Wireless dielectrophoresis trapping and remote impedance sensing via resonant wireless power transfer

被引:7
|
作者
Ertsgaard, Christopher T. [1 ]
Kim, Minki [1 ]
Choi, Jungwon [1 ]
Oh, Sang-Hyun [1 ]
机构
[1] Univ Minnesota, Dept Elect & Comp Engn, Minneapolis, MN 55455 USA
基金
美国国家科学基金会;
关键词
SELECTIVE DETECTION; MANIPULATION; BACTERIA;
D O I
10.1038/s41467-022-35777-2
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Nearly all biosensing platforms can be described using two fundamental steps -collection and detection. Target analytes must be delivered to a sensing element, which can then relay the transduced signal. For point-of-care technologies, where operation is to be kept simple, typically the collection step is passive diffusion driven-which can be slow or limiting under low concentrations. This work demonstrates an integration of both active collection and detection by using resonant wireless power transfer coupled to a nanogap capacitor. Nanoparticles suspended in deionized water are actively trapped using wireless dielectrophoresis and positioned within the most sensitive fringe field regions for wireless impedance-based detection. Trapping of 40 nm particles and larger is demonstrated using a 3.5 (VRMS), 1 MHz radio frequency signal delivered over a distance greater than 8 cm from the nanogap capacitor. Wireless trapping and release of 1 mu m polystyrene beads is simultaneously detected in real-time over a distance of 2.5 cm from the nanogap capacitor. Herein, geometric scaling strategies coupled with optimal circuit design is presented to motivate combined collection and detection biosensing platforms amenable to wireless and/or smartphone operation.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Wireless Sensing and Power Transfer in a Rotary Tool
    Trevisan, Riccardo
    Costanzo, Alessandra
    2015 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM (IMS), 2015,
  • [32] Frequency Decrease Analysis of Resonant Wireless Power Transfer
    Zhang, Yiming
    Zhao, Zhengming
    Chen, Kainan
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2014, 29 (03) : 1058 - 1063
  • [33] Wireless Power Transfer Technology Using Resonant Technique
    Yong, Ching Yee
    Chen, Kok Fen
    INTERNATIONAL CONFERENCE ON SUSTAINABLE ENERGY AND GREEN TECHNOLOGY 2018, 2019, 268
  • [34] Multiphase Resonant Inverters for Bidirectional Wireless Power Transfer
    Bojarski, Mariusz
    Kutty, Kiran Krishnan
    Czarkowski, Dariusz
    de Leon, Francisco
    2014 IEEE INTERNATIONAL ELECTRIC VEHICLE CONFERENCE (IEVC), 2014,
  • [35] Resonant Wireless Power Transfer Technology & Integration Roadmap
    Carobolante, Francesco
    2015 IEEE CUSTOM INTEGRATED CIRCUITS CONFERENCE (CICC), 2015,
  • [36] Magnetic Resonant Beamforming for Secured Wireless Power Transfer
    Sun, Hongru
    Lin, Hai
    Zhu, Fengchao
    Gao, Feifei
    IEEE SIGNAL PROCESSING LETTERS, 2017, 24 (08) : 1173 - 1177
  • [37] Modeling of the Dynamics of a Resonant Wireless Power Transfer Circuit
    Forato, Mattia
    Bertoluzzo, Manuele
    Buja, Giuseppe
    2017 IEEE 26TH INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS (ISIE), 2017, : 472 - 477
  • [38] Optimization of Resonant Inductive Links for Wireless Power Transfer
    Hwang, Hyeonseok
    Jo, Byeonghak
    Moon, Junil
    Kwon, Chankeun
    Ko, Baekseok
    Kim, Soo-Won
    2016 IEEE INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS (ICCE), 2016,
  • [39] Resonant cavity mode enabled wireless power transfer
    Chabalko, Matthew J.
    Sample, Alanson P.
    APPLIED PHYSICS LETTERS, 2014, 105 (24)
  • [40] A Novel Charger Architecture for Resonant Wireless Power Transfer
    Carobolante, Francesco
    Menegoli, Paolo
    Marino, Fabio Alessio
    Jeong, Nathan Seongheon
    IEEE JOURNAL OF EMERGING AND SELECTED TOPICS IN POWER ELECTRONICS, 2018, 6 (02) : 571 - 580