Literature DB >> 28470316

Top-down fabrication meets bottom-up synthesis for nanoelectronic barcoding of microparticles.

Pengfei Xie1, Xinnan Cao, Zhongtian Lin, Mehdi Javanmard.   

Abstract

Traditional optical and plasmonic techniques for barcoding of micro-particles for multiplexed bioassays are generally high in throughput, however bulky instrumentation is often required for performing readout. Electrical impedance based detection allows for ultra-compact instrumentation footprint necessary for wearable devices, however to date, the lack of ability to electronically barcode micro-particles has been a long standing bottleneck towards enabling multiplexed electronic biomarker assays. Nanoelectronic barcoding, which to the best of our knowledge is the first impedance based solution for micro-particle barcoding, works by forming tunable nano-capacitors on the surface of micro-spheres, effectively modulating the frequency dependent dielectric properties of the spheres allowing one bead barcode to be distinguished from another. Nanoelectronic barcoding uses a well-known, but unexplored electromagnetic phenomenon of micro-particles: the Clausius-Mossotti (CM) factor spectrum of a Janus particle (JP) shifts depending on the zeta (wall) potential of the metallic half of the microsphere, and the fact that the complex impedance spectrum of a particle directly corresponds to the CM factor spectrum. A one-to-one correspondence will be established between each biomarker and the corresponding engineered microsphere. This transformative new method for barcoding will enable a new class of handheld and wearable biosensors capable of multiplexed continuous temporal bio-monitoring. The proposed nano-electronically barcoded particles utilize both bottom-up synthesis and top-down fabrication to enable precisely engineered frequency dependent dielectric signatures. Multi-frequency lock-in measurements of the complex impedance, in conjunction with multi-variate analysis of impedance data, allows for particle differentiation using a fully functional ultra-compact electronic detector.

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Year:  2017        PMID: 28470316     DOI: 10.1039/c7lc00035a

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  6 in total

1.  Antibody-functionalized aluminum oxide-coated particles targeting neutrophil receptors in a multifrequency microfluidic impedance cytometer.

Authors:  Brandon K Ashley; Jianye Sui; Mehdi Javanmard; Umer Hassan
Journal:  Lab Chip       Date:  2022-08-09       Impact factor: 7.517

2.  Aluminum Oxide-Coated Particle Differentiation Employing Supervised Machine Learning and Impedance Cytometry.

Authors:  Brandon K Ashley; Jianye Sui; Mehdi Javanmard; Umer Hassan
Journal:  IEEE Int Conf Nano Micro Eng Mol Syst       Date:  2022-06-10

Review 3.  Point-of-critical-care diagnostics for sepsis enabled by multiplexed micro and nanosensing technologies.

Authors:  Brandon K Ashley; Umer Hassan
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2021-03-01

4.  Toward point-of-care assessment of patient response: a portable tool for rapidly assessing cancer drug efficacy using multifrequency impedance cytometry and supervised machine learning.

Authors:  Karan Ahuja; Gulam M Rather; Zhongtian Lin; Jianye Sui; Pengfei Xie; Tuan Le; Joseph R Bertino; Mehdi Javanmard
Journal:  Microsyst Nanoeng       Date:  2019-07-15       Impact factor: 7.127

5.  Multi-frequency impedance sensing for detection and sizing of DNA fragments.

Authors:  Jianye Sui; Neeru Gandotra; Pengfei Xie; Zhongtian Lin; Curt Scharfe; Mehdi Javanmard
Journal:  Sci Rep       Date:  2021-03-22       Impact factor: 4.379

6.  Functionalization of hybrid surface microparticles for in vitro cellular antigen classification.

Authors:  Brandon K Ashley; Jianye Sui; Mehdi Javanmard; Umer Hassan
Journal:  Anal Bioanal Chem       Date:  2020-11-06       Impact factor: 4.142

  6 in total

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