with DLD as well as describe experimental and modeling opportunities. Because these challenges and opportunities arise from constraints on hydrodynamics, fabrication, and operation at the micro- and nanoscale, we expect this Perspective to serve as a guide for the broader micro- and nanofluidic community to identify and to address open questions in the field.

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Year:  2020        PMID: 32844655     DOI: 10.1021/acsnano.0c05186

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  6 in total

1.  Scaling microfluidic throughput with flow-balanced manifolds to simply control devices with multiple inlets and outlets.

Authors:  Katherine M Young; Peter G Shankles; Theresa Chen; Kelly Ahkee; Sydney Bules; Todd Sulchek
Journal:  Biomicrofluidics       Date:  2022-05-16       Impact factor: 3.258

2.  Whole genome sequencing of cyanobacterium Nostoc sp. CCCryo 231-06 using microfluidic single cell technology.

Authors:  Yuguang Liu; Patricio Jeraldo; William Herbert; Samantha McDonough; Bruce Eckloff; Dirk Schulze-Makuch; Jean-Pierre de Vera; Charles Cockell; Thomas Leya; Mickael Baqué; Jin Jen; Marina Walther-Antonio
Journal:  iScience       Date:  2022-04-25

Review 3.  Geometric structure design of passive label-free microfluidic systems for biological micro-object separation.

Authors:  Hao Tang; Jiaqi Niu; Han Jin; Shujing Lin; Daxiang Cui
Journal:  Microsyst Nanoeng       Date:  2022-06-06       Impact factor: 8.006

Review 4.  Microfluidics for detection of exosomes and microRNAs in cancer: State of the art.

Authors:  Seyed Mojtaba Mousavi; Seyed Mohammad Amin Mahdian; Mohammad Saeid Ebrahimi; Mohammad Taghizadieh; Massoud Vosough; Javid Sadri Nahand; Saereh Hosseindoost; Nasim Vousooghi; Hamid Akbari Javar; Bagher Larijani; Mahmoud Reza Hadjighassem; Neda Rahimian; Michael R Hamblin; Hamed Mirzaei
Journal:  Mol Ther Nucleic Acids       Date:  2022-04-27       Impact factor: 10.183

5.  Combining Electrostatic, Hindrance and Diffusive Effects for Predicting Particle Transport and Separation Efficiency in Deterministic Lateral Displacement Microfluidic Devices.

Authors:  Valentina Biagioni; Giulia Balestrieri; Alessandra Adrover; Stefano Cerbelli
Journal:  Biosensors (Basel)       Date:  2020-09-16

6.  Microfluidic Obstacle Arrays Induce Large Reversible Shape Change in Red Blood Cells.

Authors:  David W Inglis; Robert E Nordon; Jason P Beech; Gary Rosengarten
Journal:  Micromachines (Basel)       Date:  2021-06-30       Impact factor: 2.891

  6 in total

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